Item 1. Business
ITEM
1. BUSINESS
Overview
Corporate
Overview of NeuroOne Medical Technologies Corporation
We
were originally incorporated as Original Source Entertainment, Inc. under the laws of the State of Nevada on August 20, 2009. Prior to
the closing of the Acquisition, as defined below, we completed a series of steps contemplated by a Plan of Conversion pursuant to which
we, among other things, changed our name to NeuroOne Medical Technologies Corporation, increased our authorized number of shares of Common
Stock from 45,000,000 to 100,000,000, increased our authorized number of shares of preferred stock from 5,000,000 to 10,000,000 and reincorporated
in Delaware. On July 20, 2017, we acquired NeuroOne, Inc. (the “Acquisition”). Immediately following the closing of the Acquisition,
the business of NeuroOne, Inc. became our sole focus.
Corporate
Overview and History of NeuroOne, Inc.
NeuroOne,
Inc. was incorporated under the laws of the State of Delaware on October 7, 2016. Its predecessor entity, NeuroOne LLC (the “LLC”),
was formed on December 13, 2013 and operated as a limited liability company until it was merged with and into NeuroOne, Inc. on October
27, 2016, with NeuroOne, Inc. as the surviving entity (the “Merger”). As a result of the Merger, all of the properties, rights,
privileges and powers of the LLC vested in NeuroOne, Inc., and all debts, liabilities and duties of the LLC became the debts, liabilities
and duties of NeuroOne, Inc., except for the Exclusive Start-up Company License Agreement, dated as of October 1, 2014, as amended on
February 22, 2017, March 30, 2019 and September 18, 2019 (the “Original WARF License”), with the Wisconsin Alumni Research
Foundation (“WARF”), which was not legally transferred until May 2017. The purposes of the Merger were to: change the jurisdiction
of incorporation from Minnesota to Delaware; change the ownership of the LLC’s underlying assets; and convert from a limited liability
company to a corporation. In December 2019, NeuroOne, Inc. was merged with and into the Company, with the Company remaining as the surviving
entity.
We
are a medical technology company focused on the development and commercialization of thin film electrode technology for continuous electroencephalogram
(“cEEG”) and stereoelectrocencephalography (“sEEG”) recording, spinal cord stimulation, brain stimulation and
ablation solutions for patients suffering from epilepsy, Parkinson’s disease, dystonia, essential tremors, chronic pain due to
failed back surgeries and other related neurological disorders. Additionally, we are investigating the potential applications of our
technology associated with artificial intelligence. Members of our management team have held senior leadership positions at a number
of medical technology and biopharmaceutical companies, including Boston Scientific, St. Jude Medical, Stryker Instruments, C.R. Bard,
A-Med Systems, Nuwellis, Inc., formerly known as Sunshine Heart, Empi, Don-Joy and PMT.
We
are developing our cortical sheet and depth electrode technology to provide solutions for diagnosis through cEEG recording and sEEG recording
and treatment through spinal cord stimulation, brain stimulation and ablation, all in one product. A cEEG is a continuous recording of
the electrical activity of the brain that identifies the location of irregular brain activity, which information is required for proper
treatment. cEEG recording involves an invasive surgical procedure, referred to as a craniotomy. sEEG involves a less invasive procedure
whereby doctors place electrodes in targeted brain areas by drilling small holes through the skull. Both methods of seizure diagnosis
are used to identify areas of the brain where epileptic seizures originate in order to precisely locate the seizure source for therapeutic
treatment if possible.
Deep
brain stimulation, or DBS, therapies involve activating or inhibiting the brain with electricity that can be given directly by electrodes
on the surface or implanted deeper in the brain via depth electrodes. Introduced in 1987, this procedure involves implanting a power
source referred to as a neurostimulator, which sends electrical impulses through implanted depth electrodes, to specific targets in the
brain for the treatment of disorders such as Parkinson’s disease, essential tremor, dystonia, and chronic pain. Alzheimer’s
is another indication evaluating the effects of DBS. Unlike ablative technologies, the effects of DBS are reversible.
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Radio
frequency (“RF”) ablation is a procedure that uses radiofrequency under the electrode contacts that is directed to the site
of the brain tissue that is targeted for removal. The process involves delivering energy to the contacts, thereby heating them and destroying
the brain tissue. The ablation does not remove the tissue. Rather, it is left in place and typically scar tissue forms in the place where
the ablation occurs. This procedure is also known as brain lesioning as it causes irreversible lesions. In August 2021, the Company announced
a strategic partnership with RBC Medical Innovations to develop a RF ablation generator. The following month, our OneRF ablation system
was tested by representatives from Emory University in Atlanta Georgia in an animal study. During the second fiscal quarter of 2023,
we successfully completed summative usability testing for OneRF with 15 neurosurgeons, and completed execution of internal device verification/validation
protocols for the final OneRF ablation system.
Failed
back surgery syndrome (“FBSS”) is a condition that produces chronic lower back/leg pain due to one or more failed back surgeries.
Typically, it is related to patients that suffer with pain after surgery of the lumbar spine for degenerative disc disease. Re-operations
are usually not recommended for these patients due to low success rates. These patients experience greater levels of pain, a lower quality
of life, varying levels of disability and higher rate of unemployment. Spinal cord stimulation works by placing one or more electrodes in
a targeted area of the spine and then connected to an implantable pulse generator that sends electrical stimulation to the electrode
to block the pain signals from reaching the brain. During the second fiscal quarter of 2023, we completed an initial animal implant of
novel thin film paddle leads for spinal cord stimulation (“SCS”). The devices are intended for the treatment of patients
with chronic back pain due to multiple failed back surgery syndrome, intractable low back, and leg pain. A percutaneous (through a needle)
delivery system for paddle leads is also under development and has been successfully bench-tested. According to a 2020 Market Insights
report, the total global addressable market for spinal cord stimulation is estimated to be greater than $3 billion.
Our
cortical sheet electrode and depth electrode technology have been tested over the years by both WARF, the owners of our licensed patents,
and Mayo Clinic located in Rochester, Minnesota, in both pre-clinical models as well as through an institutional review board (“IRB”)
approval at Mayo Clinic for clinical research. In December 2020, we announced the first human commercial use of our Evo cortical electrode
in a procedure performed at the Mayo Clinic. Regarding our ablation electrode, the Cleveland Clinic and representatives from Emory University
have performed testing in bench top models and pre-clinical (or animal testing) models. These pre-clinical tests have demonstrated that
the technology is capable of recording, ablation and acute stimulation.
We
received 510(k) FDA clearance for our Evo cortical technology in November 2019, in September 2021 we received FDA clearance to market
our Evo sEEG electrode technology for temporary (less than 24 hours) use with recording, monitoring, and stimulation equipment for the
recording, monitoring, and stimulation of electrical signals at the subsurface level of the brain, and in October 2022 we received FDA
clearance to market our Evo sEEG electrode technology for temporary (less than 30 days) use with recording, monitoring, and stimulation
equipment for the recording, monitoring, and stimulation of electrical signals at the subsurface level of the brain.
We
submitted a 510(k) application to the FDA for the OneRF ablation system in June 2023 and responded to FDA comments on November 6, 2023.
On December 6, 2023, we received 510(k) FDA clearance to market the OneRF ablation system for creation of radiofrequency lesion in nervous
tissue for functional neurosurgical procedures.
We
intend to develop our Evo sEEG electrode technology for drug delivery applications in the next 12 months. This device is intended
to deliver neurological drugs or gene therapy that are FDA approved or that are currently planned for clinical trials or in development
to allow for monitoring, recording and stimulation and drug delivery for less than 30 days. In addition to having the capability
of delivering a drug through the center lumen, it will also be able to record brain activity before, during, and after drug delivery.
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Our
Market Opportunity
Epilepsy
Market
We
expect to initially target the diagnosis and treatment of epilepsy. Epilepsy can be caused by a variety of conditions that affect a person’s
brain, some of which are: stroke, brain tumor, traumatic brain injury and central nervous system infections. According to the Centers
for Disease Control and Prevention (the “CDC”) and Citizens United for Research in Epilepsy (“CURE”), there are
approximately 3,000,000 patients annually suffering with epilepsy in the United States, with an additional 200,000 diagnosed every year.
The CDC and CURE also estimate that epilepsy costs the United States $15.5 billion per year. Approximately 720,000 of these patients
are not receptive to pharmaceutical treatment and therefore are appropriate for surgical treatment of this disorder. In addition to poor
quality of life, epilepsy also is associated with fairly high mortality rates. Sudden Unexpected Death in Epilepsy has an annual incidence
of 1.16/1000 in epilepsy patients. Despite the large market opportunity, it is estimated that there are only less than 5K epilepsy surgeries
performed each year in the United States. 1
These
numbers represent an underpenetrated market due to the invasiveness of diagnostic procedures. After the diagnostic procedure, a second
therapeutic procedure is required and at times even a third surgery if the seizures persist. We believe patients are unwilling to proceed
due to the long diagnostic and treatment procedure times (one to four weeks in the hospital after a potential craniotomy for diagnosis).
As detailed above, after the diagnosis is completed, if successful, the patient must undergo an additional procedure to have the affected
area of brain tissue ablated or removed. The average cost for the diagnostic technology per procedure could be >$10,000, with ablation
devices costing >$15,000. We believe our technology, once developed, will offer an all-in-one solution with diagnostic and therapeutic
capabilities.
Many
leading neurologists believe that the limits of today’s current technologies are the reason the exact affected area of the brain
causing epileptic seizures is not well-determined. We believe our technology, which has been developed to date by physicians at WARF
and Mayo Clinic, will provide a number of advantages over the current commercially available technologies, including the following:
● Our
proprietary thin film technology under development has a smaller footprint with many more
electrodes.
● We
expect that our technology will eventually be able to be implanted using a minimally invasive
procedure utilizing a dime sized burr hole rather than a full craniotomy.
● Our
technology may provide more accurate detection of irregular brain activity over currently
available technology. In limited clinical testing, doctors at Mayo Clinic have documented
pre-seizure activity (micro-seizures) during their clinical research with their patients
using our cEEG technology.
We
expect our technology can ablate through the electrodes as well as perform brain recording, monitoring and stimulation, allowing for
diagnosis and treatment through the same product and in the same procedure.
Parkinson’s
Disease
The
Parkinson’s Disease Foundation estimates that as many as 1,000,000 patients in the United States live with Parkinson’s disease
with an additional 60,000 patients diagnosed per year. Over 10,000,000 patients worldwide are living with Parkinson’s disease.
There have not been any drugs introduced that have been effective at treating all patients with Parkinson’s disease. The average
onset is over 60 years old, but some people have been diagnosed as young as 40 years old. Parkinson’s is a disorder of the central
nervous system caused by loss of brain cells throughout various regions of the brain.
Today’s
primary treatment for Parkinson’s disease involves medications that have not proven to be curative but rather ease symptoms. One
of the potential treatments for Parkinson’s patients is DBS. According to the Michael J.
Fox Parkinson’s Disease Research Foundation website, patients that seem to do best with DBS are those that have had the disease
for at least four years and have benefited from taking medications prescribed to control the disease. In addition, DBS seems to help
with reducing the issues with motor functions such as tremors, stiffness and slowness but not for balance issues.
1 Epilepsy
surgery in the United States: Analysis of data from the National Association of Epilepsy
Centers 2015 Epilepsy Research.
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Essential
Tremors
Essential
tremors are thought to be due to electrical irregularities in the brain that send abnormal signals to the muscles. It is a progressive
condition that worsens over time and is linked to genetic disorders that typically appear in people who are over 40. Essential tremors
usually occur alone and without any other neurological symptoms or signs. The tremors usually occur when the hands are raised and primarily
affect the hands. Muscles in the trunk, face and neck may also experience symptoms. Sometimes misdiagnosed as Parkinson’s disease,
essential tremors are an involuntary rhythmic shaking of the hands that is not present at rest. It is apparent during activities such
as drinking, writing and eating. Symptoms can worsen due to stress, anxiety, smoking, caffeine, fatigue, etc. Genetics Home Reference
estimates that as many as 10,000,000 people in the United States are affected by the disease. Treatments for the disease include medical
therapy and DBS. DBS, which unlike other therapies, is reversible and programmable, helping to adjust the settings to maximize patient
benefit. Similar to Parkinson’s disease, the ability to detect this irregular brain activity before it causes a tremor is highly
desirable.
Dystonia
Dystonia
is a neurological condition recognized as a motion disorder that involves over activity of a variety of different muscles simultaneously
that work against each other. It presents itself in a variety of symptoms but typically involves repetitive, patterned and often twisting
involuntary muscle contractions resembling tremors. According to the Dystonia Medical Research Foundation, over 300,000 people are affected
in the United States and Canada alone. Dystonia is the third most common problem seen in movement disorder clinics. Because it has many
different manifestations, it is often misdiagnosed. In addition, similar to Parkinson’s disease, there are no specific tests that
can positively diagnose dystonia. A doctor typically will evaluate patient and family history, potentially do genetic testing, electroencephalogram (“EEG”) testing,
blood and urine tests. There are several treatment options (including medication and Botox) for patients depending on the type of dystonia.
DBS may be also an alternative for certain patient sub-types.
Spinal
Cord Stimulation
Chronic
back pain is one of the most prevalent chronic conditions in the world. According to the CDC, “in 2016, an estimated 20.4% of U.S.
adults had chronic pain and 8.0% of U.S. adults had high-impact chronic pain. Chronic pain has been linked to numerous physical and mental
conditions and contributes to high health care costs and lost productivity”. FBSS
is one of leading causes for chronic lower back/leg pain due to one or more failed back surgeries. Typically, it is related to patients
that suffer with pain after surgery of the lumbar spine for degenerative disc disease. Re-operations are usually not recommended for
these patients due to low success rates. These patients experience greater levels of pain, a lower quality of life, varying levels of
disability and higher rate of unemployment. Spinal cord stimulation works by placing an electrode(s) in a targeted area of the spine
which is then connected to an implantable pulse generator that sends electrical stimulation to the electrode to block the pain signals
from reaching the brain.
The
back pain market includes the following indications: FBSS, Ischemic Limb Pain, and Complex Regional Pain Syndrome. Over half of this
market is comprised of patients with FBSS. Studies have indicated a benefit for some patients suffering from chronic back and lower limb
pain when they have been treated with electrical stimulation. Prior to the patient receiving an implant, they undergo a trial period
that allows them to determine if they are receiving relief from the therapy while preventing a surgery to implant the pulse generator
that provides the stimulation. If the trial period is successful, then the device is implanted in a follow-up procedure.
Artificial
Intelligence
The
brain consists of approximately 100 billion nerve cells, which are small wires that pass electrical signals to control all of its functions.
There have been a number of successful clinical trials in which small metal wires, known as electrodes, are implanted in the brain to
correct nerve damage using wireless communication between implanted wires to simulate functional nerve cells. In addition to correcting
damaged nerve cells, certain scientists have theorized that if millions of wires could be implanted in the brain, these electrodes could
present an opportunity to use artificial intelligence to create infrared sight, increase hearing or perfect memory recall. However, there
currently is no commercially available manufacturing platform capable of making thousands of wires that can be placed within or on the
brain and work reliably for the lifetime of a subject, and are soft enough to match the tissue of the brain, that avoid damage to the
brain.
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Limitations
of Currently Available Therapies
There
are a limited number of currently available products for diagnosis and treatment for people with neurological disorders such as epilepsy.
Although the currently available systems provide diagnosis and treatment for patients, they have certain inherent limitations and shortcomings
that we believe limit their use and validate the need for improved technology in the market. These limitations include:
● Lengthy
diagnostic times: It takes several months for patients to go through the various phases
of diagnostic methods, including imaging and non-invasive EEGs. If the source of seizures
are still unknown, patients spend one to four weeks in the hospital after interventional
diagnostic procedures (cortical and/or sEEG implants) waiting to have seizures that will
allow doctors to determine where the seizures are occurring.
● Lower
Accuracy: Historically, clinical electrode manufacturers primarily provided electrodes
that sample brain tissue at approximately centimeter spatial scales. Advances in digital
EEG acquisition have made recordings at sub-millimeter spatial scales possible, but high-spatial
resolution EEG has been slow to impact clinical practice. Existing, higher spatial scales
increase the potential for missing data that may be critical in the removal of brain tissue
causing the irregular activity.
● Need
to perform a full craniotomy (invasiveness): Currently available cortical electrode technology is typically placed after a craniotomy,
which may require removing the top part of the cranium and is a very painful and invasive procedure. Procedural times for a craniotomy
can be as high as eight hours. A variety of complications can occur when a full craniotomy is performed, including but not limited to:
stroke, bleeding, infection, seizures, swelling of the brain (which may require a second craniotomy), nerve damage, which may cause muscle
paralysis or weakness, cerebrospinal fluid leak, which may require repair, loss of mental functions and permanent brain damage with associated
disabilities. The invasiveness, procedural times and possible surgical complications have limited the growth of surgical treatment of
epilepsy.
● Requirement
for multiple devices for diagnostic and therapeutic procedures : Today both interventional
diagnostic and treatment procedures may require different device implants, surgeries and
even hospitalizations for each procedure. This causes significant patient inconvenience,
use of precious hospital resources and tremendous cost to the system.
● Limited
number of contacts on an electrode : Paddle electrodes currently are available in a variety
of sizes and number of contacts. Physicians increasingly want to explore greater number of
contacts on the same electrode in order to be able to be more precise in stimulating targeted
areas.
Our
Solution
As
a result of the inherent limitations and inconvenience of existing systems, we believe that there is a significant unmet need among people
with neurological disorders for cortical strip, grid and depth electrodes that provide diagnostic capabilities through cEEG and sEEG
recording in addition to therapeutic modalities, such as brain stimulation and ablation, offered as an all-in-one product. In comparison
to currently available technologies, we are continuing to develop applications of our strip, grid and depth electrodes with the goal
of providing the following expected advantages:
● Reduced
time for diagnosis and treatment: By offering a minimally invasive procedure and developing
an all-in-one solution, we expect our technology will reduce overall procedural times. While
our pre-clinical and clinical experience to date is limited, our cortical grid technology
has demonstrated the ability to provide high fidelity recordings that have allowed physicians
to identify the affected brain tissue causing seizures. This may provide the potential for
meaningful cost savings for hospitals and patients and improved quality of life for patients.
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● Improved
accuracy of diagnostic technologies: Because we believe our thin film technology is capable
of recording at higher fidelity than current technologies used in EEG recording, we believe
our technology may be able to more precisely determine the brain tissue causing seizures.
In December 2020, we announced the first human commercial use of our Evo cortical electrode
to perform recording, functional mapping, monitoring and stimulation of the brain. In the
procedure, performed at the Mayo Clinic, our electrodes were used to record evidence of pre-seizure
activity, which may be critical in developing treatments to prevent the onset of seizures.
Since then, several institutions around the country have successfully tried and adopted our
devices for diagnostic procedures.
● Implantation
via minimally invasive procedure with fewer post-procedure complications: We are currently
developing approaches to deliver the electrodes by minimizing the invasiveness of the procedures.
We expect that patients who have qualified for diagnostic or treatment procedures will be
more accepting of a minimally-invasive procedure. Such procedures may potentially reduce
the patient’s pain, bleeding and other adverse events. For example, our cortical electrode
technology is expected to also have fewer wires, also referred to as tails, exiting the patient’s
head, which can also reduce the potential for infections. Furthermore, the material we currently
use in our cortical electrodes has shown in pre-clinical evaluations to cause less inflammation
than current electrode substrates as it appears more compatible with brain tissue. As discussed
under “Our Strategy” below, our technology has been and will be implanted via
a full craniotomy until such time, if ever, as we are able to develop our minimally invasive
procedure.
● All-in-one
diagnostic and therapeutic technology solution: Due to the expected recording and treatment
capabilities of some of our technology under development, we have received feedback from
physicians that they will attempt to perform the diagnosis and treatment in a single procedure,
thereby potentially eliminating the need for a second surgical procedure, reducing the likelihood
of patient infection, risks associated with surgical procedures and minimizing the diagnostic,
procedural and hospital costs. As discussed under “Our Strategy” below, our initial
product offering offers diagnostic-only capabilities while we advance the development of
our all-in-one approach. Currently, we are preparing a combination recording, stimulation
and RF ablation technology that will perform both diagnostic and therapeutic functions for
commercialization.
● Percutaneous
placement of spinal cord stimulation paddle electrodes with scalability options: Due
to the thin film nature of our electrode technology, we believe that it may allow for percutaneous
placement of “paddle” (flat) shaped electrodes, thereby preventing the need to
use more invasive surgical approaches to place the electrodes. Minimally invasive and percutaneously
placed technologies have become almost a requirement for adoption with patients and physicians.
In addition, our technology in the future offers the ability to increase the number of contacts
on a film that traditionally offers fewer contacts. Increasing the number of contacts may
allow for more precise stimulation in the spine, potentially improving the therapeutic outcomes.
Our
Strategy
Our
goal is to be the global leader in cEEG and sEEG recording, monitoring, deep brain stimulation and ablation, owning the procedure from
diagnosis through treatment. The key elements of our strategy include:
● Introduce
cortical strip and grid electrodes for the diagnosis of epilepsy in United States : In
December 2019, we announced that we received FDA 510(k) clearance to market our thin film
cortical electrode technology for temporary (less than 30 days) recording, monitoring, and
stimulation on the surface of the brain. Our initial product offering has initially been
and will be placed through traditional surgical means involving a craniotomy until such time,
if any, that we launch our minimally invasive procedure. In July 2020, we entered into a
development relationship with Zimmer, pursuant to which we granted Zimmer exclusive global
rights to distribute the cortical strip and grid electrodes, and Zimmer will use commercially
reasonable efforts to promote, market and sell the strip and grid electrodes. We believe,
due to physician feedback, that our technology represents a major improvement over existing
cortical electrodes for the recording of brain activity. We are initially targeting epilepsy
as we believe this is a clinical area of great need and a market that is underserved with
a quick path to commercialization. We believe the largest and quickest-to-market geography
for our cortical strip and grid technology under development is the United States for a number
of reasons, including the following: (i) many industry sources believe there is a large underserved
U.S. market, (ii) healthy procedural reimbursement exist for centers and physicians, (iii)
average selling prices are robust, and (iv) there is substantial physician enthusiasm for
our technology under development. To date, several institutions around the country have successfully
tried and adopted our cortical electrode technology for diagnostic procedures.
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● Launch
depth electrodes for sEEG recording: In September 2021, we announced that we received
FDA 510(k) clearance to market our Evo sEEG electrode technology for temporary (less than
24 hours) use with recording, monitoring, and stimulation equipment for recording, monitoring,
and stimulation of electrical signals at the subsurface level of the brain. We filed for
510(k) clearance to expand the duration of use up to less than 30 days in November 2021.
On October 20, 2022, the Company received an FDA clearance to market its Evo sEEG electrode
technology for temporary (less than 30 days) use with recording, monitoring, and stimulation
equipment for the recording, monitoring, and stimulation of electrical signals at the subsurface
level of the brain. Given the reluctance of patients to undergo epilepsy surgery due to its
invasiveness, a number of epilepsy centers have adopted the use of depth electrodes, which
are placed by drilling small holes into the patient’s cranium, thereby avoiding a craniotomy.
We believe our technology offers advantages compared to current depth electrode technology
in the market and will also enable us to offer a therapeutic solution using this same technology
in the future. As we continue to develop our technology, we plan to release further information
about the expected advantages of our technology over currently available therapies.
● Utilize
these core technologies to develop all-in-one diagnostic and therapeutic solutions with the
initial focus on a combination diagnostic and ablation electrode: For many patients who
currently undergo one surgical procedure for diagnosis, a second and different procedure
or surgery is then required to treat the patient. There is strong physician/surgeon interest
to be able to perform both the diagnostic and therapeutic procedure with the same implanted
devices. We are developing our technology with the goal of being able to offer this benefit
although there can be no assurance that we will be able to do so. We are pursuing cortical
grid, strip and depth electrode technology that can record brain activity (diagnose) and
also provide both acute and long term stimulation as well as depth electrode technology that
can ablate brain tissue. The technology has demonstrated these functions in acute and short
term animal models; however, additional development is required to offer a device that has
long term therapeutic application. These long term therapeutic technologies are expected
to require more robust regulatory approvals for the United States, ranging from a 510(k)
to potential for pre-market approvals (“PMAs”) with human clinical data. We will
engage the FDA at the proper time to determine the most efficient regulatory path.
● Develop
percutaneous placed electrodes for spinal cord stimulation with scalable contact configurations:
Given that many surgically placed technologies have become less invasive due to patient
and physician demands, we believe that our flexible thin film technology will allow for percutaneous
placement of “paddle” shaped electrodes, thus potentially eliminating the need
to make a more invasive surgical procedure. Spinal cord clinical literature over the years
have shown that “paddle” electrodes (flat shaped) require less energy for stimulation
(thus saving neurostimulator battery life) and may be associated with lower revision rates
over time. Even then, “paddle” shaped electrodes are used less often due to the
more invasive surgical procedure that is required for placement. But we hope to change that
paradigm by creating “paddle” electrodes that can be implanted percutaneously
(less invasively) through a “needle hole incision”. By leveraging our existing
FDA cleared cortical electrode and sEEG technology, we may also be able to offer the ability
to improve precision of where the stimulation is delivered. NeuroOne’s platform thin
film technology has the capability to increase the number of contacts in a similar footprint
that has fewer contacts.
● Gain
approval for other brain or motor related disorders such as Parkinson’s with the therapeutic
technologies developed for epilepsy: While we are developing our technology for the diagnosis
and treatment of epilepsy, we believe that our technology has strong application and utilization
for other brain or motor related disorders such as Parkinson’s disease, dystonia, essential
tremors and facial pain as these diseases are currently treated with DBS if medications are
not effective. As previously mentioned, we are actively evaluating the potential to offer
electrodes that can be implanted for long term stimulation applications, but such use will
require that we pursue additional approvals from the FDA and any international regulatory
bodies where we seek to commercialize our technology.
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● Explore
partnerships with other companies that leverage our core technology: Given that our technology
enables, complements and/or competes with a number of companies that are in the market or
attempting to enter the market with diagnostic or therapeutic technologies to treat brain
related disorders, we believe there may be opportunities to establish mutually beneficial
relationships. In addition, our technology may have application in cardiovascular, orthopedic
and pain related indications that could benefit from a high fidelity thin film electrode
product that can provide stimulation and/or ablation therapies.
● Partner
with biotech, pharmaceutical or biopharma companies to provide a drug delivery sEEG electrode
capable of delivering the therapy and recording before, during and after the therapy is delivered
for up to 30 days.
● Investigate
the potential applications associated with Artificial Intelligence: We have been informed
by some of our corporate advisors that the ability to offer scale-able electrode technology
that can provide thousands of electrodes in the brain may be helpful in treating medical
conditions that may benefit from using artificial intelligence. The Company has formed an
advisory board that will provide guidance to the Company as we continue to explore the opportunities
in this exciting field.
Our
Technology
Epilepsy
Mapping and Monitoring
Epileptic
seizures occur when the neurons in the brain miscommunicate. This miscommunication typically results in involuntary muscle seizure activities
and/or periods of perceptual disconnect where the individual appears frozen. Modern medical science has advanced the treatment of epileptic
seizures by mapping the electrical communication activity of neurons and understanding their special orientation in the brain. This mapping
is accomplished by access to the cranium (through a craniotomy) and placing conductive contacts on the brain directly. The craniotomy
procedure is very invasive, traumatic to the surrounding tissue, results in high patient down time, and increases the risk of infection.
We
seek to leverage scale-able technology and produce ultra-thin, or paper-thin electrodes that allow for high-resolution and high-definition
recordings, which would improve mapping resolution and signal acquisition. If the Company is able to leverage scale-able technology,
it would mean that our technology would be able to incorporate smaller electrodes and thereby increase the number of electrodes on a
given surface area. We expect that this would increase the imaging resolution so that brain activity is displayed in greater definition.
We also believe that the electrodes’ unique thinness and flexibility will provide a less invasive approach to electrode placement.
The electrodes would be able to be placed through a small quarter size hole instead of by an invasive full craniotomy procedure.
The
images under “Cortical Electrode,” from bottom to top, are images of our cortical electrode strip, our grid electrode, and
the placement of the grid electrode on the brain, respectively. The images under “High Density Interconnect” are both images
of our product that connects our electrodes to the head box, which is a piece of hardware that connects to electrodes to acquire, amplify,
display, store and archive electrophysiological signals, and is integrated as part of our manufactured electrode product. The images
under “Head Box” and “Signal Monitoring and Mapping” are images of the device which processes information received
through the high density interconnect, and a sample output of data acquisition, respectively, neither of which is one of the Company’s
products.
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Our
technology consists of three primary types of cortical electrodes: grid electrodes, strip electrodes and dual-sided electrodes. These
electrodes have a patented design that utilizes proprietary processing and materials technology, which we believe will allow the electrodes
to have improved features over the current industry standard recording electrodes.
What
sets our technology apart from others is the integration of state of the art design leveraging the latest in flexible printed circuit
technology. We believe our patented designs will provide the surgeon a higher tactile perspective on electrode placement allowing for
ultra-precise neuron recording. We expect the benefits of our electrode designs to include the ability to detect better defined margins
between healthy tissue and resect-able tissue, less immune-response from the brain and surrounding tissue, better signal acquisition
due to superior conformability of the electrode over the brain, improved flexibility that physicians have requested, which we expect
will enable a minimally invasive approach and the electrodes unique thinness that is unmatched by current products being used.
The
Future of Neurology Mapping with NeuroOne
We
seek to develop superior “scale-able” technology for future product system iterations in higher density contact placement.
This will open the doors to other brain related disease recording procedures by providing high fidelity, more accurate diagnostic capabilities
and also the ability to provide an all-in-one therapy capable of diagnosis, ablation and/or stimulation. Beyond the brain, we believe
our technology under development has applications in other neurological signal recording disease states related to voluntary or involuntary
motor neuron abnormalities, understanding sensory neuro behavior (pain), limb prosthetics and degenerative muscle disease.
Clinical
Development and Regulatory Pathway
Clinical
Experience, Future Development and Clinical Trial Plans
Our
Evo cortical electrode technology has received 510(k) clearance from the FDA for recording, monitoring, and stimulating brain tissue
for less than 30 days on the surface of the brain. Our Evo sEEG electrode technology has received FDA 510(k) clearance from the FDA for
use (less than 30 days) with recording, monitoring, and stimulation equipment for the recording, monitoring, and stimulation of electrical
signals at the subsurface level of the brain. Our other products have not received any clearance for commercialization by any U.S. or
foreign regulatory body. To date, the Company has performed a number of bench top (which includes feasibility testing) and pre-clinical
tests (which include animal testing of device placement, ergonomics, performance, ease of use, and other tests required by FDA regulations).
As described in “—Government Regulation” below, the Company will be required to perform additional testing of its technology
in connection with seeking additional regulatory clearances or approvals.
We
intend to expand our product offerings to include less invasive means and all-in-one solutions, thus providing both patients and physicians
better options to treat epilepsy, Parkinson’s disease, dystonia, essential tremors, chronic pain due to failed back surgeries and
other related neurological disorders. While we expect to make modifications to our initial system, we believe that most of our future
product development initiatives will involve unique and transformational next generation technology that should drive further appeal
of our products with both physicians and patients.
We
are utilizing a number of resources to develop these technologies. We license three critical patents from WARF that are the
foundation of the technology and we are developing and intend to commercialize and benefit from the thin film technology know-how of
Mayo Clinic doctors through our license and development agreement. WARF, Mayo Clinic (cortical electrodes) and Cleveland Clinic
(sEEG electrodes) have been responsible for all pre-clinical studies of our technology under development to date. See “—WARF
License” and “—Mayo Foundation for Medical Education and Research License and Development Agreement” below. We
announced in December 2020 that Mayo Clinic doctors used our technology in the first human commercial application of our Evo
cortical electrode technology to perform recording, functional mapping and stimulation of the brain on a human patient. And more
recently, in July 2022, we announced the first clinical case using the Evo sEEG electrode was performed by Dr. Robert Gross at Emory
University. Dr. Gross selected the Evo sEEG electrode for intraoperative brain mapping at the subsurface level of the
brain.
9
NeuroOne
Medical Technologies Corporation
FORM 10-K
Below
we have summarized, for each component of our technology, the current stage of development or commercial production, the pre-clinical
testing done to date by WARF, the Cleveland Clinic or Mayo Clinic on such component, if any, our plans for further testing or clinical
trials and our expectations regarding the requirements for regulatory clearance or approval and timing of regulatory submissions.
Technology
Stage
of Development and Pre-Clinical Testing to Date
Additional
Expected Steps for Regulatory
Clearance or Approval
Cortical strip and grid electrodes for the diagnosis
of epilepsy
The Company
has finalized the design for the product and there are no further expected changes to the device (“design freeze”).
Pre-clinical
testing and clinical testing on the final design has been conducted by Mayo Clinic and WARF (as described in “Mayo Clinic and
University of Wisconsin-Madison Studies” below). The product is in commercial production.
The Company
received FDA 510(k) clearance in the fourth calendar quarter of 2019.
Commercial
launch commenced utilizing Zimmer, our distribution partner.
Depth electrodes for recording (diagnostic) purposes
We have
frozen this design and the product is in commercial production.
No clinical
testing was required in order to obtain FDA clearance.
The Company filed for FDA 510(k) marketing clearance
for sEEG electrodes in May 2021 and received a 510(k) clearance from FDA for recording, monitoring and stimulation of brain tissue
for less than 24 hours in September 2021. The Company filed for 510(k) clearance to expand the duration of use up to less than 30
days in November 2021. On October 20, 2022, the Company received an FDA clearance to market its Evo sEEG Electrode technology for
temporary (less than 30 days) use with recording, monitoring, and stimulation equipment for the recording, monitoring, and stimulation
of electrical signals at the subsurface level of the brain. Zimmer began distributing this product in May 2023.
10
NeuroOne
Medical Technologies Corporation
FORM 10-K
Depth
electrode diagnostic and ablation devices
The design
phase was completed at the end of 2022, the verification phase was completed in June 2023, and the transfer to manufacturing phase
began in July 2023.
Pre-clinical
testing, including benchtop and animal testing, has been conducted on final designs.
Very
early testing at the Cleveland Clinic was completed in the second calendar quarter of 2020.
Pre-clinical
(animal) feasibility testing was conducted in September 2021 with representatives from Emory University in Atlanta, Georgia. Additional
pre-clinical animal testing of our final design was conducted at Emory University in April 2023 and invivo testing of our final design
was conducted in May 2023.
The Company
announced a partnership with RBC Medical Systems in August 2021 to develop an RF generator that will be used with the Company’s
diagnostic and ablation electrode.
No animal
or human clinical testing is anticipated for FDA submission since 510K predicate devices did not perform such clinical testing.
The
Company submitted a 510(k) application to the FDA for the OneRF ablation system in June 2023 and responded to FDA comments on November
6, 2023. The Company received 510(k) clearance from the FDA for creation of radiofrequency lesions in nervous tissue for functional neurosurgical
procedures on December 6, 2023.
Spinal cord stim electrodes
No design
freeze.
We performed
pre-clinical in-house bench top testing in August 2020.
In 2021/early
2022, we performed bench top testing of prototypes to demonstrate chronic performance and longevity.
In 2023,
we will continue to refine our chronic spinal cord electrode design based on SCS customer feedback and do additional pre-clinical
bench and/or animal tests to further validate our value proposition.
This
device is in early stages of development.
Once
the design is finalized, we will be required to conduct additional pre-clinical testing, which may include additional benchtop or
animal testing for safety and performance. Additionally, the FDA may require that we conduct human clinical studies.
No FDA
feedback has been sought or received by us to date on the regulatory/clinical process that may be required for spinal cord stimulation
indication, but we expect regulatory PMA approval will require a more robust clinical process, human clinical data for a PMA (implanted
system), depending on proposed indications for use.
Future
pre-clinical and clinical testing requirements for regulatory submission will continue to be evaluated as we develop the design of
this product.
11
NeuroOne
Medical Technologies Corporation
FORM 10-K
Depth
electrode chronic stimulation devices
No design
freeze.
Bench
top testing were successfully performed in 2021 and early 2022. We announced the results of these studies in the first quarter of
2022.
While
this device remains in early development, we expect to work with clinicians to further refine our designs and continue testing in
2023.
Following
a design freeze, we will be required to conduct additional pre-clinical testing, which may include additional benchtop or animal
testing for safety and performance. Additionally, FDA-approved human clinical studies will most likely be required.
No FDA
feedback has been sought or received by us to date on the clinical process that will be required for chronic stimulation, but we
expect regulatory approval for chronic stimulation may require a more robust clinical process, which could include a PMA with human
clinical data. Because we have not yet met with the FDA, we cannot yet determine what clinical data and testing we will need to complete
or what the testing will need to demonstrate. However, we believe, based on the experience of competitors for similar technology,
that we will need to conduct clinical trials, which we estimate will require an investment of over $2,000,000.
Mayo
Clinic and University of Wisconsin-Madison Studies
Our
cortical technology for the diagnosis of epilepsy has been tested by doctors at Mayo Clinic in multiple pre-clinical tests conducted
from 2012 to 2017. In pre-clinical models, doctors examined the biological impact on mammalian brains. Polyimide substrate electrodes
(NeuroOne technology) were implanted on the pig’s brain for one week alongside standard competitive electrodes. The tissue underneath
the two types of electrodes was removed, fixed, stained, and examined for immunological responses. The results of a histological (evaluation
of brain tissue under a microscope) analysis showed reduced immunological reaction to prolonged polyimide substrate implants (NeuroOne
technology) compared to standard silicone substrate clinical electrodes. Electrophysiological recordings showed data obtained from polyimide
electrodes which demonstrated the feasibility of high fidelity multi-scale electrophysiology while also displaying easier deployment
of polyimide electrodes (NeuroOne technology) through minimally invasive burr holes.
Additionally,
doctors implanted our polyimide thin film electrodes on five human patients who were undergoing surgery to remove brain tissue for drug
resistant epilepsy. Electrophysiological recordings from the polyimide thin film technology displayed in each of these patients demonstrated
micro-seizure activity due to the high fidelity multi-scale electrophysiology. In December 2020, we announced the first human commercial
use of our Evo cortical electrode to perform recording, functional mapping and stimulation of the brain. In the procedure, performed
at the Mayo Clinic, our electrodes were used to record evidence of pre-seizure activity which may be critical in developing treatments
to prevent the onset of seizures.
Conclusions
reached by the physicians at Mayo Clinic were that thin, flexible polyimide electrodes (NeuroOne technology) provided recordings similar
to standard clinical electrodes with reduced immunological response. In addition, Mayo Clinic physicians observed that the flexibility
of polyimide electrodes may reduce pain and swelling associated with implantation of the device, and the single wire exiting the skull
may reduce infection risk. The ability to record micro-seizure and single neuron brain activity may also provide additional useful clinical
data. Combined, these properties suggest that the replacement of current competitive silicone electrodes with polyimide substrate electrodes
(NeuroOne technology) for recording brain activity for epilepsy could provide enhanced clinical value with reduced cost, reduced infection
risk, and improved patient comfort.
In
addition, our thin film cortical implant technology has been tested by researchers at the University of Wisconsin-Madison in multiple
pre-clinical animal studies conducted from 2006 to 2016, which included mice, rats and primates. In these studies, our technology was
able to record brain activity from different areas of the brain, was implanted in a minimally invasive fashion, electrically provided
brain stimulation and tissue ablation, and had increased flexibility compared to existing commercially available technology, which allowed
the grids to conform more easily to the brain surface (and may have reduced pain and swelling, compared to less flexible devices).
12
NeuroOne
Medical Technologies Corporation
FORM 10-K
Sales
and Marketing
Zimmer
Development Agreement
Based
on the size and maturity of the U.S. market and our initial commercial focus, on July 20, 2020, we entered into an exclusive development
and distribution agreement (the “Development Agreement”) with Zimmer, pursuant to which we granted Zimmer exclusive global
rights to distribute NeuroOne’s strip and grid cortical electrodes (the “Strip/Grid Products”) and electrode cable
assembly products (the “Electrode Cable Assembly Products”), including to approximately 188 Level 4 epilepsy centers. Additionally,
we granted Zimmer the exclusive right and license to distribute certain depth electrodes developed by the Company (“SEEG Products”,
and together with the Strip/Grid Products and Electrode Cable Assembly Products, the “Products”). The parties have agreed
to collaborate with respect to development activities under the Development Agreement through a joint development committee composed
of an equal number of representatives of Zimmer and the Company.
Under
the terms of the Development Agreement, we are responsible for all costs and expenses related to developing the Products, and Zimmer
is responsible for all costs and expenses related to the commercialization of the Products. In addition to the Development Agreement,
Zimmer and the Company have entered into a Manufacturing and Supply Agreement (the “MS Agreement”) and a supplier quality
agreement (the “Quality Agreement”) with respect to the manufacturing and supply of the Products.
Except
as otherwise provided in the Development Agreement, we are responsible for performing all development activities, including non-clinical
and clinical studies directed at obtaining regulatory approval of each Product. Zimmer has agreed to use commercially reasonable efforts
to promote, market and sell each Product following the “Product Availability Date” (as defined in the Development Agreement)
for such Product.
Pursuant
to the Development Agreement, Zimmer made an upfront payment of $2.0 million to the Company in August 2020.
In
August 2022, we entered into an amendment to the Development Agreement with Zimmer that provided us with a $3.5 million accelerated payment
relating to certain milestone events. In addition, Zimmer received a Warrant to purchase 350,000 shares of our Common Stock, with an
exercise price of $3.00 per share.
The
Development Agreement will expire on the tenth anniversary of the date of the first commercial sale of the last of the Products to achieve
a first commercial sale, unless terminated earlier pursuant to its terms. Either party may terminate the Development Agreement (x) with
written notice for the other party’s material breach following a cure period or (y) if the other party becomes subject to certain
insolvency proceedings. In addition, Zimmer may terminate the Development Agreement for any reason with 90 days’ written notice,
and we may terminate the Development Agreement if Zimmer acquires or directly or indirectly owns a controlling interest in certain competitors
of the Company.
We
will investigate markets outside of the U.S. with the assistance of Zimmer and formulate a plan to enter those markets with the support
of Zimmer.
For
more information regarding the Development Agreement, see “Management’s Discussion and Analysis of Financial Condition and
Results of Operations-Financial Overview-Collaborations Revenue” and “Note 7—Zimmer Development Agreement” included
in “Item 8—Financial Statements and Supplementary Data” in this Report.
Reimbursement
Coverage
in the United States
Reimbursement
from private third-party healthcare payors and, to a lesser extent, Medicare will be an important element of our success. Although the
Centers for Medicare and Medicaid Services (“CMS”) and third-party payors have adopted coverage policies for our targeted
indications, there is no guarantee this will continue at the same levels or at all in the future. Current Procedural Terminology, or
CPT, is a medical code set that is used to report medical, surgical and diagnostic procedures and services to entities such as physicians,
health insurance companies and accreditation organizations.
13
NeuroOne
Medical Technologies Corporation
FORM 10-K
Applicable
diagnostic CPT codes for mapping (diagnosing) the brain for diagnostic procedures are as follows:
● 61531
Subdural implantation of strip electrodes through one or more burr or trephine (saw) hole(s)
for long-term seizure monitoring;
● 61533
Craniotomy with elevation of bone flap: for subdural implantation of an electrode array,
for long term seizure monitoring;
● 61535
Craniotomy with elevation of bone flap; for removal of epidural or subdural electrode array,
without excision of cerebral tissue (separate procedure); and
● 61760
Stereotactic implantation of depth electrodes into the cerebrum for long term seizure monitoring.
Regarding
ICD-10 codes, the International Classification of Diseases, Tenth Edition (ICD-10) is a clinical cataloging system that went into effect
for the U.S. healthcare industry on October 1, 2015, after a series of lengthy delays. Accounting for modern advances in clinical treatment
and medical devices, ICD-10 codes offer many more classification options compared to those found in its predecessor, ICD-9. Within the
healthcare industry, providers, coders, IT professionals, insurance carriers, government agencies and others use ICD codes to properly
note diseases on health records, to track epidemiological trends and to assist in medical reimbursement decisions.
ICD-10
codes for epilepsy are as follows:
● G40.0
Localization-related (focal) (partial) idiopathic epilepsy and epileptic syndromes with seizures
of localized onset;
● G40.1
Localization-related (focal) (partial) symptomatic epilepsy and epileptic syndromes with
simple partial seizures;
● G40.2
Localization-related (focal) (partial) symptomatic epilepsy and epileptic syndromes with
complex partial seizures;
● G40.3
Generalized idiopathic epilepsy and epileptic syndromes;
● G40.A
Absence epileptic syndrome;
● G40.4
Other generalized epilepsy and epileptic syndromes;
● G40.50
Epileptic seizures related to external causes, not intractable;
● G40.80
Other epilepsy; and
● G40.82
Epileptic spasms.
We
believe that many of the indications we are pursuing with our technologies are currently reimbursed on a widespread basis by Medicare,
Medicaid and private insurance companies.
Medicare,
Medicaid, health maintenance organizations and other third-party payors are increasingly attempting to contain healthcare costs by limiting
both coverage and the level of reimbursement of new medical devices, and, as a result, their coverage policies may be restrictive, or
they may not cover or provide adequate payment for our products. In order to obtain reimbursement arrangements, we may have to agree
to a net sales price lower than the net sales price we might charge in other sales channels. Our revenue may be limited by the continuing
efforts of government and third-party payors to contain or reduce the costs of healthcare through various increasingly sophisticated
means, such as requiring prospective reimbursement and second opinions, purchasing in groups, or redesigning benefits. Our future dependence
on the commercial success of our technologies makes us particularly susceptible to any cost containment or reduction efforts. Accordingly,
if government and other third-party payors do not provide adequate coverage and reimbursement for our products and the related insertion
and removal procedures, our financial performance will be negatively impacted.
14
NeuroOne
Medical Technologies Corporation
FORM 10-K
Manufacturing,
Supply and Quality Assurance
We
currently outsource the supply and manufacture of all components of our prototypes of our technology under development. We plan to continue
with an outsourced manufacturing arrangement for the foreseeable future. Our third-party manufacturers are recognized in their field
for their competency to manufacture the respective portions of our system and have quality systems established that meet FDA requirements.
We believe at this time the manufacturers we currently utilize have sufficient capacity to meet our requirements. We believe that as
we increase our demand in the future, our per-unit costs will decrease materially. We have also identified capable second source manufacturers
and suppliers in the event of disruption from any of our primary vendors.
Our
suppliers meet the latest ISO 13485 certification, which includes design control requirements. As a medical device developer, the facilities
of our sterilization and other critical suppliers are subject to periodic inspection by the FDA and corresponding state and foreign agencies.
We believe that our quality systems and those of our suppliers are robust and achieve high product quality. We plan to audit our suppliers
periodically to ensure conformity with the specifications, policies and procedures for our devices.
Research
and Development
Our
research and development team, which includes our Director of Electrode Development, utilizes advice from leading experts in the neurotech
field on our scientific advisory board and is focused on the development of thin film cortical grid and strip electrodes and depth electrodes
for recording, ablation and chronic stimulation for brain related disorders as well as stimulation for spinal cord stimulation for back
related pain. Our research and development expenses were $6.9 million and $4.9 million for the years ended September 30, 2023 and 2022,
respectively.
Competition
In
the market for Epilepsy diagnosis, our cortical strip, grid and depth electrode technology will likely compete with Integra Life Science’s
Integra Epilepsy Strip, Grid and depth electrodes, which provide a similar function to our diagnostic technologies. These products are
well established in the marketplace and Integra has greater resources than us, which could allow them to innovate faster. Ad-Tech Medical
Instrument Corporation’s Epilepsy/LTM (subdural grid, strip and depth) electrodes, which have become the market leaders for diagnostic
mapping in epilepsy, and PMT’s Cortac Strips and grid electrodes and Depthalon depth electrodes are used for recording brain activity
similar to other competitive technologies. In addition, Dixie Medical has launched a product line of depth electrodes and CorTec has
launched a cortical electrode product line called AirRay. Today’s success rates for seizure free post-operative conditions remain
at 50%, which has limited patients’ willingness to undergo the currently highly invasive surgical procedure. We will also compete
against other companies in early stages of development of thin film technologies.
In
the neuro-ablation market, we expect to compete with Medtronic’s Visualase guided-laser ablation technology and Monteris Medical’s
NeuroBlate technology, which use MRI guided laser surgical ablation for use to ablate, necrotize or coagulate soft tissue through interstitial
irradiation or thermal therapy in medicine and surgery in the discipline of neurosurgery with 1064 nm lasers. Their website claims it
is used for ablation in the brain for soft tissue and tumors. We believe there are other laser-based systems in development that will
compete with these technologies.
In
the neurostimulation market, we expect to compete with NeuroPace’s RNS system approved for epilepsy, Medtronic’s Activa system
approved for Parkinson’s disease, Boston Scientific Vercise (indicated for Parkinson’s, dystonia and essential tremors),
Abbott/St. Jude Medical’s Infinity DBS system (approved for Parkinson’s disease and essential tremors), Liva Nova/Cyberonic’s
VNS therapy intended for patients suffering with epilepsy.
Although
we will face potential competition from many different sources, we believe that our technology, knowledge, experience and scientific
resources will provide us with competitive advantages. For a discussion of the key competitive factors that we believe will impact the
success of our cortical strip, grid electrodes under development, if successfully developed and approved, see “—Our Solution”
above.
15
NeuroOne
Medical Technologies Corporation
FORM 10-K
Many
of the companies against which we may compete in the future have significantly greater financial resources and expertise in research
and development, manufacturing, preclinical testing, conducting clinical trials, obtaining regulatory approvals and marketing approved
products than we do. Mergers and acquisitions in the pharmaceutical, biotechnology and diagnostic industries may result in even more
resources being concentrated among a smaller number of our competitors. Smaller or early stage companies may also prove to be significant
competitors, particularly through collaborative arrangements with large and established companies. These competitors also compete with
us in recruiting and retaining qualified scientific and management personnel and establishing clinical trial sites and subject registration
for clinical trials, as well as in acquiring technologies complementary to, or necessary for, our development.
WARF
License
In
January 2020, we entered into an Amended and Restated Exclusive Start-Up Company License Agreement, dated as of January 21, 2020, as
amended on June 15, 2020 (the “WARF License”) with WARF, which amended and restated in full the Original WARF License. Pursuant
to the WARF License, WARF has granted to us an exclusive license to make, use and sell, in the United States only, products that employ
certain licensed patents for a neural probe array or thin-film micro electrode array and method. We have agreed to pay WARF a royalty
equal to a single-digit percentage of our product sales pursuant to the WARF License, with a minimum annual royalty payment of $50,000
for calendar year 2020, $100,000 for calendar year 2021 and $150,000 for calendar year 2022 and each calendar year thereafter that the
WARF License is in effect. The minimum annual royalty payment for calendar year 2020 in the amount of $50,000 was paid in January 2021.
If we or any of our sublicensees contest the validity of any licensed patent, the royalty rate will be doubled during the pendency of
such contest and, if the contested patent is found to be valid and would be infringed by us if not for the WARF License, the royalty
rate will be tripled for the remaining term of the WARF License.
WARF
may terminate this license on 30 days’ written notice, if we default on the payments of amounts due to WARF or fail to timely submit
development reports, actively pursue our development plan or breach any other covenant in the WARF License and fail to remedy such default
in 90 days or in the event of certain bankruptcy events involving us. WARF may also terminate the WARF License (i) on 90 days’
notice if we had failed to have commercial sales of one or more FDA-approved products under the WARF License by June 30, 2021 or (ii)
if, after royalties earned on sales begin to be paid, such earned royalties cease for more than four calendar quarters. The first commercial
sale occurred on December 7, 2020, prior to the June 30, 2021 deadline. The WARF License otherwise expires by its terms on the date that
no valid claims on the patents licensed thereunder remain. We expect the latest expiration of a licensed patent to occur in 2030.
In
addition, WARF reserves the right to grant non-profit research institutions and government agencies non-exclusive licenses to practice
and use the inventions of the licensed patents for non-commercial research purposes, and we grant WARF a non-exclusive, sub licensable,
royalty-free right and license for non-commercial research purposes to use improvements to the licensed patents. In the event that we
discontinue use or commercialization of the licensed patents or improvements thereon, we must grant WARF an option to obtain a non-exclusive,
sub-licensable, royalty-bearing license to use the improvements for commercial purposes.
See
“Risk Factors—Risks Related to Our Business-We depend on intellectual property licensed from WARF for our technology, including
our technology under development, and the termination of this license would harm our business” for additional information regarding
the WARF License.
Mayo
Foundation for Medical Education and Research License and Development Agreement
In
May 2017, we entered into an Amended and Restated License and Development Agreement, dated as of May 25, 2017 (the “Mayo Development
Agreement”), with Mayo Foundation for Medical Education and Research (“Mayo”) to license worldwide (i) certain know
how for the development and commercialization of products, methods and processes related to flexible circuit thin film technology for
the recording of tissue and (ii) the products developed therefrom, and to partner with Mayo to assist the Company in the investigation,
research application, development and improvement of such technology. Mayo has agreed to assist us by providing access to certain individuals
at Mayo (the “Mayo Principal Investigators”), in developing our cortical thin film flexible circuit technology, including
prototype development, animal testing, protocol development for human and animal use, abstract development and presentation and access
to and license of any intellectual property that the Mayo Principal Investigators develop relating to the procedure.
16
NeuroOne
Medical Technologies Corporation
FORM 10-K
We
have agreed to pay Mayo a royalty equal to a single-digit percentage of our product sales pursuant to the Mayo Development Agreement.
Mayo may purchase any developed products licensed under the Mayo Development Agreement at the best price offered by us to the end user
in the prior year. The Mayo Development Agreement generally will expire in October 2034, unless the Mayo know-how and improvements under
the Mayo Development Agreement remain in use, and the Mayo Development Agreement may be terminated by Mayo for cause or under certain
circumstances.
For
additional information regarding the Mayo Development Agreement, see “Risk Factors—Risks Related to Our Business—We
depend on our partnership with Mayo to license certain know how for the development and commercialization of our technology. Termination
of this partnership would harm our business, and even if this partnership continues, it may not be successful.”
Intellectual
Property
Protection
of our intellectual property is a strategic priority for our business. We rely on a combination of patents, trademarks, copyrights, and
trade secrets as well as nondisclosure and assignment of invention agreements, material transfer agreements, confidentiality agreements
and other measures to protect our intellectual property and other proprietary rights.
Patents
As
of September 30, 2023, our patent estate consists of three issued United States patents licensed from WARF covering a neural probe array
and thin-film micro electrode array and method, a U.S. patent issued in October 2022 and a pending European patent application filed
by us and published in 2020 relating to improved neural depth electrodes, a pending U.S. patent application filed by us and published
in 2020 relating to agent-delivering neural electrodes in which a Notice of Allowance was issued in August 2023 (along with a second
pending U.S. patent application filed in 2023 relating to the same technology), pending U.S. and European patent applications published
in 2020 relating to minimally invasive electrodes (with a Notice of Allowance issued in September 2023 in the U.S. application), pending
U.S. and European patent applications published in 2021 relating to spinal cord stimulation systems and devices (with a Notice of Allowance
issued in October 2023 in the U.S. application), pending U.S. and European patent applications published in 2022 relating to methods
of making electrode probes, a pending U.S. patent application (and corresponding PCT application) published in 2023 relating to devices
having temperature sensors, a pending U.S. patent application (and corresponding PCT application) filed in 2023 relating to deformable
spinal cord stimulation devices, a pending U.S. patent application (and corresponding PCT application) filed in 2023 relating to spinal
cord stimulation device implantation methods, and a pending U.S. patent application (and corresponding PCT application) filed in 2023
relating to ablation probe and temperature sensing device systems. The licensed issued patents expire between 2025 and 2030, subject
to any patent extensions that may be available for such patents. The issued patent owned by NeuroOne expires in 2041. If a patent or
patents are issued on our additional pending patent applications, the resulting patents are projected to expire between 2038 and 2043.
Our
patent applications may not result in issued patents, and any patents that have been issued or may be issued in the future may not protect
the commercially important aspects of our technology. Furthermore, the validity and enforceability of our issued patents may be challenged
by third parties and our patents could be invalidated or modified by the issuing governmental authority. Third parties may independently
develop technology that is not covered by our patents that is similar to, or competes with, our technology. In addition, our intellectual
property may be infringed or misappropriated by third parties, particularly in foreign countries where the laws and governmental authorities
may not protect our proprietary rights as effectively as those in the United States.
17
NeuroOne
Medical Technologies Corporation
FORM 10-K
The
medical device industry in general, and the recording, ablation and neurostimulation sector of this industry in particular, are characterized
by the existence of a large number of patents and frequent litigation based on assertions of patent infringement. We are aware of numerous
patents issued to third parties that may relate to the technology used in our business, including the design and manufacture of electrodes
and pulse generators, as well as methods for device placement. Each of these patents contains multiple claims, any one of which may be
independently asserted against us. The owners of these patents may assert that the manufacture, use, sale or offer for sale of our cortical
strip and grid electrodes infringe one or more claims of their patents. Furthermore, there may be additional patents issued to third
parties of which we are presently unaware that may relate to aspects of our technology that such third parties could assert against us
and materially and adversely affect our business. In addition, because patent applications can take many years to issue, there may be
patent applications that are currently pending and unknown to us, which may later result in issued patents that third parties could assert
against us and materially and adversely affect our business.
Any
adverse determination in litigations or post grant trial proceedings at the Patent Office relating to intellectual property to which
we are or may become a party could subject us to significant liabilities to third parties or require us to seek licenses from third
parties, and could result in the cancellation and/or invalidation of our intellectual property. Furthermore, if a court finds that
we have willfully infringed a third party’s intellectual property, we could be required to pay treble damages and/or attorney
fees for the prevailing party, in addition to other penalties. Although intellectual property disputes in the medical device area
are often settled through licensing or similar arrangements, costs associated with such arrangements can be substantial and often
require ongoing royalty payments. We may be unable to obtain necessary licenses on satisfactory terms, if at all. If we do not
obtain necessary licenses, we may not be able to redesign our products to avoid infringement; if we are able to redesign our
products to avoid infringement, we may not receive FDA approval in a timely manner. Adverse determinations in a judicial or
administrative proceeding or failure to obtain necessary licenses could prevent us from manufacturing and selling our products,
which could have a significant adverse impact on our business.
Trademarks
We
have registered U.S. trademarks for the trademarks “NEUROONE” and “EVO”. We have a pending U.S. trademark application
for the trademark OneRF. We also have registered trademarks in the United Kingdom and the European Union for the trademark OneRF.
Trade
Secrets
We
also rely on trade secrets, technical know-how and continuing innovation to develop and maintain our competitive position. We seek to
protect such intellectual property and proprietary information by generally requiring our employees, consultants, contractors, scientific
collaborators and other advisors to execute non-disclosure and assignment of invention agreements upon the commencement of their employment
or engagement as the case may be. Our agreements with our employees prohibit them from providing us with any intellectual property or
proprietary information of third parties. We also generally require confidentiality agreements or material transfer agreements with third
parties that receive or have access to our confidential information, data or other materials. Notwithstanding the foregoing, there can
be no assurance that our employees and third parties that have access to our confidential proprietary information will abide by the terms
of their agreements. Despite the measures that we take to protect our intellectual property and confidential information, unauthorized
third parties may copy aspects of our products or obtain and use our proprietary information.
Government
Regulation
Our
cortical strip, grid and depth electrodes are medical devices subject to extensive and ongoing regulation by the FDA and the U.S. CMS.
Regulations cover virtually every critical aspect of a medical device company’s business operations, including research activities,
product development, quality, manufacturing, supplier management and risk management, contracting, reimbursement, medical communications,
and sales and marketing. In the United States, the Federal Food, Drug and Cosmetic Act (“FDCA”), and the implementing regulations
of the FDA (specifically, 21 Code of Regulations (21 CFR Parts 801- labeling, 803 - medical device reporting, 807 - registration and
listing, subpart E premarket notification 510k, 812 - investigational device exemption, 814 - premarket approval and 820 - quality system
regulation) and applicable FDA issued guidance’s govern product design and development, pre-clinical and clinical testing, premarket
clearance or approval, risk management, product manufacturing, quality systems, import and export, product labeling, product storage,
recalls and field safety corrective actions, advertising and promotion, product sales and distribution, and post-market clinical surveillance.
Our business is subject to federal, state, local and harmonized standards, such as ISO 13485, ISO 14971, and FDA’s Quality System
Regulation (“QSR”) contained in 21 CFR Part 820.
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Regulatory
Framework in the United States
Device
classification
The
FDA characterizes medical devices into one of three classes, Class I, II, and III. Regulatory control increases from Class I to Class
III. The device classification regulation defines the regulatory requirements for a general device type. Most Class I devices are exempt
from Premarket Notification under 510(k); most Class II devices require Premarket Notification under 510(k); and most Class III devices
require Premarket Approval.
Class
I devices are subject to general controls including labeling. However, most such devices are exempt from pre-market notification. If
a device is exempted from any of the general controls, such exemption is stated in the classification regulation for that device. This
pertains to manufacturers’ methods and documentation of the design, testing, production, control quality assurance, labeling, packaging,
sterilization, storage and shipping of products. Class II devices are subject to the same general controls but may be subject to special
controls such as performance standards, post-market surveillance, FDA guidance, or particularized labeling, and may also require clinical
testing prior to clearance. Class III devices are those for which insufficient information exists to assure safety and effectiveness
solely through general or special controls, including devices that support or sustain human life, are of substantial importance in preventing
impairment of human health, or which present a potential, unreasonable risk of illness or injury. Premarket Approval is required for
most Class III devices.
Some
Class I and Class II devices are exempted by regulation from the pre-market notification requirement under Section 510(k) of the FDCA,
also referred to as a 510(k) clearance, but must meet the requirement of compliance with substantially all of the QSR. However, a pre-market
approval (“PMA application”) is required for devices deemed by the FDA to pose the greatest risk, such as life-sustaining,
life-supporting or certain implantable devices, or those that are “not substantially equivalent” either to a device previously
cleared through the 510(k) process or to a “preamendment” Class III device in commercial distribution before May 28, 1976
when PMA applications were not required. The PMA approval process is more comprehensive than the 510(k) clearance process and typically
takes multiple years to complete.
Based
on FDA classifications, our diagnostic cortical strip, grid and depth electrode and RF ablation technology are categorized by the FDA
as Class II devices that do not require clinical testing and can be filed as a 510(k), similar to existing competitive technology. The
Company expects that indications for treating epilepsy, Parkinson’s and other patients suffering from motor related neurological
deficiencies via a permanent implant for chronic treatment will require a PMA process to commercially distribute in the United States.
The 510(k)
clearance process
Under
the 510(k) clearance process, the manufacturer must submit to the FDA a premarket notification, demonstrating that the device is “substantially
equivalent” to a legally marketed predicate device. A predicate device is a legally marketed device that is not subject to a PMA,
i.e., a device that was legally marketed prior to May 28, 1976 (pre-amendments device) and for which a PMA is not required, a device
that has been reclassified from Class III to Class II or I, or a device that was previously found substantially equivalent through the
510(k) process. To be “substantially equivalent,” the proposed device must have the same intended use, indications for use
as the predicate device, and either have the same technological characteristics as the predicate device or have different technological
characteristics and not raise different questions of safety or effectiveness than the predicate device. Clinical data is sometimes required
to support substantial equivalence.
After
a 510(k) premarket notification is submitted, the FDA determines whether to accept it for substantive review. If it lacks necessary information
for substantive review, the FDA will refuse to accept the 510(k) notification. If it is accepted for filing, the FDA begins a substantive
review. The FDA goal is to complete its review of a 510(k) notification within 90 calendar days of receiving the 510(k) notification.
As a practical matter, clearance often takes longer, and clearance is never assured. Although many 510(k) premarket notifications are
cleared without clinical data, the FDA may require further information, including clinical data, to make a determination regarding substantial
equivalence, which may significantly prolong the review process. If the FDA agrees that the device is substantially equivalent, it will
grant clearance to commercially market the device.
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If
the FDA determines that the device is not “substantially equivalent” to a predicate device, or if the device is automatically
classified into Class III, the device sponsor must then fulfill the more rigorous premarketing requirements of the PMA approval process,
or seek reclassification of the device through the De Novo process. The De Novo request provides a marketing pathway to classify novel
medical devices for which general controls alone, or general and special controls, provide reasonable assurance of safety and effectiveness
for the intended use, but for which there is no legally marketed predicate device. De Novo classification is a risk-based classification
process. The De Novo classification process is an alternate pathway to classify medical devices that are automatically classified into
Class III but which are low to moderate risk. A manufacturer can submit a Pre-submission for De Novo review if the manufacturer is unable
to identify an appropriate predicate device and the new device or new use of the device presents a moderate or low risk.
After
a device receives 510(k) clearance, any modification that could significantly affect its safety or effectiveness, or that would constitute
a new or major change in its intended use, will require a new 510(k) clearance or, depending on the modification, could require a De
Novo device application and potentially a PMA application. The FDA requires each manufacturer to determine whether the proposed change
requires a new submission in the first instance, but the FDA can review any such decision and disagree with a manufacturer’s determination.
Many minor modifications are accomplished by a letter-to-file in which the manufacture documents the change in an internal letter-to-file
based on adherence to FDA guidance on changes to an existing 510(k) device. The letter-to-file is in lieu of submitting a new 510(k)
to obtain clearance for such change. The FDA can always review these letters to file in an inspection. If the FDA disagrees with a manufacturer’s
determination regarding whether a new premarket submission is required for the modification of an existing 510(k)-cleared device, the
FDA can require the manufacturer to cease marketing and/or recall the modified device until 510(k) clearance or approval of a De Novo
or PMA application is obtained. In addition, in these circumstances, the FDA can impose significant regulatory fines or penalties for
failure to submit the requisite application(s).
The PMA
approval process
Following
receipt of a PMA application, the FDA conducts an administrative review to determine whether the application is sufficiently complete
to permit a substantive review. If it is not, the agency will refuse to file the PMA. If it is, the FDA will accept the application for
filing and begin its review. The FDA has 180 days to review a filed PMA application, although the review of an application more often
occurs over a significantly longer period of time. During this review period, the FDA may request additional information or clarification
of information already provided, and the FDA may issue a major deficiency letter to the applicant, requesting the applicant’s response
to deficiencies communicated by the FDA.
Before
approving or denying a PMA, an FDA advisory committee may review the PMA at a public meeting and provide the FDA with the committee’s
recommendation on whether the FDA should approve the submission, approve it with specific conditions, or not approve it. The FDA is not
bound by the recommendations of an advisory committee, but it considers such recommendations carefully when making decisions.
Prior
to approval of a PMA, the FDA may conduct inspections of the clinical trial data and clinical trial sites, as well as inspections of
the manufacturing facility and processes. Overall, the FDA review of a PMA application generally takes between one and three years, but
may take significantly longer. The FDA can delay, limit or deny approval of a PMA application for many reasons, including:
● the
device may not be safe, effective, reliable or accurate to the FDA’s satisfaction;
● the
data from pre-clinical studies and clinical trials may be insufficient to support approval;
● the
manufacturing process or facilities may not meet applicable requirements; and
● changes
in FDA approval policies or adoption of new regulations may require additional data.
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If
an FDA evaluation of a PMA application is favorable, the FDA will either issue an approval letter, or approvable letter, which usually
contains a number of conditions that must be met in order to secure final approval of the PMA. When and if those conditions have been
fulfilled to the satisfaction of the FDA, the agency will issue a PMA approval letter authorizing commercial marketing of a device, subject
to the conditions of approval and the limitations established in the approval letter. If the FDA’s evaluation of a PMA application
or manufacturing facilities is not favorable, the FDA will deny approval of the PMA or issue a not approvable letter. The FDA also may
determine that additional tests or clinical trials are necessary, in which case the PMA approval may be delayed for several months or
years while the trials are conducted and data is submitted in an amendment to the PMA. The PMA process can be expensive, uncertain and
lengthy and a number of devices for which FDA approval has been sought by other companies have never been approved by the FDA for marketing.
New
PMA applications or PMA supplements may be required for modifications to the manufacturing process, labeling, device specifications,
materials or design of a device that has been approved through the PMA process. PMA supplements often require submission of the same
type of information as an initial PMA application, except that the supplement is limited to information needed to support any changes
from the device covered by the approved PMA application and may or may not require as extensive technical or clinical data or the convening
of an advisory panel.
Clinical
Trials
Clinical
trials are typically required to support a PMA application and are sometimes required for a 510(k) clearance. These trials generally
require submission of an application for an Investigational Device Exemption (“IDE”), to the FDA. The IDE application must
be supported by appropriate data, such as animal and laboratory testing results, showing that it is safe to test the device in humans
and that the testing protocol is scientifically sound. The IDE application must be approved in advance by the FDA for a specified number
of patients, unless the product is deemed a non-significant risk device and eligible for abbreviated IDE requirements. Generally, clinical
trials for a significant risk device may begin once the IDE application is approved by the FDA and the study protocol and informed consent
are approved by appropriate institutional review boards at the clinical trial sites. The FDA’s approval of an IDE allows clinical
testing to go forward, but it does not bind the FDA to accept the results of the trial as sufficient to prove the product’s safety
and efficacy, even if the trial meets its intended success criteria. All clinical trials must be conducted in accordance with the FDA’s
IDE regulations that govern investigational device labeling, prohibit promotion, and specify an array of recordkeeping, reporting and
monitoring responsibilities of study sponsors and study investigators. Clinical trials must further comply with the FDA’s regulations
for institutional review board approval and for informed consent and other human subject protections. Required records and reports are
subject to inspection by the FDA. The results of clinical testing may be unfavorable or, even if the intended safety and efficacy success
criteria are achieved, may not be considered sufficient for the FDA to grant approval or clearance of a product. Clinical trials must
be entered into the clinical trials registry at clinicaltrials.gov.
The
commencement or completion of any clinical trial may be delayed or halted, or be inadequate to support approval of a PMA application,
for numerous reasons, including, but not limited to, the following:
● the
FDA or other regulatory authorities do not approve a clinical trial protocol or a clinical
trial, or place a clinical trial on hold;
● patients
do not enroll in clinical trials at the rate expected;
● patients,
sponsor (NeuroOne) or study sites do not comply with trial protocols;
● patient
follow-up is not at the rate expected;
● patients
experience unanticipated adverse event;
● the
data safety monitoring board determines the study should be placed on hold;
● patients
die during a clinical trial, even though their death may not be related to the products that
are part of our trial;
● institutional
review boards and third-party clinical investigators may delay or reject the trial protocol;
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● third-party
clinical investigators decline to participate in a trial or do not perform a trial on the
anticipated schedule or consistent with the clinical trial protocol, good clinical practices
or other FDA requirements;
● the
sponsor (NeuroOne) or third-party organizations do not perform data collection, monitoring
and analysis in a timely or accurate manner or consistent with the clinical trial protocol
or investigational or statistical plans;
● third-party
clinical investigators have significant financial interests related to the sponsor (NeuroOne)
or the study that the FDA deems to make the study results unreliable, or the company or investigators
fail to disclose such interests;
● regulatory
inspections of our clinical trials or manufacturing facilities, which may, among other things,
require us to undertake corrective action or suspend or terminate our clinical trials;
● changes
in governmental regulations or administrative actions;
● the
interim or final results of the clinical trial are inconclusive or unfavorable as to safety
or efficacy; and
● the
FDA concludes that our trial design is inadequate to demonstrate safety and efficacy.
Other
Regulatory Requirements
Even
after a device receives clearance or approval and is placed in commercial distribution, numerous regulatory requirements apply. These
include:
● establishment
registration and device listing;
● QSR,
which requires manufacturers, including third party manufacturers, to follow stringent design,
testing, risk management, production control, supplier/contractor selection, complaint handling,
documentation and other quality assurance procedures during all aspects of the manufacturing
process;
● labeling
regulations that prohibit the promotion of products for uncleared, unapproved or “off-label”
uses, and impose other restrictions on labeling, advertising and promotion;
● MDR
regulations, which require that manufacturers report to the FDA if their device may have
caused or contributed to a death or serious injury or malfunctioned in a way that would likely
cause or contribute to a death or serious injury if the malfunction were to recur;
● voluntary
and mandatory device recalls to address problems when a device is mislabeled or does not
meet specifications and could be a risk to health; and
● corrections
and removals reporting regulations, which require that manufacturers report to the FDA field
corrections and product recalls or removals if undertaken to reduce a risk to health posed
by the device or to remedy a violation of the FDCA that may present a risk to health.
Also,
the FDA may require us to conduct post-market surveillance studies or establish and maintain a system for tracking our products through
the chain of distribution to the patient level. The FDA enforces regulatory requirements by conducting periodic, unannounced inspections
and market surveillance. Inspections may include the manufacturing facilities of our subcontractors.
Failure
to comply with applicable regulatory requirements can result in enforcement actions by the FDA and other regulatory agencies. These may
include any of the following sanctions or consequences:
● warning
letters or untitled letters that require corrective action;
● fines
and civil penalties;
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● unanticipated
expenditures;
● delays
in approving or refusal to approve future products;
● FDA
refusal to issue certificates to foreign governments needed to export products for sale in
other countries;
● suspension
or withdrawal of FDA clearance or approval;
● product
recall or seizure; interruption of production;
● operating
restrictions;
● injunctions;
and
● criminal
prosecution.
Our
contract manufacturers, specification developers and some suppliers of components or device accessories, also are required to manufacture
our products in compliance with current good manufacturing practice requirements set forth in the QSR. The QSR requires a quality system
for the design, risk management, manufacture, packaging, labeling, storage, installation and servicing of marketed devices, and it includes
extensive requirements with respect to quality management and organization, device design, buildings, equipment, purchase and handling
of components or services, production and process controls, packaging and labeling controls, device evaluation, distribution, installation,
complaint handling, servicing, and record keeping. The FDA evaluates compliance with the QSR through periodic unannounced inspections
that may include the manufacturing facilities of our subcontractors. If the FDA believes that any of our contract manufacturers or regulated
suppliers are not in compliance with these requirements, it can shut down such manufacturing operations, require a recall of our products,
refuse to approve new marketing applications, institute legal proceedings to detain or seize products, enjoin future violations or assess
civil and criminal penalties against us or our officers or other employees.
The
Health Insurance Portability and Accountability Act of 1996 (“HIPAA”) and Similar Foreign and State Laws and Regulations
Affecting the Transmission, Security and Privacy of Health Information
We
may also be subject to data privacy and security regulation by both the federal government and the states in which we conduct our business.
HIPAA, as amended by the Health Information Technology for Economic and Clinical Health Act, or HITECH, and their respective implementing
regulations, imposes specified requirements relating to the privacy, security and transmission of individually identifiable health information.
Among other things, HITECH makes HIPAA’s security standards directly applicable to business associates, defined as service providers
of covered entities that create, receive, maintain or transmit protected health information in connection with providing a service for
or on behalf of a covered entity. HITECH also created four new tiers of civil monetary penalties and gave state attorneys general new
authority to file civil actions for damages or injunctions in federal courts to enforce the federal HIPAA laws and seek attorneys’
fees and costs associated with pursuing federal civil actions. In addition, many state laws govern the privacy and security of health
information in certain circumstances, many of which differ from HIPAA and each other in significant ways and may not have the same effect.
Fraud
and Abuse Laws
In
addition to FDA restrictions, there are numerous U.S. federal and state laws pertaining to healthcare fraud and abuse, including anti-kickback
laws and physician self-referral laws. Our relationships with healthcare providers and other third parties are subject to scrutiny under
these laws. Violations of these laws are punishable by criminal and civil sanctions, including, in some instances, imprisonment and exclusion
from participation in federal and state healthcare programs, including the Medicare, Medicaid and Veterans Administration health programs.
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Federal
Anti-Kickback and Self-Referral Laws
The
federal Anti-Kickback Statute (the “Anti-Kickback Statute”) prohibits persons from knowingly and willfully soliciting, receiving,
offering or providing remuneration (including any kickback, bribe or rebate), directly or indirectly, overtly or covertly, to induce
either the referral of an individual, or the furnishing, recommending, or arranging of a good or service, for which payment may be made
under a federal healthcare program such as Medicare and Medicaid or other federal healthcare programs. The term “remuneration”
has been broadly interpreted to include anything of value, including such items as gifts, discounts, the furnishing of supplies or equipment,
credit arrangements, waiver of payments and providing anything at less than its fair market value. Although there are a number of statutory
exceptions and regulatory safe harbors protecting some common activities from prosecution, the exceptions and safe harbors are drawn
narrowly. Practices that involve remuneration that may be alleged to be intended to induce prescribing, purchases or recommendations
may be subject to scrutiny if they do not qualify for an exception or safe harbor. Failure to meet all of the requirements of a particular
applicable statutory exception or regulatory safe harbor does not make the conduct per se illegal under the Anti-Kickback Statute. Instead,
the legality of the arrangement will be evaluated on a case-by-case basis based on a review of all its relevant facts and circumstances.
Several courts have interpreted the statute’s intent requirement to mean that if any one purpose of an arrangement involving remuneration
is to induce referrals of (or purchases, or recommendations related to) federal healthcare covered business, the Anti-Kickback Statute
has been implicated and potentially violated.
The
penalties for violating the Anti-Kickback Statute include imprisonment for up to five years, fines of up to $25,000 per violation and
possible exclusion from federal healthcare programs such as Medicare and Medicaid. Many states have adopted prohibitions similar to the
Anti-Kickback Statute, some of which do not have the same exceptions and apply to the referral of patients for healthcare services reimbursed
by any source, not only by the Medicare and Medicaid programs. Further, the Anti-Kickback Statute was amended by the Patient Protection
and Affordable Care Act (“ACA”). Specifically, as noted above, under the Anti-Kickback Statute, the government must prove
the defendant acted “knowingly” to prove a violation occurred. The ACA added a provision to clarify that with respect to
violations of the Anti-Kickback Statute, “a person need not have actual knowledge” of the statute or specific intent to commit
a violation of the statute. This change effectively overturns case law interpretations that set a higher standard under which prosecutors
had to prove the specific intent to violate the law. In addition, the ACA codified case law that a claim including items or services
resulting from a violation of the Anti-Kickback Statute constitutes a false or fraudulent claim for purposes of the federal civil False
Claims Act (the “False Claims Act”).
We
plan to provide the initial training to providers and patients necessary for appropriate use of our technology either through our own
educators or by contracting with outside educators that have completed an appropriate training course. Outside educators are reimbursed
for their services at fair market value.
Noncompliance
with the Anti-Kickback Statute could result in our exclusion from Medicare, Medicaid or other governmental programs, restrictions on
our ability to operate in certain jurisdictions, and civil and criminal penalties.
The
federal Physician Self-Referral Prohibition, commonly known as the “Stark Law,” prohibits a physician from ordering “designated
health services,” including durable medical equipment, for Medicare and Medicaid patients from entities with which the physician
(or an immediate family member) has a “financial relationship.” Financial relationships include both compensation arrangements
and investment and ownership interests. Violation of the Stark Law could result in denial of payment, disgorgement of reimbursements
received under a noncompliant arrangement, civil penalties, and exclusion from Medicare, Medicaid or other governmental programs. We
believe that we have structured our provider arrangements to comply with current Stark Law requirements.
Nevertheless,
a determination of liability under such laws could result in fines and penalties and restrictions on our ability to operate in these
jurisdictions.
Additionally,
as some of these laws are still evolving, we lack definitive guidance as to the application of certain key aspects of these laws as they
relate to our arrangements with providers with respect to patient training. We cannot predict the final form that these regulations will
take or the effect that the final regulations will have on us. As a result, our provider and training arrangements may ultimately be
found to be not in compliance with applicable federal law.
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False
Claims Act
The
False Claims Act provides, in part, that the federal government may bring a lawsuit against any person whom it believes has knowingly
presented, or caused to be presented, a false or fraudulent request for payment from the federal government, or who has made a false
statement or used a false record to get a claim approved. In addition, amendments in 1986 to the False Claims Act have made it easier
for private parties to bring “qui tam” whistleblower lawsuits against companies under the False Claims Act. Penalties include
fines ranging from $5,500 to $11,000 for each false claim, plus three times the amount of damages that the federal government sustained
because of the act of that person. Qui tam actions have increased significantly in recent years, causing greater numbers of healthcare
companies to have to defend a false claim action, pay fines or be excluded from Medicare, Medicaid or other federal or state healthcare
programs as a result of an investigation arising out of such action.
There
are other federal anti-fraud laws that prohibit, among other actions, knowingly and willfully executing, or attempting to execute, a
scheme to defraud any healthcare benefit program, including private third-party payors, knowingly and willfully embezzling or stealing
from a healthcare benefit program, willfully obstructing a criminal investigation of a healthcare offense, and knowingly and willfully
falsifying, concealing or covering up a material fact or making any materially false, fictitious or fraudulent statement in connection
with the delivery of or payment for healthcare benefits, items or services.
Additionally,
HIPAA established two federal crimes related to making false statements in relation to healthcare matters. The healthcare fraud statute
prohibits knowingly and willfully executing a scheme to defraud any healthcare benefit program, including private payors. A violation
of this statute is a felony and may result in fines, imprisonment or exclusion from government sponsored programs. The false statements
statute prohibits knowingly and willfully falsifying, concealing or covering up a material fact or making any materially false, fictitious
or fraudulent statement in connection with the delivery of or payment for healthcare benefits, items or services. A violation of this
statute is a felony and may result in fines or imprisonment.
Civil
Monetary Penalties Law
In
addition to the Anti-Kickback Statute and the False Claims Act, the federal government has the authority to seek civil monetary penalties,
or CMPs, assessments, and exclusion against an individual or entity based on a wide variety of prohibited conduct. For example, the Civil
Monetary Penalties Law authorizes the imposition of substantial CMPs against an entity that engages in activities including, but not
limited to: (1) knowingly presenting or causing to be presented, a claim for services not provided as claimed or which is otherwise false
or fraudulent in any way; (2) knowingly giving or causing to be given false or misleading information reasonably expected to influence
the decision to discharge a patient; (3) offering or giving remuneration to any beneficiary of a federal health care program likely to
influence the receipt of reimbursable items or services; (4) arranging for reimbursable services with an entity which is excluded from
participation from a federal health care program; (5) knowingly or willfully soliciting or receiving remuneration for a referral of a
federal health care program beneficiary; or (6) using a payment intended for a federal health care program beneficiary for another use.
The government is authorized to seek different amounts of CMPs and assessments based on underlying violation. For false or fraudulent
claims, the government may seek a penalty of up to $10,000 for each item or service improperly claimed, and an assessment of up to three
times the amount improperly claimed. For kickback violations, the government may seek a penalty of up to $50,000 for each improper act
and damages of up to three times the amount of remuneration at issue.
State
Fraud and Abuse Provisions
Many
states have also adopted some form of anti-kickback and anti-referral laws and a false claims act. We believe that we are in conformance
to such laws. Nevertheless, a determination of liability under such laws could result in fines and penalties and restrictions on our
ability to operate in these jurisdictions.
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Physician
Payment Sunshine Act
Transparency
laws regarding payments or other items of value provided to healthcare providers and teaching hospitals may also impact our business
practices. The federal Physician Payment Sunshine Act requires most medical device manufacturers to report annually to the Secretary
of Human Health Services financial arrangements, payments, or other transfers of value made by that entity to physicians and teaching
hospitals. The payment information is made publicly available in a searchable format on a CMS website. Over the next several years, we
will need to dedicate significant resources to establish and maintain systems and processes in order to comply with these regulations.
Failure to comply with the reporting requirements can result in significant civil monetary penalties. Similar laws have been enacted
or are under consideration in foreign jurisdictions.
Human
Capital
As
of September 30, 2023, we had 16 employees, all of whom are full-time, eight of whom are engaged in research and development activities,
and all of whom are located in the United States. As of September 30, 2023, we also retained the services of approximately 9 regular
consultants. None of our employees are represented by a labor union or covered by a collective bargaining agreement. We consider our
relationship with our employees to be good. During our 2023 fiscal year, we had one employee resign.
Corporate
Information
Our
principal executive offices are located at 7599 Anagram Drive, Eden Prairie, Minnesota 55344, and our telephone number is 952-426-1383.
Our website address is www.nmtc1.com Information on our website is not part of this Annual Report.