Category Archives: Induced Pluripotent Stem Cells


Induced Pluripotent Stem Cells (iPSCs) Market 2020 | Growth Drivers, Challenges, Trends, Market Dynamics and Forecast to 2026 – Cole of Duty

Reprocell

The scope of the Report:

The report analyzes the key opportunities, CAGR, and Y-o-Y growth rates to allow readers to understand all the qualitative and quantitative aspects of the Induced Pluripotent Stem Cells (iPSCs) market. A competition analysis is imperative in the Induced Pluripotent Stem Cells (iPSCs) market and the competition landscape serves this objective. A wide company overview, financials, recent developments, and long and short-term strategies adopted are par for the course. Various parameters have been taken into account while estimating market size. The revenue generated by the leading industry participants in the sales of Induced Pluripotent Stem Cells (iPSCs) across the world has been calculated through primary and secondary research. The Induced Pluripotent Stem Cells (iPSCs) Market analysis is provided for the international markets including development trends, competitive landscape analysis, and key regions development status.

By Regions:

* North America (The US, Canada, and Mexico)

* Europe (Germany, France, the UK, and Rest of the World)

* Asia Pacific (China, Japan, India, and Rest of Asia Pacific)

* Latin America (Brazil and Rest of Latin America.)

* Middle East & Africa (Saudi Arabia, the UAE, , South Africa, and Rest of Middle East & Africa)

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Highlights of the Induced Pluripotent Stem Cells (iPSCs) market study:

Speculations for sales:

The report contains historical revenue and volume that backing information about the market capacity, and it helps to evaluate conjecture numbers for key areas in the Induced Pluripotent Stem Cells (iPSCs) market. Additionally, it includes a share of every segment of the Induced Pluripotent Stem Cells (iPSCs) market, giving methodical information about types and applications of the market.

Key point summary of the Induced Pluripotent Stem Cells (iPSCs) market report:

This report gives a forward-looking prospect of various factors driving or restraining market growth.

It presents an in-depth analysis of changing competition dynamics and puts you ahead of competitors.

It gives a six-year forecast evaluated on the basis of how the market is predicted to grow.

It assists in making informed business decisions by creating a pin-point analysis of market segments and by having complete insights of the Induced Pluripotent Stem Cells (iPSCs) market.

This report helps users in comprehending the key product segments and their future.

Strategic Points Covered in TOC:

Chapter 1: Introduction, market driving force product scope, market risk, market overview, and market opportunities of the global Induced Pluripotent Stem Cells (iPSCs) market

Chapter 2: Evaluating the leading manufacturers of the global Induced Pluripotent Stem Cells (iPSCs) market which consists of its revenue, sales, and price of the products

Chapter 3: Displaying the competitive nature among key manufacturers, with market share, revenue, and sales

Chapter 4: Presenting global Induced Pluripotent Stem Cells (iPSCs) market by regions, market share and with revenue and sales for the projected period

Chapter 5, 6, 7, 8 and 9: To evaluate the market by segments, by countries and by manufacturers with revenue share and sales by key countries in these various regions

Finally, the report global Induced Pluripotent Stem Cells (iPSCs) market describes Induced Pluripotent Stem Cells (iPSCs) industry expansion game plan, the Induced Pluripotent Stem Cells (iPSCs) industry knowledge supply, appendix, analysis findings and the conclusion. It includes a through explanation of the cutting-edging technologies and investments being made to upgrade the existing ones.

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Induced Pluripotent Stem Cells (iPSCs) Market 2020 | Growth Drivers, Challenges, Trends, Market Dynamics and Forecast to 2026 - Cole of Duty

Induced Pluripotent Stem Cells Market Overview With Detailed Analysis, Competitive Landscape, Forecast to 2026 – Weekly Wall

Complete study of the global Covid-19 Impact on Induced Pluripotent Stem Cells market is carried out by the analysts in this report, taking into consideration key factors like drivers, challenges, recent trends, opportunities, advancements, and competitive landscape. This report offers a clear understanding of the present as well as future scenario of the global Covid-19 Impact on Induced Pluripotent Stem Cells industry. Research techniques like PESTLE and Porters Five Forces analysis have been deployed by the researchers. They have also provided accurate data on Covid-19 Impact on Induced Pluripotent Stem Cells production, capacity, price, cost, margin, and revenue to help the players gain a clear understanding into the overall existing and future market situation.

Key companies operating in the global Covid-19 Impact on Induced Pluripotent Stem Cells market include Fujifilm Holding Corporation, Astellas Pharma, Fate Therapeutics, Bristol-Myers Squibb Company, ViaCyte, Celgene Corporation, Aastrom Biosciences, Acelity Holdings, StemCells, Japan Tissue Engineering, Organogenesis, etc.

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Segmental Analysis

The report has classified the global Covid-19 Impact on Induced Pluripotent Stem Cells industry into segments including product type and application. Every segment is evaluated based on growth rate and share. Besides, the analysts have studied the potential regions that may prove rewarding for the Covid-19 Impact on Induced Pluripotent Stem Cells manufcaturers in the coming years. The regional analysis includes reliable predictions on value and volume, thereby helping market players to gain deep insights into the overall Covid-19 Impact on Induced Pluripotent Stem Cells industry.

Global Covid-19 Impact on Induced Pluripotent Stem Cells Market Segment By Type:

,Hepatocytes,Fibroblasts,Keratinocytes,Amniotic Cells,Others

Global Covid-19 Impact on Induced Pluripotent Stem Cells Market Segment By Application:

,Academic Research,Drug Development And Discovery,Toxicity Screening,Regenerative Medicine

Competitive Landscape

It is important for every market participant to be familiar with the competitive scenario in the global Covid-19 Impact on Induced Pluripotent Stem Cells industry. In order to fulfil the requirements, the industry analysts have evaluated the strategic activities of the competitors to help the key players strengthen their foothold in the market and increase their competitiveness.

Key companies operating in the global Covid-19 Impact on Induced Pluripotent Stem Cells market include Fujifilm Holding Corporation, Astellas Pharma, Fate Therapeutics, Bristol-Myers Squibb Company, ViaCyte, Celgene Corporation, Aastrom Biosciences, Acelity Holdings, StemCells, Japan Tissue Engineering, Organogenesis, etc.

Key questions answered in the report:

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TOC

1.1 Research Scope1.2 Market Segmentation1.3 Research Objectives1.4 Research Methodology1.4.1 Research Process1.4.2 Data Triangulation1.4.3 Research Approach1.4.4 Base Year1.5 Coronavirus Disease 2019 (Covid-19) Impact Will Have a Severe Impact on Global Growth1.5.1 Covid-19 Impact: Global GDP Growth, 2019, 2020 and 2021 Projections1.5.2 Covid-19 Impact: Commodity Prices Indices1.5.3 Covid-19 Impact: Global Major Government Policy1.6 The Covid-19 Impact on Induced Pluripotent Stem Cells Industry1.7 COVID-19 Impact: Induced Pluripotent Stem Cells Market Trends 2 Global Induced Pluripotent Stem Cells Quarterly Market Size Analysis2.1 Induced Pluripotent Stem Cells Business Impact Assessment COVID-192.1.1 Global Induced Pluripotent Stem Cells Market Size, Pre-COVID-19 and Post- COVID-19 Comparison, 2015-20262.2 Global Induced Pluripotent Stem Cells Quarterly Market Size 2020-20212.3 COVID-19-Driven Market Dynamics and Factor Analysis2.3.1 Drivers2.3.2 Restraints2.3.3 Opportunities2.3.4 Challenges 3 Quarterly Competitive Assessment, 20203.1 By Players, Global Induced Pluripotent Stem Cells Quarterly Market Size, 2019 VS 20203.2 By Players, Induced Pluripotent Stem Cells Headquarters and Area Served3.3 Date of Key Players Enter into Induced Pluripotent Stem Cells Market3.4 Key Players Induced Pluripotent Stem Cells Product Offered3.5 Mergers & Acquisitions, Expansion Plans 4 Impact of Covid-19 on Induced Pluripotent Stem Cells Segments, By Type4.1 Introduction1.4.1 Hepatocytes1.4.2 Fibroblasts1.4.3 Keratinocytes1.4.4 Amniotic Cells1.4.5 Others4.2 By Type, Global Induced Pluripotent Stem Cells Market Size, 2019-2021 5 Impact of Covid-19 on Induced Pluripotent Stem Cells Segments, By Application5.1 Overview5.5.1 Academic Research5.5.2 Drug Development And Discovery5.5.3 Toxicity Screening5.5.4 Regenerative Medicine5.2 By Application, Global Induced Pluripotent Stem Cells Market Size, 2019-20215.2.1 By Application, Global Induced Pluripotent Stem Cells Market Size by Application, 2019-2021 6 Geographic Analysis6.1 Introduction6.2 North America6.2.1 Macroeconomic Indicators of US6.2.2 US6.2.3 Canada6.3 Europe6.3.1 Macroeconomic Indicators of Europe6.3.2 Germany6.3.3 France6.3.4 UK6.3.5 Italy6.4 Asia-Pacific6.4.1 Macroeconomic Indicators of Asia-Pacific6.4.2 China6.4.3 Japan6.4.4 South Korea6.4.5 India6.4.6 ASEAN6.5 Rest of World6.5.1 Latin America6.5.2 Middle East and Africa 7 Company Profiles7.1 Fujifilm Holding Corporation7.1.1 Fujifilm Holding Corporation Business Overview7.1.2 Fujifilm Holding Corporation Induced Pluripotent Stem Cells Quarterly Revenue, 20207.1.3 Fujifilm Holding Corporation Induced Pluripotent Stem Cells Product Introduction7.1.4 Fujifilm Holding Corporation Response to COVID-19 and Related Developments7.2 Astellas Pharma7.2.1 Astellas Pharma Business Overview7.2.2 Astellas Pharma Induced Pluripotent Stem Cells Quarterly Revenue, 20207.2.3 Astellas Pharma Induced Pluripotent Stem Cells Product Introduction7.2.4 Astellas Pharma Response to COVID-19 and Related Developments7.3 Fate Therapeutics7.3.1 Fate Therapeutics Business Overview7.3.2 Fate Therapeutics Induced Pluripotent Stem Cells Quarterly Revenue, 20207.3.3 Fate Therapeutics Induced Pluripotent Stem Cells Product Introduction7.3.4 Fate Therapeutics Response to COVID-19 and Related Developments7.4 Bristol-Myers Squibb Company7.4.1 Bristol-Myers Squibb Company Business Overview7.4.2 Bristol-Myers Squibb Company Induced Pluripotent Stem Cells Quarterly Revenue, 20207.4.3 Bristol-Myers Squibb Company Induced Pluripotent Stem Cells Product Introduction7.4.4 Bristol-Myers Squibb Company Response to COVID-19 and Related Developments7.5 ViaCyte7.5.1 ViaCyte Business Overview7.5.2 ViaCyte Induced Pluripotent Stem Cells Quarterly Revenue, 20207.5.3 ViaCyte Induced Pluripotent Stem Cells Product Introduction7.5.4 ViaCyte Response to COVID-19 and Related Developments7.6 Celgene Corporation7.6.1 Celgene Corporation Business Overview7.6.2 Celgene Corporation Induced Pluripotent Stem Cells Quarterly Revenue, 20207.6.3 Celgene Corporation Induced Pluripotent Stem Cells Product Introduction7.6.4 Celgene Corporation Response to COVID-19 and Related Developments7.7 Aastrom Biosciences7.7.1 Aastrom Biosciences Business Overview7.7.2 Aastrom Biosciences Induced Pluripotent Stem Cells Quarterly Revenue, 20207.7.3 Aastrom Biosciences Induced Pluripotent Stem Cells Product Introduction7.7.4 Aastrom Biosciences Response to COVID-19 and Related Developments7.8 Acelity Holdings7.8.1 Acelity Holdings Business Overview7.8.2 Acelity Holdings Induced Pluripotent Stem Cells Quarterly Revenue, 20207.8.3 Acelity Holdings Induced Pluripotent Stem Cells Product Introduction7.8.4 Acelity Holdings Response to COVID-19 and Related Developments7.9 StemCells7.9.1 StemCells Business Overview7.9.2 StemCells Induced Pluripotent Stem Cells Quarterly Revenue, 20207.9.3 StemCells Induced Pluripotent Stem Cells Product Introduction7.9.4 StemCells Response to COVID-19 and Related Developments7.10 Japan Tissue Engineering7.10.1 Japan Tissue Engineering Business Overview7.10.2 Japan Tissue Engineering Induced Pluripotent Stem Cells Quarterly Revenue, 20207.10.3 Japan Tissue Engineering Induced Pluripotent Stem Cells Product Introduction7.10.4 Japan Tissue Engineering Response to COVID-19 and Related Developments7.11 Organogenesis7.11.1 Organogenesis Business Overview7.11.2 Organogenesis Induced Pluripotent Stem Cells Quarterly Revenue, 20207.11.3 Organogenesis Induced Pluripotent Stem Cells Product Introduction7.11.4 Organogenesis Response to COVID-19 and Related Developments 8 Key Findings 9 Appendix9.1 About US9.2 Disclaimer

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Induced Pluripotent Stem Cells Market Overview With Detailed Analysis, Competitive Landscape, Forecast to 2026 - Weekly Wall

Mogrify strikes deal with US biopharma Sangamo Therapeutics – Cambridge Independent

Cell conversion specialist Mogrify has announced a collaboration and licence agreement with US genomic medicine company Sangamo Therapeutics.

Under the deal, Brisbane-based Sangamo has an exclusive licence to develop allogeneic cell therapies from Mogrifys proprietary induced pluripotent stem cells (iPSCs) and embryonic stem cells (ESCs).

Dr Darrin Disley, CEO of Cambridge Science Park-based Mogrify, said: Mogrify is delighted to announce its second commercial deal with a US biopharma and the first in the exciting field of T cell immunotherapy.

The combination of Mogrifys proprietary systematic cell conversion technology and Sangamos regulatory T cell platform and proprietary ZFP (zinc finger protein) platform is a natural fit. Sangamo is at the forefront of the development of a world-class engineered ZFP genome editing platform and we are very happy to be partnering with such an innovative company.

Mogrify will receive an upfront payment and is eligible for additional payments related to development and regulatory milestones, and product sales.

Jason Fontenot, SVP, head of cell therapy at Sangamo, said: This licence agreement provides Sangamo with access to Mogrifys cell conversion technology, which will diversify our options as we develop off-the-shelf allogeneic CAR-Treg (chimeric antigen receptor regulatory T cell) cell therapies.

We expect this collaboration to accelerate our development of scalable and accessible CAR-Treg cell therapies, so that we can potentially deliver treatments to patients with inflammatory and autoimmune diseases more rapidly.

Mogrifys technology enables the transformation of any human cell type into any other human cell type.

It uses transcription factors or small molecules identified using proprietary big data technologies.

iPSCs and ESCs provide an evergreen starting material for the generation of Tregs. They enable more complex engineering and greater manufacturing scalability.

This could make the resulting therapies more cost-effective and therefore accessible to more patients.

Mogrify will discover and optimise the cell conversion technology from iPSCs or ESCs to regulatory T cells under the agreement, while Sangamo will be granted exclusive rights to use Mogrifys technology to create Tregs from iPSCs or ESCs.

Sangamo expects to use its ZFP gene-engineering technology and therapeutic development capabilities to transform these Tregs into novel off-the-shelf allogeneic CAR-Treg cell therapy candidates.

It aims to take them from clinical development through to registration for the treatment of inflammatory and autoimmune diseases.

Mogrify won the One to Watch award at the 2019 Cambridge Independent Science and Technology Awards.

Read more

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Reversing osteoarthritis: Mogrify secures $1.1m from SBRI Healthcare to assess cartilage regeneration therapy

Mogrify cell therapy technology attracts further $16m funding

Darrin Disley returns to lead Mogrifys new cell revolution

Watch the highlights and see the pictures from the Cambridge Independent Science and Technology Awards 2019

See the rest here:
Mogrify strikes deal with US biopharma Sangamo Therapeutics - Cambridge Independent

How could Covid-19 and the body’s immune response affect the brain? – MIT News

To get ahead of the possible long-term neurological problems from infection, multiple labs in The Picower Institute for Learning and Memory at MIT have begun pursuing research to determine whether and how it affects the brain, either directly or via the bodys heightened immune response. If it indeed does, that would be consistent with a history of reports that infections and immune system activity elsewhere in the body may have long-term impacts on mental health.

While some scientists, for instance, suspect a role for infectious diseases in neurodegenerative disorders such as Parkinsons disease or dementias, Picower Institute Member Gloria Choi and Harvard University immunologist Jun Huh have meticulously traced the pathway by which infection in a pregnant mother can lead to autism-like symptoms in her child and how, counterintuitively, infection in people with some autism spectrum disorders can temporarily mitigate behavioral symptoms. With deep expertise in neuro-immune interactions, as well as in the neural systems underlying the sense of smell, which is reported to be lost in some Covid-19 patients, Choi is planning several collaborative coronavirus studies.

With these various suspected neurological symptoms, if we can determine the underlying mechanisms by which the immune system affects the nervous system upon the infection with SARS-CoV-2 or related viruses, then the next time the pandemic comes we can be prepared to intervene, says Choi, Samuel A. Goldblith Career Development Assistant Professor of Applied Biology in the Department of Brain and Cognitive Sciences.

Like Choi, Picower Professor Li-Huei Tsai is also planning studies of the neurological impact of Covid-19. Tsais studies of Alzheimers disease include investigation of the blood-brain barrier, which tightly gates what goes into and out of the brain through the circulatory system. Technologies that her lab is developing with collaborators including MIT Institute Professor Robert Langer put the team in a unique position to assess whether and how coronavirus infection might overrun or evade that safeguard.

It is critical to know how the coronavirus might affect the brain, Tsai says. We are eager to bring our technology to bear on that question.

Neuro-immune interactions

Choi is considering three lines of coronavirus research. Together with Picower Institute colleagues Newton Professor Mriganka Sur and Assistant Professor Kwanghun Chung, she hopes to tackle the question of anosmia, the loss of smell. Choi has studied the olfactory system in mice since her graduate and postdoc days. Moreover, a key finding of her neuroimmunology research is that because neurons express receptors for some of the signaling molecules, called cytokines, emitted by immune system cells, those interactions can directly affect neural development and activity. Working in mouse models, the team plans to ask whether such an impact, amid the immune systems heightened response to Covid-19, is occurring in the olfactory system.

Based on her and Huhs studies of how maternal infection leads to autism-like symptoms in their offspring, they are concerned about two other aspects of coronavirus infection. One builds on the finding that the risk of offspring developing neurological problems depended strongly on the composition of the pregnant mothers gut microbiome, the populations of bacteria that everyone harbors within their body. Given the wide range of outcomes seen among coronavirus patients, Choi and Huh wonder whether microbiome composition may play a role in addition to factors such as age or underlying health conditions. If that turns out to be the case, then tweaking the microbiome, perhaps with diet or probiotics, could improve outcomes. Working with colleagues in Korea and Japan, they are embarking on studies that will correlate microbiome composition in patients with their coronavirus outcomes.

Over the longer term, Choi and Huh also hope to study whether Covid-19 infection among pregnant mothers presents an elevated risk of their offspring developing neurodevelopmental disorders like autism. In their research in mice, they have showed that given a particular maternal microbiome composition, immune cells in pregnant mice expressed elevated levels of the cytokine IL-17a. The molecule directly influenced fetal brain development, causing neural circuits governing autism-like behavioral symptoms to develop improperly. The pair aim to assess whether that could happen with coronavirus.

Covid-19 access to the brain

A major question is whether and how the SARS-CoV-2 virus can reach the central nervous system. Tsais lab may be able to find out using an advanced laboratory model of the blood-brain barrier (BBB), whose development has been led by postdoc Joel Blanchard. In a study in press, he has shown that the model made of human astrocytes, brain endothelial cells, and pericytes cultured from induced pluripotent stem cells closely mirrors properties of the natural BBB, such as permeability. In collaboration with Langer, the team is integrating the model with induced pluripotent stem cell-derived cultures of neurons and other crucial brain support cells, like microglia and oligodendrocytes, on a chip (called a miBrain chip) to provide a sophisticated and integrated testbed of brain cell and cerebral vascular interaction.

With the miBrain chip platform Tsais lab plans several experiments to better understand how the virus may put the brain at risk. In one, they can culture miBrain chips from a variety of individuals to see whether the virus is able to permeate the BBB equally or differently in those personalized models. They can also test another means of viral entry into the brain whether the bodys immune system response (a so-called cytokine storm) increases the BBBs permeability by using blood serum from Covid-19 patients in the miBrainChip model.

Yet another way the virus might spread in the nervous system is from neuron to neuron via their connections called synapses. With cultures of thousands of neurons, the miBrain chip platform could help them determine whether thats the case, and whether specific kinds of neurons are more susceptible to becoming such conduits.

Finally, there may be genetic differences that increase susceptibility to viral entry to the brain. Using technologies like CRISPR/Cas9, the team can engineer such candidate risk genes into the BBBs to test whether permeability varies. In their Alzheimers disease research, for example, they study whether variations in a gene called ApoE causes different degrees of amyloid proteins plaque buildup in the BBB model.

The potential interactions among the virus, the microbiome, the immune system, and the central nervous system are likely to be highly complex, but with the expertise, the tools, and strong collaborations, Picower Institute researchers see ways to help illuminate the possible neurological effects of coronavirus infection.

Read more here:
How could Covid-19 and the body's immune response affect the brain? - MIT News

Induced Pluripotent Stem Cells Market Overview, Top Companies, Region, Application and Global Forecast by 2026 – Latest Herald

Reprocell

Global Induced Pluripotent Stem Cells Market Segmentation

This market was divided into types, applications and regions. The growth of each segment provides an accurate calculation and forecast of sales by type and application in terms of volume and value for the period between 2020 and 2026. This analysis can help you develop your business by targeting niche markets. Market share data are available at global and regional levels. The regions covered by the report are North America, Europe, the Asia-Pacific region, the Middle East, and Africa and Latin America. Research analysts understand the competitive forces and provide competitive analysis for each competitor separately.

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Induced Pluripotent Stem Cells Market Region Coverage (Regional Production, Demand & Forecast by Countries etc.):

North America (U.S., Canada, Mexico)

Europe (Germany, U.K., France, Italy, Russia, Spain etc.)

Asia-Pacific (China, India, Japan, Southeast Asia etc.)

South America (Brazil, Argentina etc.)

Middle East & Africa (Saudi Arabia, South Africa etc.)

Some Notable Report Offerings:

-> We will give you an assessment of the extent to which the market acquire commercial characteristics along with examples or instances of information that helps your assessment.

-> We will also support to identify standard/customary terms and conditions such as discounts, warranties, inspection, buyer financing, and acceptance for the Induced Pluripotent Stem Cells industry.

-> We will further help you in finding any price ranges, pricing issues, and determination of price fluctuation of products in Induced Pluripotent Stem Cells industry.

-> Furthermore, we will help you to identify any crucial trends to predict Induced Pluripotent Stem Cells market growth rate up to 2026.

-> Lastly, the analyzed report will predict the general tendency for supply and demand in the Induced Pluripotent Stem Cells market.

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Table of Contents:

Study Coverage: It includes study objectives, years considered for the research study, growth rate and Induced Pluripotent Stem Cells market size of type and application segments, key manufacturers covered, product scope, and highlights of segmental analysis.

Executive Summary: In this section, the report focuses on analysis of macroscopic indicators, market issues, drivers, and trends, competitive landscape, CAGR of the global Induced Pluripotent Stem Cells market, and global production. Under the global production chapter, the authors of the report have included market pricing and trends, global capacity, global production, and global revenue forecasts.

Induced Pluripotent Stem Cells Market Size by Manufacturer: Here, the report concentrates on revenue and production shares of manufacturers for all the years of the forecast period. It also focuses on price by manufacturer and expansion plans and mergers and acquisitions of companies.

Production by Region: It shows how the revenue and production in the global market are distributed among different regions. Each regional market is extensively studied here on the basis of import and export, key players, revenue, and production.

About Us:

Market Research Intellect provides syndicated and customized research reports to clients from various industries and organizations with the aim of delivering functional expertise. We provide reports for all industries including Energy, Technology, Manufacturing and Construction, Chemicals and Materials, Food and Beverage and more. These reports deliver an in-depth study of the market with industry analysis, market value for regions and countries and trends that are pertinent to the industry.

Contact Us:

Mr. Steven Fernandes

Market Research Intellect

New Jersey ( USA )

Tel: +1-650-781-4080

Tags: Induced Pluripotent Stem Cells Market Size, Induced Pluripotent Stem Cells Market Growth, Induced Pluripotent Stem Cells Market Forecast, Induced Pluripotent Stem Cells Market Analysis

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Induced Pluripotent Stem Cells Market Overview, Top Companies, Region, Application and Global Forecast by 2026 - Latest Herald

FDA Expediting Accelerated Development of Novel Therapies for COVID-19 – Yahoo Finance

Financialnewsmedia.com News Commentary

PALM BEACH, Florida, April 28, 2020 /PRNewswire/ --The U.S. Federal government is working closely with companies and researchers to find treatments and vaccines to overcome the global health crisis. The FDA has been cutting red tape and has launched new programs that relax certain time consuming regulations while still assuring the efficacy and safety of the treatments. The FDA recently issued an update describing its most recent programs. The update stated that, as part of the administration's: " all-hands-on-deck approach across public, academic and private sectors to combat the COVID-19 pandemic, the U.S. Food and Drug Administration stood up a new program to expedite the development of potentially safe and effective life-saving treatments. The program, known as the Coronavirus Treatment Acceleration Program (CTAP), is using every tool at the agency's disposal to bring new therapies to sick patients as quickly as possible, while at the same time supporting research to further evaluate whether these medical countermeasures are safe and effective for treating patients infected with this novel virus. Active healthcare stocks in news today include: Citius Pharmaceuticals, Inc. (NASDAQ: CTXR), Mesoblast Limited (NASDAQ: MESO), Inovio Pharmaceuticals, Inc. (NASDAQ: INO), Gilead Sciences, Inc. (NASDAQ: GILD), Aytu BioScience, Inc. (NASDAQ: AYTU).

"The FDA is announcing a new, comprehensive public-private approach to bring coronavirus treatments to market as fast as possible," said HHS Secretary Alex Azar. "As part of this new program, the FDA is cutting red tape, redeploying staff and working day and night to review requests from companies, scientists and doctors who are working toward therapies. We are grateful to the men and women of the FDA who have been working in concert with industry and other parts of HHS to support potential coronavirus treatments for weeks now. Each day, President Trump's all-of-America approach is making progress and providing new hope in our fight against the coronavirus."

There are a large number of companies and researchers developing and evaluating COVID-19 related therapies. Given the urgent nature of the pandemic, under the FDA's accelerator program, staff from the Center for Drug Evaluation and Research and the Center for Biologics Evaluation and Research are providing regulatory advice, guidance and technical assistance as quickly as possible. As part of this work, the FDA is triaging requests from developers and scientists seeking to develop new drug and biologic therapies, getting the relevant FDA staff in touch with them and providing rapid, interactive input to get studies underway quickly.

Citius Pharmaceuticals, Inc. (NASDAQ: CTXR)BREAKING NEWS - Citius Announces Pre-IND Submission to FDA Under the Coronavirus Treatment Acceleration Program for a Novel Stem Cell Therapy for Acute Respiratory Distress Syndrome (ARDS) in COVID-19 - Citius Pharmaceuticals ("Citius" or the "Company"), a specialty pharmaceutical company focused on developing and commercializing critical care drug products, this week announcedthat it submitted a pre-IND meeting request and supporting briefing documents to the Center for Biologics Evaluation and Research ("CBER") of the FDA under the Coronavirus Treatment Acceleration Program (CTAP) on April 24. The Company has requested the Division's feedback to support the most expeditious pathway into the clinic to evaluate a novel cell therapy in patients suffering from COVID-19-related ARDS.

The cells, called NoveCite Cells or NC-MSCs, are made by Novellus, Inc. ("Novellus"), a Cambridge-based biotechnology company, using its patented mRNA-based cell-reprogramming process. NC-MSCs are mesenchymal stem cells derived from a single donor's fibroblasts that have been dedifferentiated into an induced pluripotent stem cell (iPSC) master cell bank, thereby avoiding the need to source additional donor cells. The iPSCs are then further differentiated into a mesenchymal stem cell (MSC) therapy. Citius and Novellus plan to develop NC-MSCs for the treatment of ARDS, and last month the companies signed an exclusive option agreement.

The Company plans a multi-center randomized placebo-controlled dose-finding study followed by an expansion phase to assess the safety, tolerability, and efficacy of NC-MSCs in patients with moderate to severe ARDS due to COVID-19. The proposed trial, a Phase 1b/2 clinical trial, is titled "A Randomized Placebo-Controlled Dose-Finding Study Followed by a Dose Level Expansion to Assess the Safety and Efficacy of NoveCite MSCs in Subjects with Acute Respiratory Distress Syndrome (ARDS) Due to SARS-CoV-2 Disease (COVID-19)," or "MARCO". The primary objectives of this study are to evaluate the safety and efficacy of NoveCite cells as a treatment for subjects with moderate-to-severe ARDS due to COVID-19 and to identify therapeutic doses.

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"MSCs have an established track-record of clinical safety, and have shown promise in the treatment of inflammatory lung disease," said Matt Angel, PhD, co-founder and Chief Science Officer at Novellus, Inc. "Our research has shown that the NoveCite cells, being derived from mRNA-reprogrammed iPSCs, secrete higher levels of immunomodulatory proteins than donor-derived MSCs, and have unique manufacturing advantages."

"We believe we have the key elements in place from a clinical design and manufacturing point of view to evaluate this novel cell therapy approach to deal with the current pandemic," said Myron Holubiak, Chief Executive Officer of Citius. "ARDS is a very serious complication for many patients suffering from COVID-19, and is believed to account for about 80% of the deaths in ventilated patients. There is no proven or FDA-approved treatment for it, other than oxygen therapy, including use of mechanical ventilation, and fluid management. Literature from previous investigational studies with MSCs in the treatment of lung injuries support the idea that MSCs could prove effective in treating COVID-19-related ARDS. We look forward to our FDA discussions and are excited to be at the cusp of what could be a novel and effective therapy for ARDS." Read this full release at: https://ir.citiuspharma.com/press-releases/detail/96/citius-announces-pre-ind-submission-to-fda-under-the

In other healthcare news of note:

Mesoblast Limited (NASDAQ: MESO) recently announced 83% survival in ventilator-dependent COVID-19 patients (10/12) with moderate/severe acute respiratory distress syndrome (ARDS) treated during the period March-April 2020 with two intravenous infusions of Mesoblast's allogeneic mesenchymal stem cell product candidate remestemcel-L within the first five days. 75% (9/12) have successfully come off ventilator support at a median of 10 days. At this time, seven have been discharged from the hospital. Patients received a variety of experimental agents prior to remestemcel-L. All patients were treated under an emergency Investigational New Drug (IND) application or expanded access protocol at New York City's Mt Sinai hospital.

In contrast, only 9% (38/445) of ventilator-dependent COVID-19 patients at a major referral hospital network in New York City were able to come off ventilator support when treated with standard of care during March/April 2020.

Inovio Pharmaceuticals, Inc. (NASDAQ: INO) announced this week that first quarter 2020 financial results will be released after the market close on May 11, 2020. Following the release, the Company will host a live conference call and webcast at 4:30 p.m. ET to discuss financial results and provide a general business update, including the company's ongoing vaccine developments for COVID-19. A live and archived version of the audio presentation will be available online at http://ir.inovio.com/investors/events/default.aspx. This is a listen-only event but will include a live Q&A with analysts. Telephone replay will be available approximately one hour after the call at 877-344-7529 (US toll free) or 412-317-0088 (international toll) using replay access code 10143530.

Gilead Sciences, Inc. (NASDAQ: GILD) Kite, a Gilead Company, and oNKo-innate recently announced the companies have entered into a three-year cancer immunotherapy research collaboration to support discovery and development of next-generation drug and engineered cell therapies focused on natural killer (NK) cells.

Current cancer immunotherapy approaches primarily focus on T cell mediated anti-tumor immunity, including checkpoint inhibition and chimeric antigen receptor (CAR) T cell therapy. Like T cells, NK cells are a class of lymphocytes (white blood cells) that play a critical surveillance and effector role in the immune system. NK cells and T cells each have the potential to attack cancer cells, but have different mechanisms for tumor cell killing. Thus, appropriately activated and targeted NK cells may represent a differentiated approach that would be potentially complementary and synergistic with T cell mediated anti-tumor strategies.

Aytu BioScience, Inc. (NASDAQ: AYTU) recently announced that it has signed an agreement with Sterling Medical Devices ("Sterling") to finalize the development of Healight, a novel endotracheal catheter, as a potential treatment for coronavirus.

The company announced last week that it licensed exclusive worldwide rights to the Healight technology from Cedars-Sinai for all endotracheal and nasopharyngeal indications. The patent-pending Healight Platform has been in development since 2016 by the Medically Associated Science and Technology (MAST) team at Cedars-Sinai. Following their pre-clinical findings that Healight may be a safe and effective antiviral and antibacterial treatment, the team engaged Sterling to rapidly develop a novel endotracheal device to help combat coronavirus.

DISCLAIMER: FN Media Group LLC (FNM), which owns and operates Financialnewsmedia.com and MarketNewsUpdates.com, is a third party publisher and news dissemination service provider, which disseminates electronic information through multiple online media channels. FNM is NOT affiliated in any manner with any company mentioned herein. FNM and its affiliated companies are a news dissemination solutions provider and are NOT a registered broker/dealer/analyst/adviser, holds no investment licenses and may NOT sell, offer to sell or offer to buy any security. FNM's market updates, news alerts and corporate profiles are NOT a solicitation or recommendation to buy, sell or hold securities. The material in this release is intended to be strictly informational and is NEVER to be construed or interpreted as research material. All readers are strongly urged to perform research and due diligence on their own and consult a licensed financial professional before considering any level of investing in stocks. All material included herein is republished content and details which were previously disseminated by the companies mentioned in this release. FNM is not liable for any investment decisions by its readers or subscribers. Investors are cautioned that they may lose all or a portion of their investment when investing in stocks. For current services performed FNM expects to be compensated forty five hundred dollars for news coverage of the current press releases issued by Citius Pharmaceuticals, Inc. by a non affiliated third party. FNM HOLDS NO SHARES OF ANY COMPANY NAMED IN THIS RELEASE.

This release contains "forward-looking statements" within the meaning of Section 27A of the Securities Act of 1933, as amended, and Section 21E the Securities Exchange Act of 1934, as amended and such forward-looking statements are made pursuant to the safe harbor provisions of the Private Securities Litigation Reform Act of 1995. "Forward-looking statements" describe future expectations, plans, results, or strategies and are generally preceded by words such as "may", "future", "plan" or "planned", "will" or "should", "expected," "anticipates", "draft", "eventually" or "projected". You are cautioned that such statements are subject to a multitude of risks and uncertainties that could cause future circumstances, events, or results to differ materially from those projected in the forward-looking statements, including the risks that actual results may differ materially from those projected in the forward-looking statements as a result of various factors, and other risks identified in a company's annual report on Form 10-K or 10-KSB and other filings made by such company with the Securities and Exchange Commission. You should consider these factors in evaluating the forward-looking statements included herein, and not place undue reliance on such statements. The forward-looking statements in this release are made as of the date hereof and FNM undertakes no obligation to update such statements.

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FDA Expediting Accelerated Development of Novel Therapies for COVID-19 - Yahoo Finance

GLOBAL TOOTH REGENERATION MARKET: INDUSTRY ANALYSIS AND FORECAST (2020-2027) – MR Invasion

Global Tooth Regeneration Marketwas valued US$ XX Mn in 2019 and is expected to reach US$ XX Mn by 2027, at a CAGR of 6.5% during a forecast period 2020-2027.

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Global Tooth Regeneration Market

Market Dynamics

The Research Report gives a comprehensive account of the drivers and restraints in the tooth regeneration.Somatic stem cells are composed and reprogrammed to induced pluripotent stem cells which can be placed in the dental lamina directly or placed in an absorbable biopolymer in the shape of the new tooth, which is a main source of the novel bioengineered teeth. Tooth replacement therapy is pondered to be a greatly attractive concept for the next generation bioengineered organ replacement. The global tooth regeneration market is mainly compelled by the high occurrence of dental problems with the new research and development activities. According to WHO, the Global Burden of Disease Study 2017 estimated that oral diseases affect close to 3.5 billion people worldwide, with caries of permanent teeth being the most common condition. Globally, it is likely that 2.3 billion people suffer from caries of permanent teeth and more than 530 million children suffer from caries of primary teeth. Additionally, positive refund policies for instance coverage of Medicaid insurance for dental loss treatment and emergence of new technologies like laser tooth generation techniques are projected to enhance the global tooth generation market throughout the estimated period.

Different researches are carried out by several academies and corporations to understand the possibility of stem cell-based regenerative medicines tooth regeneration. Though stem cell is the protuberant technology in research for tooth regeneration, several organizations are also leveraging laser, drug, and gel as mediums to regenerate teeth. For example, the Wyss Institute at Harvard University is engaged in research related to tooth regeneration using lasers. Tooth generation using stem cells is now under research through the globe. There are some key stem cells on which research are carried out such as stem cells from human exfoliated deciduous teeth (SHEDs), dental pulp stem cells, dental follicle progenitor cells (DFPCs), periodontal ligament stem cells (PDLSCs), and stem cells from apical papilla (SCAPs).A 2009 nationwide survey by the Nova South-eastern University in the U.S. publicized that around 96% of dentists expect stem cell regeneration to lead the future of the dentistry industry.However, occurrence rates are growing in low and middle-income countries. Though, some factors like the preference for endodontic treatment over tooth regeneration products in key dental surgeries and local inflammatory activity, which results in chronic complications to dental replacements, is anticipated to hamper the market throughout the forecast period.

Global Tooth Regeneration Market Segment analysis

Based on population demographics, the geriatric segment is expected to grow at a CAGR of XX% during the forecast period. According to NIH, the geriatric population has an average 18.9 remaining teeth. About 23% of the geriatric population has no teeth, making a positive market situation for manufacturing companies. The above 18 million dental procedures are anticipated to be carried out amongst the geriatric population between 2019 and 2027. Commercialization of tooth regeneration is expected to create lucrative market opportunities for industry players.Based on Type, the dentin segment accounted for a projecting share of the global tooth regeneration market in 2019, owing to the growing occurrence of dental surgery and the uprising demand for tooth regeneration in cosmetic surgery, particularly from developing economies like India, China, and Brazil.

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Global Tooth Regeneration Market Regional analysis

The Asia Pacific is projected to dominate the global tooth regeneration market throughout the forecast period. Tooth regeneration addressable market is likely to be highest in the Asia Pacific, with China and India located as the major growth engines. The occurrence of tooth regeneration is projected to capture this market. Also, the number of dental procedures is anticipated to grow at the highest CAGR of ~10.8% in the Asia Pacific between 2019 and 2027. Besides, the growing incidence of dental cavities & periodontics, particularly in emerging countries like China and India has led to the rising demand for orthopedic & dental surgery.North America and Europe are estimated to collectively account for the major share of global procedures during the forecast period.

Key Developments

In June 2018, Datum Dental Ltd., the prominent provider of OSSIX brand innovative solutions for bone and tissue regeneration for dentistry, announced clearances for OSSIX Bone with Health Canada and CE Mark approval in Europe. OSSIX Bone received FDA clearance in July 2017 and was launched commercially in the USA. In April 2018, Datum Dental, the leading provider of OSSIX brand innovative solutions for bone and tissue regeneration for dentistry, announced the expansion of its global distribution network. In the USA, Dentsply Sirona Implants is now promoting the full OSSIX line.

The objective of the report is to present a comprehensive analysis of the Global Tooth Regeneration Market including all the stakeholders of the industry. The past and current status of the industry with forecasted market size and trends are presented in the report with the analysis of complicated data in simple language. The report covers all the aspects of the industry with a dedicated study of key players that includes market leaders, followers and new entrants. PORTER, SVOR, PESTEL analysis with the potential impact of micro-economic factors of the market has been presented in the report. External as well as internal factors that are supposed to affect the business positively or negatively have been analysed, which will give a clear futuristic view of the industry to the decision-makers.

The report also helps in understanding Global Tooth Regeneration Market dynamics, structure by analysing the market segments and projects the Global Tooth Regeneration Market size. Clear representation of competitive analysis of key players by Application, price, financial position, Product portfolio, growth strategies, and regional presence in the Global Tooth Regeneration Market make the report investors guide.Scope of the Global Tooth Regeneration Market

Global Tooth Regeneration Market, By Type

Dentin Dental Pulp Tooth EnamelGlobal Tooth Regeneration Market, By Applications

Hospitals Dental Clinics OthersGlobal Tooth Regeneration Market, By Population Demographics

Geriatric Middle-aged Adults OthersGlobal Tooth Regeneration Market, By Regions

North America Europe Asia-Pacific South America Middle East and Africa (MEA)Key Players operating the Global Tooth Regeneration Market

Unilever Straumann Dentsply Sirona 3M Zimmer Biomet Ocata Therapeutics Integra LifeSciences Datum Dental CryoLife BioMimetic Therapeutic Cook Medical

MAJOR TOC OF THE REPORT

Chapter One: Tooth Regeneration Market Overview

Chapter Two: Manufacturers Profiles

Chapter Three: Global Tooth Regeneration Market Competition, by Players

Chapter Four: Global Tooth Regeneration Market Size by Regions

Chapter Five: North America Tooth Regeneration Revenue by Countries

Chapter Six: Europe Tooth Regeneration Revenue by Countries

Chapter Seven: Asia-Pacific Tooth Regeneration Revenue by Countries

Chapter Eight: South America Tooth Regeneration Revenue by Countries

Chapter Nine: Middle East and Africa Revenue Tooth Regeneration by Countries

Chapter Ten: Global Tooth Regeneration Market Segment by Type

Chapter Eleven: Global Tooth Regeneration Market Segment by Application

Chapter Twelve: Global Tooth Regeneration Market Size Forecast (2019-2026)

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Insights on the Cell Expansion Industry in North America to 2027 – by Product, Cell Type, Application, End-user and Country – Yahoo Finance

Dublin, April 24, 2020 (GLOBE NEWSWIRE) -- The "North America Cell Expansion Market to 2027 - Regional Analysis and Forecasts by Product; Cell Type; Application; End User, and Country" report has been added to ResearchAndMarkets.com's offering.

The cell expansion market in North America is anticipated to reach USD 14,697.41 million by 2027 from USD 4,522.07 4 million in 2019; it is projected to grow at a CAGR of 15.9% during 2020-2027. The growth of the market is attributed to the increasing prevalence of cancer, rising number of new product launches, and increasing inclination of patients toward regenerative and personalized medicines. Also, growing R&D expenditure on cancer research is likely to have a positive impact on the growth of the market in the coming years. In addition, technological advancements in the pharmaceuticals industry and extensive developments in drug discovery are likely to stimulate the growth of cell expansion market in North America during the forecast period.

Cell expansion is the large-scale artificial production of daughter cells from a single cell, and the process is carried out to support the medical research. It plays a critical role in exploring a wider range of benefits and applications of fully differentiated stem cell cultures for their use in therapeutics, drug screening, or advanced research.

R&D is a significant part of a majority of pharmaceutical and biotech companies; they focus on R&D to come up with new molecules with the most significant medical and commercial potential for various therapeutic applications. The companies invest big amounts in these activities to deliver innovative, high-quality products to the market. Moreover, as per the report of Pharmaceutical Research and Manufacturers of America (PhRMA), the R&D expense of biopharmaceutical companies surged from US$ 49.6 billion in 2012 to US$ 58.8 billion in 2015.

Several government organizations are working on enhancing the detection methods and treatment procedures of cancer in the region. The National Cancer Institute (NCI) spends on various categories of the treatment, including specific cancer sites, cancer types, and cancer-related diseases, as well as types of NCI research mechanisms. The NCI allocated the funds of ~US$ 208.4 million for cell expansion research in 2017 from their total budget of US$ 5,636.4 million in that year for cancer research studies. Therefore, the growing R&D expenditure on cancer research by these companies is expected to provide them with opportunities for business expansion.

The North American cell expansion market has been segmented on the basis of cell type into human cells and animal cells. The human cells segment held a larger share of the market in 2018, and it is also projected to register a higher CAGR in it during the forecast period. Rise in research activities for the treatment of cancer is expected to offer considerable growth opportunities for the human cell expansion market players.

A few of the important secondary sources referred to for preparing this report on the cell expansion market are World Health Organization (WHO), Food and Drug Administration (FDA), Canadian Cancer Society, Centers for Disease Control and Prevention (CDC), and American Cancer Society.

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Key Topics Covered:

1. Introduction1.1 Scope of the Study1.2 Report Guidance1.3 Market Segmentation1.3.1 North America Cell Expansion Market - By Product1.3.2 North America Cell Expansion Market - By Cell Type1.3.3 North America Cell Expansion Market - By Application1.3.4 North America Cell Expansion Market - By End User1.3.5 North America Cell Expansion Market - By Country

2. North America Cell Expansion Market- Key Takeaways

3. Research Methodology3.1 Coverage3.2 Secondary Research3.3 Primary Research

4. North America Cell Expansion Market - Market Landscape4.1 Overview4.2 PEST Analysis4.2.1 Cell Expansion Market - North America PEST Analysis4.3 Expert Opinion

5. North America Cell Expansion Market - Key Market Dynamics5.1 Key Market Drivers5.1.1 Patient shift towards regenerative medicines5.1.2 Increasing number of patients suffering with cancer5.2 Key Restraints5.2.1 Risk of contamination associated with the cell expansion process5.3 Key Market Opportunities5.3.1 Growing R&D Expenditure for Cancer Research5.4 Future Trend5.4.1 Extensive development in drug discovery5.5 Impact Analysis

6. Cell Expansion Market - North America Analysis6.1 North America Cell Expansion Market Revenue Forecasts and Analysis6.2 Positioning Of Key Players

7. North America Cell Expansion Market Analysis And Forecasts To 2027 - Product7.1 Overview7.2 North America Cell Expansion Market, By Product 2018 & 2027 (%)7.2.1 North America Cell Expansion Market Revenue and Forecasts to 2027, By Product (US$ Mn)7.2.1.1 North America Consumables Market Revenue and Forecasts to 2027, By Type (US$ Mn)7.2.1.1.1 North America Disposables Market Revenue and Forecasts to 2027, By Type (US$ Mn)7.2.1.2 North America Instruments Market Revenue and Forecasts to 2027, By Type (US$ Mn)7.3 Consumables7.3.1 Overview7.3.2 North America Consumables Market Revenue and Forecast to 2027 (US$ Mn)7.3.3 Reagents, Media & Serum7.3.3.1 Overview7.3.3.2 North America Reagents, Media & Serum Market Revenue and Forecast to 2027 (US$ Mn)7.3.4 Disposables7.3.4.1 Overview7.3.4.2 North America Disposables Market Revenue and Forecast to 2027 (US$ Mn)7.3.4.3 Culture Tissue Flasks7.3.4.3.1 Overview7.3.4.3.2 North America Culture Tissue Flasks Market Revenue and Forecast to 2027 (US$ Mn)7.3.4.4 Bioreactor Accessories7.3.4.4.1 Overview7.3.4.4.2 North America Bioreactor Accessories Market Revenue and Forecast to 2027 (US$ Mn)7.3.4.5 Other Disposables7.3.4.5.1 Overview7.3.4.5.2 North America Other Disposables Market Revenue and Forecast to 2027 (US$ Mn)7.4 Instruments7.4.1 Overview7.4.2 North America Instruments Market Revenue and Forecasts to 2027 (US$ Mn)7.4.3 Cell Expansion Supporting Equipment7.4.3.1 Overview7.4.3.2 North America Cell Expansion Supporting Equipment Market Revenue and Forecast to 2027 (US$ Mn)7.4.4 Bioreactors7.4.4.1 Overview7.4.4.2 North America Bioreactors Market Revenue and Forecast to 2027 (US$ Mn)7.4.5 Automated Cell Expansion Systems7.4.5.1 North America Automated Cell Expansion Systems Market Revenue and Forecast to 2027 (US$ Mn)

8. North America Cell Expansion Market Analysis And Forecasts To 2027 - Cell Type8.1 Overview8.2 North America Cell Expansion Market, By Cell Type 2018 & 2027 (%)8.2.1 North America Cell Expansion Market Revenue and Forecasts to 2027, By Cell Type (US$ Mn)8.3 Human Cells8.3.1 Overview8.3.2 North America Human Cells Market Revenue and Forecast to 2027 (US$ Mn)8.3.3 Adult Stem Cells8.3.3.1 Overview8.3.3.2 North America Adult Stem Cells Market Revenue and Forecast to 2027 (US$ Mn)8.3.4 Induced Pluripotent Stem Cells8.3.4.1 Overview8.3.4.2 North America Induced Pluripotent Stem Cells Market Revenue and Forecast to 2027 (US$ Mn)8.3.5 Embryonic Stem Cells8.3.5.1 Overview8.3.5.2 North America Embryonic Stem Cells Market Revenue and Forecast to 2027 (US$ Mn)8.3.6 Differentiated Cells8.3.6.1 Overview8.3.6.2 North America Differentiated Cells Market Revenue and Forecast to 2027 (US$ Mn)8.4 Animal Cells8.4.1 Overview8.4.2 North America Animal Cells Market Revenue and Forecast to 2027 (US$ Mn)

9. North America Cell Expansion Market Analysis- By Application9.1 Overview9.2 North America Cell Expansion Market, By Application 2018 & 2027 (%)9.3 Regenerative Medicine and Stem Cell Research9.4 Cancer and Cell-based Research9.5 Other Applications

10. North America Cell Expansion Market Analysis- By End User10.1 Overview10.2 North America Cell Expansion Market, By End User 2018 & 2027 (%)10.3 Biopharmaceutical And Biotechnology Companies10.4 Research Institutes10.5 Cell Banks10.6 Other End Users

11. Cell Expansion Market Revenue And Forecasts To 2027 - Geographical Analysis11.1 North America Cell Expansion Market, Revenue and Forecast to 202711.1.1 North America Cell Expansion Market, Revenue and Forecast to 2027 (US$ Mn)11.1.2 North America Cell Expansion Market, Revenue and Forecast to 2027, By Product (US$ Mn)11.1.2.1 North America Consumables Market, Revenue and Forecast to 2027, By Type (US$ Mn)11.1.2.1.1 North America Disposables Market, Revenue and Forecast to 2027, By Type (US$ Mn)11.1.2.2 North America Instruments Market, Revenue and Forecast to 2027, By Type (US$ Mn)11.1.3 North America Cell Expansion Market, Revenue and Forecast to 2027, By Cell Type (US$ Mn)11.1.3.1 North America Human Cell Market, Revenue and Forecast to 2027, By Type (US$ Mn)11.1.4 North America Cell Expansion Market, Revenue and Forecast to 2027, By Application (US$ Mn)11.1.5 North America Cell Expansion Market, Revenue and Forecast to 2027, By End User (US$ Mn)11.1.6 North America Cell Expansion Market, Revenue and Forecast to 2027, By Country (%)11.1.7 US11.1.8 Canada11.1.9 Mexico

12. North America Cell Expansion Market- Industry Landscape12.1 Overview12.2 Growth Strategies In The Cell Expansion Market, 2017-201912.3 Organic Growth Strategies12.3.1 Overview12.3.1.1 Recent Organic Developments By Players In The Cell Expansion Market12.4 Inorganic Growth Strategies12.4.1 Overview12.4.2 Recent Developments By Players In The Cell Expansion Market

13. Global Cell Expansion Market-Key Company Profiles13.1 BD13.1.1 Key Facts13.1.2 Business Description13.1.3 Financial Overview13.1.4 Product Portfolio13.1.5 SWOT Analysis13.1.6 Key Developments13.2 Merck KGaA13.3 Thermo Fisher Scientific, Inc.13.4 Terumo Corporation13.5 General Electric Company13.6 Corning Incorporated13.7 Miltenyi Biotec13.8 Danaher13.9 Lonza13.10 STEMCELL Technologies, Inc.

14. Appendix14.1 About the Publisher14.2 Glossary of Terms

For more information about this report visit https://www.researchandmarkets.com/r/gq37sj

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Insights on the Cell Expansion Industry in North America to 2027 - by Product, Cell Type, Application, End-user and Country - Yahoo Finance

Induced pluripotent stem cells and CRISPR reversed diabetes in mice – Drug Target Review

Induced pluripotent stem cells made to produce insulin and CRISPR, used to correct a genetic defect, cured Wolfram syndrome in mice.

Using induced pluripotent stem cells (iPSCs) produced from the skin of a patient with a rare, genetic form of insulin-dependent diabetes called Wolfram syndrome, researchers transformed the human stem cells into insulin-producing cells and used CRISPR-Cas9 to correct a genetic defect that had caused the syndrome. They then implanted the cells into lab mice and cured the unrelenting diabetes in those models.

The findings, from researchers at Washington University School of Medicine in St. Louis, US, suggest this CRISPR-Cas9 technique may hold promise as a treatment for diabetes, particularly the forms caused by a single gene mutation and it also may be useful one day in some patients with the more common forms of diabetes, such as type 1 and type 2.

This is the first time CRISPR has been used to fix a patients diabetes-causing genetic defect and successfully reverse diabetes, said co-senior investigator Dr Jeffrey Millman, an assistant professor of medicine and of biomedical engineering at Washington University. For this study, we used cells from a patient with Wolfram syndrome because, conceptually, we knew it would be easier to correct a defect caused by a single gene. But we see this as a stepping stone toward applying gene therapy to a broader population of patients with diabetes.

Wolfram syndrome is caused by mutations to a single gene, providing the researchers an opportunity to determine whether combining stem cell technology with CRISPR to correct the genetic error also might correct the diabetes caused by the mutation.

Researchers at Washington University School of Medicine in St. Louis have transformed stem cells into insulin-producing cells. They used the CRISPR gene-editing tool to correct a defect that caused a form of diabetes, and implanted the cells into mice to reverse diabetes in the animals. Shown is a microscopic image of insulin-secreting beta cells (insulin is green) that were made from stem cells produced from the skin of a patient with Wolfram syndrome [credit: Millman lab Washington University].

Millman and his colleagues had previously discovered how to convert human stem cells into pancreatic beta cells. When such cells encounter blood sugar, they secrete insulin. Recently, these researchers developed a new technique to more efficiently convert human stem cells into beta cells that are considerably better at controlling blood sugar.

In this study, they took the additional steps of deriving these cells from patients and using the CRISPR-Cas9 gene-editing tool on those cells to correct a mutation to the gene that causes Wolfram syndrome (WFS1). Then, the researchers compared the gene-edited cells to insulin-secreting beta cells from the same batch of stem cells that had not undergone editing with CRISPR.

In the test tube and in mice with a severe form of diabetes, the newly grown beta cells that were edited with CRISPR more efficiently secreted insulin in response to glucose. Diabetes disappeared in mice with the CRISPR-edited cells implanted beneath the skin and the animals blood sugar levels remained in normal range for the entire six months they were monitored. Animals receiving unedited beta cells remained diabetic. Although their newly implanted beta cells could produce insulin, it was not enough to reverse their diabetes.

We basically were able to use these cells to cure the problem, making normal beta cells by correcting this mutation, said co-senior investigator Dr Fumihiko Urano, the Samuel E. Schechter Professor of Medicine and a professor of pathology and immunology. Its a proof of concept demonstrating that correcting gene defects that cause or contribute to diabetes in this case, in the Wolfram syndrome gene we can make beta cells that more effectively control blood sugar. Its also possible that by correcting the genetic defects in these cells, we may correct other problems Wolfram syndrome patients experience, such as visual impairment and neurodegeneration.

Were excited about the fact that we were able to combine these two technologies growing beta cells from induced pluripotent stem cells and using CRISPR to correct genetic defects, Millman said. In fact, we found that corrected beta cells were indistinguishable from beta cells made from the stem cells of healthy people without diabetes.

Moving forward, the process of making beta cells from stem cells should get easier, the researchers said. For example, the scientists have developed less intrusive methods, making iPSCs from blood and they are working on developing stem cells from urine samples.

The study is published in Science Translational Medicine.

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Induced pluripotent stem cells and CRISPR reversed diabetes in mice - Drug Target Review

Reversing diabetes with CRISPR and patient-derived stem cells – FierceBiotech

Insulin injections cancontrol diabetes, but patients still experience serious complications such as kidney disease and skin infections. Transplanting pancreatic tissues containing functional insulin-producing beta cells is of limited use, because donors are scarce and patients must take immunosuppressant drugs afterward.

Now, scientists atWashington University in St. Louis havedeveloped a way to use gene editing system CRISPR-Cas9 to edit a mutation in human-induced pluripotent stem cells (iPSCs) and then turnthem into beta cells. When transplanted into mice, the cells reversed preexisting diabetes in a lasting way, according to results published in the journal Science Translational Medicine.

While the researchers used cells from patients with Wolfram syndromea rare childhood diabetes caused by mutations in the WFS1 genethey argue that the combination of a gene therapy with stem cells could potentially treat other forms of diabetes as well.

Virtual Clinical Trials Online

This virtual event will bring together industry experts to discuss the increasing pace of pharmaceutical innovation, the need to maintain data quality and integrity as new technologies are implemented and understand regulatory challenges to ensure compliance.

One of the biggest challenges we faced was differentiating our patient cells into beta cells. Previous approaches do not allow for this robust differentiation. We use our new differentiation protocol targeting different development and signaling pathways to generate our cells, the studys lead author, Kristina Maxwell, explained in a video statement.

Making pancreatic beta cells from patient-derived stem cells requires precise activation and repression of specific pathways, and atthe right times, to guide the development process. In a recent Nature Biotechnology study, the team described a successful method that leverages the link between a complex known as actin cytoskeleton and the expression of transcription factors that drive pancreatic cell differentiation.

This time, the researchers applied the technology to iPSCs from two patients with Wolfram syndrome. They used CRISPR to correct the mutated WFS1 gene in the cells and differentiated the edited iPSCs into fully functional beta cells.

After transplanting the corrected beta cells into diabetic mice, the animals saw their blood glucose drop quickly, suggesting the disease had been reversed. The effect lasted for the entire six-month observation period, the scientists reported. By comparison, those receiving unedited cells from patients were unable to achieve glycemic control.

RELATED:CRISPR Therapeutics, ViaCyte team up on gene-edited diabetes treatment

The idea of editing stem cells with CRISPR has already attracted interest in the biopharma industry. Back in 2018, CRISPR Therapeutics penned a deal with ViaCyte to develop off-the-shelf, gene-editing stem cell therapies for diabetes. Rather than editing iPSCs from particular patients themselves to correct a faulty gene, the pairs lead project used CRISPR to edit healthy cells so that they lackedthe B2M gene and expressed PD-L1 to protect against immune attack. The two companies unveiled positive preclinical data inSeptember.

Other research groups working on gene therapy or stem cells for diabetes include a Harvard University scientist and his startup Semma Therapeutics, whichdeveloped a method for selecting beta cells out of a mixture of cells developed from PSCs. Scientists at the University of Wisconsin-Madison recently proposed that removing the IRE1-alpha gene in beta cells could prevent immune T cells from attacking them in mice with Type 1 diabetes.

The Washington University team hopes its technology may help Type 1 diabetes patients whose disease is caused by multiple genetic and environmental factors as well as the Type 2 form linked to obesity and insulin resistance.

We can generate a virtually unlimited number of beta cells from patients with diabetes to test and discover new drugs to hopefully stop or even reverse this disease, Jeffrey Millman, the studys co-senior author, said in the video statement. Perhaps most importantly, this technology now allows for the potential use of gene therapy in combination with the patients own cells to treat their own diabetes by transplantation of lab-grown beta cells.

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Reversing diabetes with CRISPR and patient-derived stem cells - FierceBiotech