Item 1. Business
Item 1.
Business.
Overview
We are a biotechnology company
with an advanced cell-based technology platform. We have developed a unique three-dimensional, or 3D, technology platform for cell expansion
with an industrial scale in-house Good Manufacturing Practice, or GMP, cell manufacturing facility. We are utilizing our technology in
the field of regenerative medicine and food tech and plan to utilize it in other industries and verticals that have a need for our mass
scale and cost-effective cell expansion platform.
We use our advanced cell-based
technology platform in the field of regenerative medicine to develop placenta-based cell therapy product candidates for the treatment
of inflammatory, muscle injuries and hematologic conditions. Our placental expanded, or PLX, cells are adherent stromal cells that are
expanded using our 3D platform. Our PLX cells can be administered to patients off-the-shelf, without blood or tissue matching or
additional manipulation prior to administration. PLX cells are believed to release a range of therapeutic proteins in response to the
patient’s condition.
Our operations are focused
on the research, development and manufacturing of cells and cell-based products, conducting clinical studies and the business development
of cell therapeutics and cell-based technologies, such as our recent collaboration with Tnuva Food Industries – Agricultural Cooperative
in Israel Ltd., through its fully owned subsidiary, Tnuva Food-Tech Incubator (2019), Limited Partnership, or Tnuva, to use our technology
to establish a cultivated food platform.
We expect to demonstrate a
real-world impact and value from our cell-based technology platform, our current PLX pipeline and from other cell-based product candidates
that may be developed based on our platform. Our business model for commercialization and revenue generation includes, but is not limited
to, licensing deals, joint ventures, partnerships, joint development agreements and direct sale of our products.
We are now completing a multinational
Phase III clinical study in muscle recovery following surgery for hip fracture, with sites in the United States, Europe and Israel. In
the last year, we have completed a Phase II clinical study in Acute Respiratory Distress Syndrome, or ARDS, associated with COVID-19 and
a Phase I clinical study for incomplete recovery following bone marrow transplantation. Additional areas of focus for clinical development
include an investigator-led Phase I/II Chronic Graft versus Host Disease, or cGVHD, study in Israel, and an Acute Radiation Syndrome,
or ARS, program under the U.S. Food and Drug Administration, or FDA, animal rule. We believe that each of these indications represents
a severe unmet medical need.
We were incorporated in Nevada
on May 11, 2001. Pluri Inc. has a wholly owned subsidiary, Pluri Biotech Ltd., or the Subsidiary, previously named Pluristem Ltd., which
is incorporated under the laws of the State of Israel. In January 2020, the Subsidiary established a wholly owned subsidiary, Pluristem
GmbH, which is incorporated under the laws of Germany. In January 2022, the Subsidiary established an additional subsidiary, Plurinuva
Ltd., or Plurinuva, which is incorporated under the laws of Israel, which followed the execution of the collaboration agreement with Tnuva
.
On July 26, 2022, we completed
our legal entity name change from Pluristem Therapeutics Inc. to Pluri Inc., by merging a wholly-owned
subsidiary with and into the Company, with us being the surviving corporation. The name change reflects a broader strategy of leveraging
our 3D cell expansion technology to develop innovative cell-based products that can be harnessed for a range of fields beyond medicine,
providing solutions for various areas of life. Effective July 26, 2022, our Nasdaq ticker symbol was changed to “PLUR.”
Scientific Background
Cell therapy is an established
field within the regenerative medicine area. The characteristics and properties of cells vary as a function of tissue source and growth
conditions. The human placenta from which our PLX cells are derived provides an uncontroversial source of non-embryonic, adult cells and
represents an innovative approach in the cell therapy field. The different factors that PLX cells release suggest that the cells can be
used therapeutically for a variety of ischemic, inflammatory, autoimmune and hematological deficiencies.
PLX cells exhibit low immunogenicity,
thus do not require tissue matching prior to administration, which allows the development of ready-to-use / “off-the-shelf”
allogeneic products.
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Our Technology
Our PLX cells are adherent
stromal cells that are expanded using a proprietary three-dimensional, or 3D, process. This system utilizes a synthetic scaffold to create
an artificial 3D environment where placental-derived stromal cells can grow. Our automated proprietary 3D, cGMP approved, process enables
the large-scale monitored and controlled production of reproducible, high quality cell products and can manufacture a large number of
PLX doses. Additionally, our current manufacturing process, which has scaled up during the years, has demonstrated batch-to-batch consistency,
an important manufacturing challenge for biological products.
Our technology platform, a patented and validated
state-of-the-art 3D cell expansion system, aims to advance novel cell-based solutions for a range of initiatives, including, but not limited
to, pharmaceuticals, climate change, food security and animal welfare. Our method is uniquely accurate, scalable, cost-effective, and
consistent from batch to batch. Our technology is currently implemented in the fields of regenerative medicine and food-tech.
Product Candidates
We believe that our technology
will continue to fuel medical research and develop pharmaceuticals, while also being used to potentially create novel cell-based solutions
for other innovative initiatives—such as food-tech, agri-tech, and biologics. We aim to establish partnerships that leverage our
3D cell-based technology to additional industries that require effective, mass cell production.
Pluri Health
Our primary objective is to
be the leading provider of allogeneic placenta-based cell therapy products that are true off-the-shelf products that do not require any
matching or additional manipulation prior to administration. Currently, our PLX products are administered intramuscular, or IM, using
a standard needle and syringe.
PLX-PAD
Our first product candidate,
PLX-PAD, is composed of maternal cells originating from the placenta. PLX-PAD is used in a Phase III multinational clinical study in recovery
following surgery for hip fracture.
PLX-PAD is also under clinical
development in collaboration with Tel Aviv Sourasky Medical Center (Ichilov Hospital) through an investigator-initiated Phase I/II study
for the treatment of Steroid-Refractory cGVHD.
PLX-R18
Our second product candidate,
PLX-R18, is composed of fetal cells originating from the placenta.
We have completed our first
in human Phase I clinical study in incomplete hematopoietic recovery following hematopoietic cell transplantation, or HCT, in the United
States and Israel.
Through our collaboration
in the United States with the National Institutes of Health, or NIH, and the U.S. Department of Defense, or DoD, we are also developing
a solution for ARS following or before exposure to massive radiation via the FDA Animal Rule regulatory pathway.
Modified PLX cells
In the last decade, we developed
an allogeneic platform based on cells originated from the fetal and maternal cell from the placenta, and by using this platform we can
produce large quantities of high-quality cells in automated and robust manufacturing process suitable for cGMP environment. As a platform
technology company, we are currently developing additional product candidates, which are modified or induced PLX cells:
Induced PLX cells: we are
using cells from the placenta, induced with cytokines, to transiently alter their secretion profile.
Modified PLX cells using CRISPR,
or other gene editing technology: CRISPR is a unique technology which allows precise gene editing of cells. Using this technology, we
can initiate the next evolution in cell therapy by allowing the reprograming of cells for specific needs. Our aim is to incorporate the
genetic engineering techniques into our cell manufacturing platform in order to develop large scale allogenic engineered PLX products
designed for specific indications.
We believe that using the
placenta as a unique cell source, combined with our innovative research, development and high-quality manufacturing capabilities, will
be the “engine” that drives this platform technology towards the successful development of additional PLX cell therapy products
and indications.
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Our Clinical Development Product Candidates
Orthopedic Indications .
Following FDA and European Medicine Agency, or EMA, clearance, a multinational Phase III study is currently being conducted in the United
States, Europe and Israel. The primary endpoint of this study is the Short Physical Performance Battery, or SPPB, a test for lower limb
performance and functional status. We completed enrollment of 240 patients and the study was designed
to assess the efficacy at six months and a year, as well as safety for up to two years.
On
July 13, 2022, we announced topline results from our Phase III study of muscle regeneration following hip fracture surgery. PLX-PAD
was demonstrated to be an effective accelerator of muscle strength and regeneration. A significant increase in Hip Abduction Strength
(HAS) was observed at week 26 and week 52 for patients treated with PLX-PAD (n=120), in the injured leg (p=0.047, p=0.0022) and uninjured
leg (p=0.073, p=0.0046) compared to placebo (n=120). The study did not meet the primary endpoint, which was the SPPB test at week 26.
The study will continue to follow up with patients for up to 52 weeks for safety and other efficacy measures.
Our Phase III study
protocol and design was based on our phase I/II, randomized, double-blind, placebo-controlled study (n=20) to assess the safety and efficacy
of IM injections of allogeneic PLX-PAD cells for the regeneration of injured gluteal musculature after total hip replacement had been
conducted in Germany under the approval of PEI. In this study, PLX-PAD cells or placebo were administered into the traumatized gluteal
muscle during total hip replacement surgery. The study results met its primary efficacy endpoint, change in maximal voluntary isometric
contraction force of the gluteal muscle at six months after total hip replacement. Patients treated with PLX-PAD had a significantly greater
improvement of maximal voluntary muscle contraction force than the placebo group (p=0.0067). In addition, the study demonstrated that
PLX-PAD was safe and well tolerated by patients.
COVID-19 Complicated by
ARDS . In May 2020, the FDA cleared our Investigational New Drug Application, or IND, for a Phase II study of our PLX-PAD cells for
treatment of severe COVID-19 cases complicated by ARDS and we initiated the study in June 2020. The U.S. study is a randomized, double-blind,
placebo-controlled, multicenter, parallel-group intended to evaluate the efficacy and safety of IM injections of PLX-PAD for the treatment
of severe COVID-19 cases complicated by ARDS. The primary endpoint is the number of ventilator free days, or
VFD, from day 1 through day 28 of the study. Secondary efficacy endpoints include all-cause mortality, duration of mechanical ventilation,
ICU free-days, and hospitalization free-days. Safety and survival follow-up will be conducted until week 52. In addition, the FDA has
cleared our Expanded Access Program, or EAP, for the use of our PLX-PAD cells to treat ARDS caused by COVID-19 outside of the Phase II
COVID-19 complicated by ARDS study in the United States. The EAP approval was for up to 100 patients.
In August 2020, the PEI cleared
our Phase II study in Germany titled, “A Randomized, Controlled, Multicenter, Parallel-Group Phase II Study to Evaluate the Efficacy
and Safety of Intramuscular Injections of PLX PAD for the Treatment of severe COVID-19,” relating to the treatment of patients hospitalized
with severe cases of COVID-19 complicated by ARDS. The primary efficacy endpoint of the study is the number of ventilator free days during
the 28-days from day one through day 28 of the study. Secondary efficacy endpoints include all-cause mortality, duration of mechanical
ventilation, ICU free-days, and hospitalization free-days. Safety and survival follow-up will be conducted until week 52. We enrolled
patients in Europe and Israel under this protocol.
On July 8, 2021, we announced
that we were bringing our COVID-19 complicated by ARDS Phase II studies in the United States, Europe and Israel to clinical readout. The
analysis was based on 89 patients enrolled.
On
December 27, 2021, we announced topline results for our COVID-19 studies based on 89 patients enrolled. The studies did not meet the primary
efficacy endpoint of statistically significant improvement of VFD at 28 days. Taking into consideration the baseline risk factors of the
ARDS patients, no differences in the safety profile were observed between PLX-PAD and placebo. The U.S. study was recently completed,
and the second study conducted in Europe and Israel is planned for completion during the third calendar quarter of 2022.
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Recovery Following HCT .
This Phase I study of PLX-R18 in HCT was completed in the United States and Israel. The study assessed the safety of PLX-R18 by assessing
adverse events, safety labs and vital signs in patients receiving different doses of PLX-R18. One year follow up for all patients was
completed in September 2021 and the results of the study were announced on March 23, 2022. PLX-R18 was well-tolerated with a favorable
safety profile. Patients treated with PLX-R18 showed a mean increase in all three blood cell types compared to baseline with platelets
(p<0.001), hemoglobin (p=0.01) and neutrophils (p=0.15) levels increasing as early as 1 month following PLX-R18 administration and
enduring up to 12 months following treatment. Additionally, the number of transfused units decreased from a mean monthly number of 5.09
for platelets and 2.91 for red blood cells at baseline to 0.55 for platelets (p=0.045) and 0 for red blood cells (p=0.0005) at 12 months.
Peripheral and Cardiovascular
Diseases . We investigated the use of PLX-PAD cells for the treatment of peripheral arterial disease, or PAD, including IC and CLI.
We completed two Phase I safety/dose-escalating clinical studies for CLI, one in the United States and one in Germany. These CLI studies
demonstrated that no blood type or human leukocyte antigen matching is required, and that the administration of PLX-PAD cells is safe,
even if two doses are administered to a patient on two different occasions. We completed a Phase II study in IC which was conducted in
the United States, Germany, South Korea and Israel. A total of 172 patients were treated in this study. IM administration of PLX-PAD cells
was concluded to be safe and well tolerated. We completed a pivotal Phase III study of PLX-PAD cells in the treatment of CLI for
patients with minor tissue loss (Rutherford Category 5) who are unsuitable for revascularization. This multinational Phase III study was
conducted in the United States, Europe and Israel and enrolled 213 patients in total. In December 2020, the independent Data Monitoring
Committee, or DMC, issued its recommendation letter following an interim analysis relating to the CLI Phase III study. A clinical dataset
was reviewed by the independent DMC for safety and analysis of the primary endpoint of amputation-free survival, defined as time to occurrence
of major amputation of the index leg or death. Based on the review, the DMC concluded that the CLI study was unlikely to meet the primary
endpoint by the time of the final analysis. Following the DMC’s recommendation, we decided to terminate the CLI study.
ARS . We have conducted
several animal studies for the evaluation of PLX-R18 for the treatment of ARS, in collaboration with the National Institute of Allergy
and Infectious Diseases, or the NIAID. The NIH funded and conducted a pilot study in non-human primates, or NHPs, to evaluate the therapeutic
effect of PLX-R18 on hematological aspects of ARS. In 2017, we announced results of the NHPs pilot study for PLX-R18 as a treatment for
ARS. Although study size was not designed to show significance, results showed a trend toward improved survival of PLX-R18 treated animals
compared to control, placebo treated animals. The study, conducted and funded by the NIAID, was designed to assess the safety and efficacy
of PLX-R18 following IM injection into irradiated and non-irradiated NHPs. Efficacy measures included survival as well as hematological
parameters which are affected by exposure to high levels of radiation as may occur in a nuclear accident or attack. These data will help
the design of a pivotal study to fulfill the requirements for a Biologics License Application, or BLA, submission under the FDA’s
Animal Rule regulatory pathway.
We plan to continue the discussions
with the different government agencies with the goal of receiving their support for pivotal studies in NHPs as well as conducting the
safety studies required in order to file a BLA for this indication.
In October 2017, we announced
that the FDA granted us an orphan drug designation for our PLX-R18 cell therapy for the prevention and treatment of ARS.
In April 2018, we announced
that the FDA approved our IND application for PLX-R18 cell therapy in the treatment of ARS. The IND allows us to treat victims who may
have been acutely exposed to high dose radiation due to nuclear attack or accident.
In July 2019, we presented positive results from a series of studies
of our PLX-R18 cell therapy product conducted by the DoD Armed Forces Radiobiology Research Institute, part of the Uniformed Services
University of Health Sciences. The studies were designed to evaluate PLX-R18 as a potential prophylactic countermeasure against ARS administered
prior to radiation exposure. These animal studies demonstrate that PLX-R18, administered 24 hours before radiation exposure, and again
72 hours after exposure, resulted in a significant increase in survival rates, from 4% survival rate in the placebo group to 74% in the
treated group. In addition, the data show an increase in recovery of blood lineages and a favorable safety profile. Furthermore, histopathological
analysis and hematopoietic progenitor clonogenic assay of tissues collected show a significant increase in bone marrow cell numbers and
improved regenerative capability into all blood lineages.
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Steroid-Refractory cGVHD .
In September 2017, we signed an agreement with Tel Aviv Sourasky Medical Center (Ichilov Hospital) to conduct a Phase I/II clinical study
of PLX-PAD cell therapy for the treatment of Steroid-Refractory cGVHD. This study is an investigator-initiated study. As such, Tel Aviv
Sourasky Medical Center supports the study and is responsible for its design and implementation. 13 patients have been treated in this
study to date.
Regulatory and Clinical Affairs Strategy
Our cell therapy development
strategy is to hold open and frequent discussions with regulators at all stages of development from preclinical studies to more advanced
regulatory stages. We utilize this strategy in working with the FDA, the EMA, Germany’s PEI as well as other European national competent
authorities, the MOH, Japan’s Pharmaceuticals and Medical Devices Agency, or PMDA, and also the Ministry of Food and Drug Safety,
or MFDS, of South Korea.
Our Activities in the Food Tech Sector
On January 5, 2022, we signed
definitive collaboration agreements with Tnuva through the Subsidiary . Under the definitive
collaboration agreements, or the Joint Venture Agreement, we established a new company, Plurinuva, with the purpose of developing cultivated
meat products of all types and kinds. Plurinuva is intended to be engaged in the development, manufacturing and commercialization of technology,
know-how and products that will be based on licensed products, or the Licensed Products, relating to the field of cultivated meat, or
the Field.
Pursuant to the Joint Venture
Agreement, Tnuva entered into a share purchase agreement, or the SPA, with Plurinuva and the Subsidiary ,
pursuant to which Plurinuva issued on the closing date of the SPA, or the Closing Date, 187,500 ordinary shares, representing 15.79% of
its share capital, to Tnuva, as well as a warrant to purchase additional shares of Plurinuva, in consideration of an aggregate of $7.5
million in cash. In addition, pursuant to the SPA, in the event the Company decides to use its technology for the development of cultivated
milk or fish products, Tnuva shall also have the right, for a period of seven years following the Closing Date, to participate in the
formation of additional separate joint ventures for the development of those products.
The first warrant, or the
First Warrant, issued to Tnuva permits Tnuva to purchase up to 125,000 ordinary shares of Plurinuva at an exercise price of $40.00 per
share and has a term commencing on the Closing Date and ending at the earlier of (i) six months from the Closing Date, (ii) immediately
prior to and subject to the consummation of an initial public offering or acquisition of Plurinuva or (iii) the consummation of a financing
round with a non-affiliated investor. In addition, on the six month anniversary of the Closing Date, and provided that the First Warrant
has not expired, Plurinuva shall issue to Tnuva a second warrant, or the Second Warrant, which will permit Tnuva to purchase up to a number
of ordinary shares of Plurinuva, or the then most senior securities issued by Plurinuva, in consideration for such amount equal to 200%
of the remaining balance of the aggregate purchase price of the First Warrant, provided that Tnuva exercises at least 62,500 ordinary
shares at a price per share of $40.00, or $2,500,000 in the aggregate, of the First Warrant. The Second Warrant’s exercise price
per share equals $76.00. The Second Warrant has a term commencing on the six months anniversary of the Closing Date and ending at the
earlier of (i) six months from its issuance, (ii) immediately prior to and subject to the consummation of an initial public offering or
acquisition of Plurinuva or (iii) the consummation of a financing round with a non-affiliated investor. On August 23, 2022, the First
Warrant was extended for an additional 90-day period, so that the exercise period will end on November 22, 2022.
On
February 24, 2022, we announced the closing of the Joint Venture Agreement and the SPA, and on March 8, 2022, we announced the appointment
of Eyal Rosenthal as Chief Executive Officer of Plurinuva .
Prior to the Closing Date,
the Subsidiary and Plurinuva also executed a technology license agreement, or the License Agreement, and on the Closing Date, the Subsidiary
and Plurinuva executed a transitional services agreement, or the Services Agreement. Pursuant to the License Agreement, the Subsidiary
granted Plurinuva an exclusive, royalty bearing, perpetual and irrevocable, worldwide, non-transferable (except under specific circumstances
specified thereunder), sublicensable license to its technology for the use in the development of the Licensed Products in the Field. In
addition, Plurinuva granted the Subsidiary, pursuant to the License Agreement, an exclusive, perpetual and irrevocable, worldwide, sublicensable,
royalty-free, license to use, make, exploit and develop the improvements made by Plurinuva to the licensed technology outside of the Field.
In consideration for the license, Plurinuva agreed to pay the Subsidiary royalties from its future net sales in the mid-single digits.
Pursuant to the terms of the Services Agreement, the Subsidiary shall provide Plurinuva transitional services to support its development
efforts, for an initial term of eighteen months, subject to mutual extension for an additional six months.
Pursuant to the SPA, Tnuva
and Plurinuva agreed to enter into a commercialization agreement within twelve months pursuant to which Tnuva shall be granted exclusive
marketing, distribution and sale rights of the Licensed Products in Israel. Tnuva’s exclusivity in the region will be subject to
achieving and maintaining specific milestones. Plurinuva shall retain exclusive worldwide marketing, distribution, and sale rights for
the Licensed Products worldwide, except in Israel.
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Intellectual Property
We understand that our success
will depend, in part, on maintaining our intellectual property, and therefore we are committed to protecting our technology and product
candidates with patents and other methods described below.
We are the sole owner of 137
issued patents and approximately 64 pending patent applications in the United States, Europe, China, Japan and Israel, as well as in additional
countries worldwide, including countries in the Far East and South America (in calculating the number of issued patents, each European
patent validated in multiple jurisdictions was counted as a single patent).
Based on the well-established
understanding that the characteristics and therapeutic potential of a cell product are largely determined by the source of the cells and
by the methods and conditions used during their culturing, our patent portfolio includes different types of claims that protect the various
unique aspects of our technology.
Our multi-national portfolio of patent and patent
applications includes the following claims:
●
our proprietary expansion methods for 3D stromal cells and plant cells;
●
composition of matter claims covering the cells;
●
the therapeutic and cosmetic use of PLX cells for the treatment of a variety of conditions; and
●
cell-culture, harvest, thawing and formulation devices.
Through our experience with
adherent stromal cell-based product development, we have developed expertise and know-how in this field and have established procedures
for manufacturing clinical-grade PLX cells in our facilities. Certain aspects of our manufacturing process are covered by patents and
patent applications. In addition, specific aspects of our technology are retained as know-how and trade secrets that are protected by
our confidentiality agreements with our employees, consultants, contractors, manufacturers and advisors. These agreements generally provide
for protection of confidential information, restrictions on the use of materials, and an obligation to assign to us inventions conceived
during the course of performing services for us.
The following table sets forth
our key patents and patent applications and is not intended to represent an assessment of claims, limitations or scope. In some cases,
a jurisdiction is listed as both pending and granted for a single patent family. This is due to pending continuation or divisional applications
of the granted case.
6
The expiration dates of these
patents, based on filing dates, range from 2027 to 2041. Actual expiration dates will be determined according to extensions received based
on the Drug Price Competition and Patent Term Restoration Act of 1984 (P.L. 98-417), commonly known as the “Hatch-Waxman”
Act, which permits extensions of pharmaceutical patents to reflect regulatory delays encountered in obtaining FDA market approval. The
Hatch-Waxman Act is based on a U.S. federal law and therefore only relevant to U.S. patents.
There is a risk that our patents
will be invalidated, and that our pending patent applications will not result in issued patents. We also cannot be certain that we will
not infringe on any patents that may be issued to others. See “Risk Factors - We must further protect and develop our technology
and products in order to become a profitable company.”
Our Patent Portfolio
Patent
Name/ Int. App. No.
Pending
Jurisdictions
Granted
Jurisdictions
Expiry
Date
METHODS
FOR CELL EXPANSION AND USES OF CELLS AND CONDITIONED MEDIA PRODUCED THEREBY FOR THERAPY
PCT/IL2007/000380
China, Hong Kong
Australia, Canada, China, Hong Kong, Europe, Israel,
India, Japan, South Korea, Mexico, Russia, Singapore
March 23, 2027
ADHERENT
CELLS FROM PLACENTA TISSUE AND USE THEREOF IN THERAPY
PCT/IL2008/001185
United States, Israel
Australia, Brazil, Canada, China, Europe, Hong Kong,
Israel, India, Japan, Mexico, Russia, United States, South Korea
September 2, 2028
METHODS
OF TREATING INFLAMMATORY COLON DISEASES
PCT/IL2009/000527
United States, Israel, Russia
May 26, 2029
METHODS
OF SELECTION OF CELLS FOR TRANSPLANTATION
PCT/IL2009/000844
Europe, Israel
September 1, 2029
ADHERENT
CELLS FROM PLACENTA TISSUE AND USE THEREOF IN THERAPY
PCT/IL2009/000846
Australia, Canada, China, Europe, Hong Kong, Israel,
India, Mexico, Russia, Singapore, United States
September 1, 2029
ADHERENT
CELLS FROM PLACENTA TISSUE AND USE THEREOF IN THERAPY
PCT/IL2009/000845
United States, Europe, Israel
September 1, 2029
ADHERENT
STROMAL CELLS DERIVED FROM PLANCENTAS OF MULTIPLE DONORS AND USES THEREOF
PCT/IB2011/001413
United States
Israel
Israel:
April 21, 2031
U.S:
March 22, 2027
ADHERENT
CELLS FROM PLACENTA AND USE OF SAME IN DISEASE TREATMENT
PCT/IB2010/003219
United States, Israel
Australia, Canada, China, Hong Kong, Europe, Israel,
Mexico, New Zealand, United States
November 29, 2030
7
METHODS AND SYSTEMS FOR HARVESTING ADHERENT STROMAL CELLS
PCT/IB2012/000933
China, Israel
Australia, Canada, Europe, Israel, India, South Korea, Mexico, Singapore, United States
April 15, 2032
METHODS FOR TREATING RADIATION OR CHEMICAL INJURY
PCT/IB2012/000664
United States
Europe, Hong Kong, Israel, Japan, South Korea, United States
March 22, 2032
SKELETAL MUSCLE REGENERATION USING MESENCHYMAL STEM CELLS
PCT/EP2011/058730
United States, Europe, Israel
May 27, 2031
GENE AND PROTEIN EXPRESSION PROPERTIES OF ADHERENT STROMAL CELLS
CULTURED IN 3D
PCT/IB2014/059114
Israel, United States
February 20, 2034
DEVICES AND METHODS FOR CULTURE OF CELLS
PCT/IB2013/058184
United States, Israel
August 31, 2033
METHODS FOR PREVENTION AND TREATMENT OF PREECLAMPSIA
PCT/IB2013/058186
China, Hong Kong, Europe, Israel, Japan, South Korea, United States
August 31, 2033
METHOD AND DEVICE FOR THAWING BIOLOGICAL MATERIAL
PCT/IB2013/059808
China
Australia, China, Europe, Hong Kong, Israel, India, Japan, South Korea, Russia, Singapore, United States
October 31, 2033
SYSTEMS AND METHODS FOR GROWING AND HARVESTING CELLS
PCT/IB2015/051559
Israel, United States
March 3, 2035
METHODS AND COMPOSITIONS FOR TREATING AND PREVENTING MUSCLE WASTING
DISORDERS
PCT/IB2015/059763
Israel, United States
December 18, 2035
USE OF ADHERENT STROMAL CELLS FOR ENHANCING HEMATOPOIESIS IN A SUBJECT
IN NEED THEREOF
PCT/IB2016/051585
United States, Israel
March 21, 2036
ALTERED ADHERENT STROMAL CELLS AND METHODS OF PRODUCING AND USING
SAME
PCT/IB2016/053310
Europe, China, Israel
Europe, United States
June 6, 2036
METHODS AND COMPOSITIONS FOR TREATING CANCERS AND NEOPLASMS
PCT/IB2017/050868
United States, Japan, Canada, Israel
Europe, Japan
February 16, 2037
METHODS AND COMPOSITIONS FOR TREATING NEUROLOGICAL DISORDERS
PCT/IB2018/052806
Israel, United States
April 23, 2038
METHODS AND COMPOSITIONS FOR TUMOR ASSESSMENT
PCT/IB2018/050984
United States
Israel
February 18, 2038
METHODS AND COMPOSITIONS FOR TREATING ADDICTIONS
PCT/IB2018/055473
Israel, United States
July 23, 2038
8
METHODS AND COMPOSITIONS FOR DETACHING ADHERENT CELLS
Germany 10 2018 115 360.0
Germany
June 25-July 3, 2038
DRUG CONTAINING HUMAN PLACENTA-ORIGIN MESENCHYMAL CELLS AND PROCESS FOR PRODUCING VEGF USING THE CELLS JP20030579842
Japan
March 28, 2023
METHODS AND COMPOSITIONS FOR PRODUCING CANNABINOIDS
PCT/IL2020/050477
Canada, Europe, Hong Kong, Israel, Japan, United States
April 28, 2040
METHODS FOR EXPANDING ADHERENT STROMAL CELLS AND CELLS OBTAINED
THEREBY
PCT/IB2019/052569
Israel, Singapore, United States
March 28, 2039
METHODS AND COMPOSITIONS FOR TREATING SUBJECTS EXPOSED TO VESICANTS
AND OTHER CHEMICAL AGENTS
PCT/IB2019/055074
Israel, United States
June 18, 2039
METHODS AND COMPOSITIONS FOR FORMULATING AND DISPENSING PHARMACEUTICAL
FORMULATIONS
PCT/IB2019/053115
United States
Israel
United States: April 16, 2039
Israel: April 26, 2038
THERAPEUTIC DOSAGE REGIMENS COMPRISING ADHERENT STROMAL CELLS
PCT/IB2019/054828
Israel, United States
June 10, 2039
MODULAR BIOREACTOR
PCT/IB2019/058429
Europe, Israel, Hong Kong, South Korea, Singapore, United States
October 3, 2039
THERAPEUTIC METHODS AND COMPOSITIONS
PCT/IB2019/059544
Israel, United States
November 6, 2039
METHODS AND COMPOSITIONS FOR TREATING VIRAL INFECTIONS AND SEQUELAE
THEREOF
PCT/IL2021/050268
PCT, United States, Europe,
Israel, Mexico
Israel
First Israeli application: May 14, 2040
Other applications: March 11, 2041
METHODS AND COMPOSITIONS FOR AESTHETIC AND COSMETIC TREATMENT AND
STIMULATING HAIR GROWTH
PCT/IL2020/050363
United States, Europe,
Canada, China, Japan, Israel, Australia
March 26, 2040
METHODS FOR EXPANDING ADHERENT STROMAL CELLS AND CELLS OBTAINED
THEREBY
IL277560
Israel
September 23, 2040
On January 8, 2022, we entered
into a definitive license agreement with Takeda Pharmaceuticals International AG, or Takeda, a company based in Switzerland, which operates
in the field of adipose-derived cells, pursuant to which we granted Takeda a global, non-exclusive license to use several of our patents
(EP2591789, EP3103463, and 3091071), limited to adipose fat cells only, in the field of therapeutics, in exchange for Takeda ceasing its
opposition with regards to said patents and paying us a lump sum of $200,000. The license covers methods for expanding adherent stromal
cells and specified second medical uses.
On January 10, 2022, we entered
into a definitive license agreement with Novadip Biosciences, or Novadip, a company based in Belgium, which operates in the field of adipose-derived
stem cells for cell therapy and cell-free therapy in respect of medical or cosmetic conditions, under which we granted Novadip a global,
non-exclusive, royalty free license to use two of our patents (EP2591789, EP3103463), limited to non-placental cells and cell-derived
therapies, sub-licensable only to Novadip’s customers.
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In April 2016, the Subsidiary
entered into a licensing agreement with TES Holdings Co., Ltd., a venture company derived from the University of Tokyo, to obtain a key
patent in Japan to cover the treatment of ischemic diseases with placental cell therapy. This license is subject to future single low-digit
royalties from sales of our product for treatment in the field of ischemic diseases in Japan, until expiry of the patent in 2023. This
license is in addition to the grant of 13 patents to us by the Japanese Patent Office, which address three dimensional methods for expanding
placental and adipose cells, and specified cell therapies produced from placental tissue using these methods and bedside thawing devices.
Research and Development
Foundational Research
Our initial technology, the
PluriX™ Bioreactor system, was invented at the Technion – Israel Institute of Technology’s Rappaport Faculty of Medicine,
in collaboration with researchers from the Weizmann Institute of Science. This technology was acquired by us and has been further significantly
developed by our research and development teams over the ensuing years.
Collaborations and Ongoing Research and Development Plans
Charité Agreement
In July 2007, we entered into
a five-year collaborative research agreement with the Berlin-Brandenburg Center for Regenerative Therapies at Charité – University
Medicine Berlin, or Charité, which was extended from time to time through June 2027. We and Charité are collaborating on
a variety of indications utilizing PLX cells. According to the agreement, we will be the exclusive owner of the technology and any products
produced as a result of the collaboration. Charité will receive between 1% to 2% royalties from net sales of new developments that
have been achieved during the joint development.
Fukushima Medical University
We signed an MOU for a collaboration with Fukushima Medical University,
Fukushima Global Medical Science Center. The purpose of the collaboration is to develop our PLX-R18 cells for the treatment of ARS, and
for morbidities following radiotherapy in cancer patients. The collaboration will proceed alongside research supported by the NIH, which
is studying PLX-R18 as a potential treatment for the hematologic component of ARS. The MOU for a collaboration with Fukushima will be
renewed automatically on a yearly basis. Each party is entitled to terminate the agreement for convenience upon providing the other party
30 days prior notice.
CHA Agreement
On June 26, 2013, we entered
into an exclusive out-licensing and commercialization agreement, or the CHA Agreement, with CHA for conducting clinical studies and commercialization
of our PLX-PAD product candidate in South Korea in connection with two indications: the treatment of CLI and IC. We will continue to retain
rights to our proprietary manufacturing technology and cell-related intellectual property.
The first clinical study that
was performed as part of the CHA Agreement was a Phase II study in IC. Upon the first regulatory approval for a PLX product in South Korea,
if granted, for the specified indications, we and CHA will establish an equally owned joint venture with the purpose of commercializing
PLX cell products in South Korea. Additionally, we will be able to use the data generated by CHA to pursue the development of PLX product
candidates outside of South Korea.
The term of the CHA Agreement
extends from June 24, 2013 until the later of the expiration, lapse, cancellation, abandonment or invalidation of the last valid patent
claim covering the development of the product indications. The CHA Agreement contains customary termination provisions, including in the
event that the parties do not reach an agreement upon a development plan for conducting the clinical studies.
Upon termination of the CHA
Agreement, the license granted thereunder will terminate, and all rights included therein will revert to us, whereupon we will be free
to enter into agreements with any other third parties for the granting of a license in or outside South Korea or to deal in any other
manner with such rights as it shall see fit in our sole discretion.
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Horizon 2020
The Phase III study of PLX-PAD
in CLI was conducted as a collaborative project carried out by an international consortium led by the Berlin-Brandenburg Center for Regenerative
Therapies, together with the Company and with the participation of additional third parties.
Our Phase III study of PLX-PAD
cell therapy in the treatment of muscle recovery following surgery for hip fracture is a collaborative project carried out by an international
consortium led by Charité, together with us and with the participation of additional third parties.
In October 2017, we entered
into a collaborative project, the nTRACK, carried out by an international consortium led by Leitat. The aim of this project is to examine
gold nano particles labeling of stem cells to enable assessment of cells’ in vivo persistence and distribution in correlation to
biological efficacy. Under the project, PLX cells, labeled and non-labeled will be characterized and examined in animal models for muscle
injury.
Horizon Europe
On September 6, 2022, we announced
that a €7.5 million non-dilutive grant from the European Union’s Horizon program has been awarded to PROTO (Advanced PeRsOnalized
Therapies for Osteoarthritis), an international collaboration led by Charité Berlin Institute of Health Center for Regenerative
Therapies. The goal of the PROTO project is to utilize our PLX-PAD cells in a Phase I/IIa study for the treatment of mild to moderate
knee osteoarthritis. Final approval of the grant is subject to completion of the consortium and Horizon Europe grant agreements. The funds
from the grant are expected to be allocated between Pluri and other members of the consortium in accordance with budget and work packages
which will be determined by the consortium.
The Phase I/IIa study will
be carried out by Charité. We, together with an international consortium under the leadership of Professor Tobias Winkler, Principal
Investigator, at the Berlin Institute of Health Center of Regenerative Therapies, Julius Wolff Institute and Center for Musculoskeletal
Surgery
Indiana University
In April 2018, NIAID awarded
a $2.5 million grant to Indiana University to conduct, together with us, studies of our PLX-R18 cell therapy in the treatment of ARS.
The goal of this project is to extend the PLX-R18 ARS studies to include examination of survival in pediatric and geriatric populations
as well as the ability of PLX-R18 to alleviate delayed effects of radiation in survivors.
Chart Industries
In November 2018, we entered
into a license agreement with a subsidiary of Chart Industries, Inc., or Chart, regarding our thawing device for cell-based therapies.
Pursuant to the terms of the agreement, Chart obtained the exclusive rights to manufacture and market the thawing device in all territories
worldwide, excluding Greater China, and we are to receive royalties from sales of the product and supply of an agreed upon number of thawing
devices. Royalties shall commence on the date of Chart’s first commercial sale of the thawing device.
NASA
In February 2019, we entered
a collaboration with NASA’s Ames Research Center to evaluate the potential of our PLX cell therapies in preventing and treating
medical conditions caused during space missions.
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U.S. Department of Defense
In August 2017, we announced
that a pilot study of our PLX-R18 cell therapy was initiated by the DoD. The study examined the effectiveness of PLX-R18 as a treatment
for ARS prior to, and within the first 24 hours of exposure to radiation. In July 2019, we presented positive results from a series of
studies of our PLX-R18 cell therapy product conducted by the DoD.
RESTORE
We are members of a large-scale
research initiative, the RESTORE project which has received funding of €1,000,000 (approximately $1,100,000) from the European Union’s
Horizon 2020 research and innovation program, to submit a full grant application for the development and advancement of transformative
therapeutics. Currently, due to COVID-19, there is no open call for full proposal. The members of the RESTORE project continue to collaborate
in attempt to collectively submit the grant application once such call is available.
CRISPR-IL
In June 2020, we announced that we were selected as a member of the
CRISPR-IL consortium, a group funded by the IIA. CRISPR-IL brings together the leading experts in life science and computer science from
academia, medicine, and industry, to develop Artificial Intelligence, or AI, based end-to-end genome-editing solutions. These next-generation,
multi-species genome editing products for human, plant, and animal DNA, have applications in the pharma, agriculture, and aquaculture
industries. CRISPR-IL is funded by the IIA with a total budget of approximately $10,000,000 of which, an amount of approximately $480,000
was a direct grant allocated to us, for an initial period of 18 months, with a potential for extension of an additional 18 months, or
the Second Period, with additional budget from the IIA.
In October 2021, we received
approval for an additional grant of approximately $583,000 from the IIA pursuant to the CRISPR-IL consortium program, for an additional
period of eighteen months.
The CRISPR-IL consortium program does not require
us to pay royalties to the IIA.
United Arab Emirates-based Abu Dhabi Stem Cells
Center
In August 2020, we signed
a non-binding MOU with the United Arab Emirates-based Abu Dhabi Stem Cells Center, a specialist healthcare center focused on cell therapy
and regenerative medicine. The aim of the collaboration is to capitalize on each party’s respective areas of expertise in cell therapies.
The parties have agreed to exchange research results, share samples, join usage of equipment and testing, and other essential activities
related to advancing the treatment and research of cell therapies for a broad range of medical conditions.
In-House Clinical Manufacturing
We have the in-house capability
to perform clinical cell manufacturing. Our state-of-the-art Good GMP grade manufacturing facility in Haifa has been in use since February
2013 for the main purpose of clinical grade, large-scale manufacturing. The facility’s new automated manufacturing process and products
were approved for production of PLX-PAD for clinical use by the FDA, EMA, MFDS, PMDA and the MOH. Our second product, PLX-R18, was cleared
by the FDA and the MOH for clinical use. Furthermore, the site was inspected and approved by a European Union qualified person (European
accreditation body), approving that the site and production processes meet the current GMP for the purpose of manufacturing clinical grade
products.
The site was also inspected
and approved by the MOH and we received a cGMP Certification and manufacturer-importer authorization.
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We obtain the human placentas
used for our research and manufacturing activities from various hospitals in Israel after receiving a written informed consent by the
mother and pathogen clearance. Any medical waste related to the use of placentas is treated in compliance with local environmental laws
and standards.
We have developed a serum-free
formulation to support the manufacturing of cell therapy products. This serum-free formulation was developed using our deep understanding
in cell therapy industrial scale production standards, and the quality methods designed to support implementation in Phase III development
and marketing. Achieving this significant technological challenge is expected to provide us with large-scale, highly consistent production
capacity with operational independency from third party suppliers for standard serum, an expensive and quantity limited product. PLX-R18
is the first product candidate manufactured using the serum-free media.
Government Regulation
The development, manufacturing,
and future marketing of our cell therapy product candidates are subject to the laws and regulations of governmental authorities in the
United States, Europe and Israel, as well as other countries in which our products may be marketed in the future like Japan, and South
Korea. In addition, the manufacturing conditions are specifically inspected by the MOH.
The FDA and the EMA must approve
products prior to marketing. Furthermore, various governmental statutes and regulations also govern or influence testing, manufacturing,
safety, labeling, storage and record keeping related to such products and their marketing. Governments in other countries have similar
requirements for testing and marketing.
The process of obtaining these
approvals and the subsequent compliance with appropriate statutes and regulations require the expenditure of substantial time, resources
and money. There can be no assurance that our product candidates will ultimately receive marketing approval, or, if approved, will be
reimbursed by public and private health insurance.
There are several stages every drug undergoes during
its development process. Among these are:
●
Performance of nonclinical laboratory and animal studies to assess a drug’s biological activity and to identify potential safety concerns, and to characterize and document the product’s chemistry, manufacturing controls, formulation, and stability. In accordance with regulatory requirements, nonclinical safety and toxicity studies are conducted under Good Laboratory Practice, requirements to ensure their quality and reliability;
●
The manufacture of the product according to GMP regulations and standards;
●
Conducting adequate and well-controlled human clinical studies in compliance with Good Clinical Practice, or GCP, to establish the safety and efficacy of the product for its intended indication; and
●
Potential post-marketing clinical testing and surveillance of the product after marketing approval, which can result in additional conditions on the approvals or suspension of clinical use.
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Approval of a drug for clinical
studies in humans and approval of marketing are sovereign decisions of states, made by national, or, in case of the European Union, international
regulatory competent authorities.
The Regulatory Process in the United States
In the United States, our
product candidates are subject to regulation as a biological product under the Public Health Service Act and the Federal Food, Drug and
Cosmetic Act. The FDA, regulating the approval of clinical studies and marketing applications in the United States, generally requires
the following steps prior to approving a new biological product for use either for clinical studies or for commercial sale:
●
Submission of an IND Application, which must become effective before clinical testing in humans can begin;
●
Obtaining approval of Institutional Review Boards, or IRBs, of research institutions or other clinical sites to introduce the drug candidate into humans in clinical studies;
●
FDA may grant approval for EAP prior to the completion of clinical studies, in order to allow access for the investigational drug, for patients that are excluded from the study;
●
FDA may grant priority review status to expedite the BLA review process. Obtaining a Fast Track designation allows access for the request of priority review;
●
Submission of a BLA for marketing authorization of the product, which must include adequate results of pre-clinical testing and clinical studies;
●
Submission of BLA with a proof of efficacy that is based only on animal studies is feasible in instances where human efficacy studies cannot be conducted because the conduct of such studies is unethical and field studies after an accidental or deliberate exposure are not feasible;
●
FDA review of the BLA in order to determine, among other things, whether the product is safe and effective for its intended uses; and
●
FDA inspection and approval of the product manufacturing facility at which the product will be manufactured.
The Regulatory Process in Europe
In the European Union, our
investigational cellular products are regulated under the Advanced Therapy Medicinal Product regulation, a regulation specific to cell
and tissue products. Additionally, as of January 31, 2022, conducting clinical studies within EMA countries is subject to clinical trials
regulation. This European Union regulation requires:
●
Filing a Central Clinical Trial Application utilizing the Clinical Trials Information System (CTIS) and obtaining an assessment and approval;
●
Obtaining approval of local and central ethics committees as required to test the investigational product into humans in clinical studies;
●
Conducting adequate and well-controlled clinical studies to establish the safety and efficacy of the investigational product for its intended use; and
●
Since our investigational cellular products are regulated under the Advanced Therapy Medicinal Product regulation, the application for marketing authorization to the EMA is mandatory within the 28 member states of the European Union. The EMA is expected to review and approve the MAA.
In May 2015, we were selected by the
EMA for development of PLX-PAD cells via the EMA Adaptive Pathways Project.
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Other Regulations
In general, the approval procedure
varies among countries, and may involve additional preclinical testing and clinical studies. The requirements and time required may differ
from those required for FDA or EMA approval. Each country may impose certain procedures and requirements of its own. Most countries other
than the United States, the European Union and Japan are willing to consider requests for marketing approval only after the product had
been approved for marketing by either the FDA, the EMA or the PMDA. The decision regarding marketing approval is made following the submission
of a dossier that is thoroughly assessed and critically addressed.
In Japan, we have completed
the required regulatory interactions with the PMDA, prior to the submission of clinical study notification, in the framework of the new
regulations for regenerative therapy effective in November 2014, which promote expedited approval for regenerative therapies that are
being developed for seriously debilitating/life-threatening indications.
Clinical Studies
Typically, in the United States,
as well as in the European Union, clinical development involves a three-phase process, although the phases may overlap. Phase I,
clinical studies are conducted in a small number of healthy volunteers, or patients in cases of ethical issues with using healthy volunteers
and are designed to provide information about product safety and to evaluate the pattern of drug distribution and metabolism within the
body.
Phase II clinical studies
are conducted in a homogenous group of patients afflicted with the specific target disease, to explore preliminary efficacy, optimal dosages
and confirm the safety profile. In some cases, an initial study is conducted in patients to assess both preliminary efficacy and preliminary
safety and patterns of drug metabolism and distribution, in which case it is referred to as a Phase I/II study. Phase III clinical
studies are generally large-scale, multi-center, controlled studies conducted with a heterogeneous group of patients afflicted with the
target disease, aiming to provide statistically significant support of efficacy, as well as safety and potency. The Phase III studies
are considered confirmatory for establishing the efficacy and safety profile of the drug and are critical for approval. In some circumstances,
a regulatory agency may require Phase IV, or post-marketing studies in case additional information needs to be collected after the
drug is on the market.
During all phases of clinical
development, regulatory agencies require extensive monitoring and auditing of all clinical activities, clinical data and clinical study
sites investigators to minimize risks and ensure high quality and integrity of the collected data. The sponsor of a clinical study is
required to submit an annual safety report to the relevant regulatory agencies, in which serious adverse events are reported, and also
to submit in an expedited manner any individual serious adverse events that are suspected to be related to the tested drug and are unexpected
with its use. An agency may, at its discretion, re-evaluate, alter, suspend, or terminate the clinical study based upon the data that
have been accumulated to that point and its assessment of the risk/benefit ratio to the patient.
Employees
As of June 30, 2022, we employed
a total of 154 full-time employees and 5 part-time employees, of whom, 128 full-time employees and 5 part-time employees are engaged in
research and development, manufacturing and clinical development.
As of August 30, 2022, we
employed a total of 129 full-time employees and 6 part-time employees, of whom, 102 full-time employees and 6 part-time employees are
engaged in research and development, manufacturing and clinical development.
The reduction in the number
of our employees was part of an efficiency and cost reduction plan we initiated in June 2022.
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Competition
Our legacy product candidates have focused on
the regenerative medicine field. The regenerative medicine field is characterized by intense competition, as global and local pharma
players are becoming more engaged in the cell therapy field based on the advancements made in clinical studies and due to the
favorable regenerative medicine legislation in certain regions. We face competition from both allogeneic and autologous cell therapy
companies, academic, commercial and research institutions, pharmaceutical companies, biopharmaceutical companies, and governmental
agencies. Some of the clinical indications we currently have under development are also being investigated in preclinical and
clinical programs by others.
While there are hundreds of companies in the regenerative medicine
space globally, there are multiple participants in the cell therapy field based in the United States, Europe, Japan, Korea, and Australia
such as Athersys Inc., Celularity Inc., Tigenix NV (acquired by Takeda), SanBio Inc. and Mesoblast Ltd. Among other things, we expect
to compete based upon our intellectual property portfolio, our in-house manufacturing efficiencies and capabilities, and the efficacy
of our products. Our ability to compete successfully will depend on our continued ability to attract and retain experienced and skilled
executives, scientific and clinical development personnel, to identify and develop viable cellular therapeutic candidates, and exploit
these products commercially. Given the magnitude of the potential opportunity for cell therapy, we expect competition in this area to
intensify.
More recently, through our collaboration with Tnuva and the establishment
of Plurinuva, we have begun to utilize our technology in the food tech field. Competitors in the cultivated meat domain include both producers
of consumer-end-products, as well as those developing inputs for the production process. Plurinuva competes with companies that include
Upside Foods, Future Meat, GOOD Meat, Mosa Meat, Aleph Farms, and Gourmey.
We believe that our ability to compete in the food tech field will
derive from our experienced team, our unique 3D technology platform, and our industrial scale in-house GMP, cell manufacturing facility,
together with our partner, Tnuva, which has vast experience in the food business.
Impact of COVID-19
In managing our ongoing global clinical studies, as well as our daily
operations, in the ongoing COVID-19 global pandemic, we are taking all necessary precautions for the safety and well-being of patients,
healthcare providers involved in our studies, and our employees. We are continuing our operational and manufacturing activities, subject
to the directives of the MOH, with a dedicated team on site at our facilities. In addition, the majority of our employees have been vaccinated
or recovered from COVID-19 and we are using remote work technologies that enable the mitigation of office staff while allowing other activities
to be conducted without the need for a physical presence in our facilities, if necessary. The COVID-19 global pandemic caused delays in
enrollment of some of our clinical studies. In addition, we are following the FDA and EMA guidelines regarding the management of clinical
studies during COVID-19. However, the impact of the COVID-19 global pandemic is constantly evolving, and we may experience further impacts
on our daily operations, including the need for employees to potentially self-isolate based on potential exposure to the virus, difficulties
for our employees in travelling abroad, and delays in our ongoing research work with various hospitals and academic institutions.
Available Information
Additional information about
us is contained on our Internet website at www.pluri-biotech.com. Information on our website is not incorporated by reference into this
report. Under the “SEC Filings” and “Financial Information” sections, under the “Investors & Media”
section of our website, we make available free of charge our Annual Reports on Form 10-K, Quarterly Reports on Form 10-Q, Current Reports
on Form 8-K, and amendments to those reports filed or furnished pursuant to Section 13(a) of the Securities Exchange Act of 1934, as amended,
or the Exchange Act, as soon as reasonably practicable after we electronically file such material with, or furnish it to, the SEC. Our
reports filed with the SEC are also made available on the SEC’s website at www.sec.gov. The following Corporate Governance documents
are also posted on our website: Code of Business Conduct and Ethics, Anti Bribery and Corruption and Anti Money Laundering and Terrorist
Financing Compliance Policy, Trading Policy and the Charters for each of the Committees of our Board of Directors, or the Board.
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