Category Archives: Stem Cell Medicine


What’s the Best Human Brain Alternative for Hungry Zombies? – Gizmodo UK

Lets say youre a zombie. Youre lumbering around, doing your zombie-mumble, and just ten feet ahead you see a living human being. Your first impulse, of course, is to head over there and eat their brain. And youre about to do just that, when suddenly you feel a pang of something like shame. You remember, dimly, being a human yourself. You remember how you mightve felt, if an undead weirdogot to gnawing on your skull. Youre at an impasse: at once desperate for brain meat and reluctant to kill for it. So you head to your zombie psychologist and start explaining the situation, and your zombie psychologist starts grinning, which annoys you at first I mean, youre baring your soul to this guy until he explains whats on his mind. Turns out, hes been toying with an idea a pilot program for conscience-stricken zombies. Instead of human brains, theyll be fed stuff that looks and tastes justlikebrains, thereby sparing them the obligation to kill. The only thing they need to work out is: what would be an acceptable substitute for human brains? For this weeksGiz Asks, we reached out to a number of brain experts to find out.

Associate Professor, Neurobiology, Harvard Medical School

The brain is of course composed primarily of lipids, and so it is perfectly reasonable to assume that it is brain lipids that zombies really crave. But why human brains and not, say, mouse brains? Lipidomic analysis reveals that human brains are unusually enriched in a compound called sphingomyelin (relative to brains from rodents), and so it is further reasonable to assume that what zombies want is actually lots of sphingomyelin. So where to get it? Eggs. Eggs are packed with sphingomyelin. Furthermore, eggs also have the advantage of having a white outer cortex and a lipid-rich center, just like the human brain, so they seem a reasonable substitute all around.

Chair and Professor of Neurology at the David Geffen School of Medicine at UCLA and Co-Director UCLA Broad Stem Cell Center

A food-based substitute would require a fair amount of work, because youd have to get a sort of fatty, proteinaceous slop together as a mimic for the brain. A thick macaroni and cheese might work, with a larger noodle like ziti or rigatoni and no tang, meaning a thick white cheese, as opposed to cheddar.

The brain sandwich, made from cow brains, was an unusual delicacy in St. Louis for years. When I lived there, I saw what it looked like as they fried it, and its hard to imagine any other organ meat could substitute for the real thing. Kidney and liver are too firm and too structured; most foods we eat, or could think about eating, are also too firm, and not fatty enough.

A brain from another animal might work, though it would have to be an animal with an advanced brain that is, one with the folds we see when we look at the brains surface (which are called gyri and cilici). Those are what distinguish higher mammals from lower mammals. They also make the human brain this particularly characteristic thing in terms of substance and texture and appearance. So an animal brain, to sub for a human brain, would need to have those features. That would mean anything from, say, a dog or cat on up those both have gyri and cilici, whereas rodents and rabbits, for example, do not.

Assistant Professor of Brain Science, Psychiatry and Human Behaviourat Brown University

I think my Zombie would be a vegan. The thing that I have found to be the closest in texture to the brain is tofu (not the firm kind). People are often surprised by that fact, because its really soft you can put your finger through it easily.

Broadly, I study the kind of complex planning and decision making that is localised to the front of the brain, the prefrontal cortex. This area is also one of the most likely to be injured if you hit your head, because your very soft brain bounces around inside your skull. Our lab typically does a demo for Brain Week and other events that lets people feel tofu, and then shake it around in a container and see what happens to it. Shake it around in some water (mimicking some of the protections that our brain has in the cerebro-spinal fluid that it floats in) and the tofu does much better (which is why its packaged in water!).

Unfortunately tofu doesnt mimic all the wonderful folding that it has that lets us pack so many brain cells into a tight space. A sheet of paper crumpled up is best to show that capacity, but paper is probably much less tasty than tofu (to humans anyway, I dont know about zombies!).

Professor, Systems Biology, George Mason University

My proposal is: a literal pound of flesh. Many people have too much of it; its very similar to the brain in texture; it has a lot of cholesterol, which is important, because in my opinion at least zombies would crave exactly that. Also, adipose tissue is very rich with various kinds of growth hormones and other kinds of bioactive stuff. If you could develop some kind of device that would transfer the flesh to the zombies, people might even be grateful they wouldnt have to get liposuction.

Senior Lecturer, Medical Biotechnology, Deakin University

The best thing to do would be to make small versions of a brain from stem cells, called organoids. These are almost, but not quite, brains. You grow them in an artificial 3D environment that mimics the properties of the central nervous tissue, and allow them to develop networks of neural cells in a structured way. Theyre used for research into drugs and diseases and so on, but would probably be an acceptable meat-free snack for an ethically conscious zombie plague.

Professor in Neurology and Professor of Biomedical Engineering at Duke University

If I were a vegetarian zombie, I would try to make a brain substitute using the major components of the brain carbohydrates, proteins, and cells. The major carbohydrate component is hyaluronic acid (which is found in many beauty products, and can be purchased in bulk). Though by itself it does not form a solid, only a very viscous liquid, it can be combined with other materials that do form a solid. For example, sea weed has a carbohydrate named alginate that does form gels when combined with calcium. So, a blend of hyaluronic acid and alginate with calcium can yield a material that has the mechanics of the brain. For the protein component, eggs, beans, soy, and quinoa all can be good choices. To get the texture right, the calcium can be added while stirring to generate chunks. If it is ok to eat other animals, then I would buy pig brains, which are often discarded. Pig organs are close to the same size of humans and have even been used for transplantation due to similarities in physiology/biochemistry. That would be the simplest choice.

Associate Professor, Psychology and Neuroscience, George Mason University

Whenever I eat cauliflower, I think of the cerebellum or little brain. It is tucked away behind the cerebrum, or main part of the brain. The cerebellum is small, but it is where about 80 percent of the entire brains neurons are found! Most of the cerebellums neurons, or gray matter, are found on its outer surface. They are tightly packed together in little folds called folia. The neurons in the folia are connected to each other by nerve fibres, also known as white matter. When the cerebellum is cut in half, the white matter appears as this beautiful network of branches called the arbor vitae, or tree of life. It really does look just like a head of cauliflower!

Professor, Psychology and Neuroscience, Trinity College

The brain is actually quite soft and squishy. Fortunately for us it normally floats in a pool of cerebrospinal fluid that serves as a cushiony packing material protecting the delicate brain from the hard skull. But the brain is so soft it can easily become injured without the head striking any object. If there is enough rotational or acceleration/deceleration motion for the brain to hit the skull the tips of the brain can be bruised and individual cells can be stretched or sheared from their connections. This can happen, for example, in motor vehicle accidents or shaken baby syndrome where the head is thrown very quickly forwards and then backwards.

The consistency I think the brain comes closest to is a gelatin. But I would recommend that our zombie make the gelatin with milk rather than water. This will give it a closer consistency to a brain, the color will be more opaque like a real brain, and it will provide more of the much needed protein the zombie craves. There are even commercially made gelatin molds if the zombie is able to access stores or online shopping.

Another option would be a soft tofu. This might be a great option for a zombie who is a vegetarian or vegan. There is plenty of protein but it will be much harder to mold into the right shape. Sadly, most zombies are not portrayed to have the fine motor skills needed to create a brain shape from scratch, so the tofu would just have to be eaten as is.

On a side note, if our zombie truly finds that nothing satisfies like a real brain, they could certainly consider becoming a neurosurgeon that specializes in therapeutic surgeries, like temporal lobe resections. In this case, a small portion of the temporal lobe of the brain is removed to relieve a person of intractable epilepsy. This might allow for a chance to satisfy their craving while providing benefit to the person involved.

See the original post here:
What's the Best Human Brain Alternative for Hungry Zombies? - Gizmodo UK

Regenerative Medicine Products Market Size By Product Analysis, Application, End-Users, Regional Outlook, Competitive Strategies And Forecast Up To…

New Jersey, United States,- Latest update on Regenerative Medicine Products Market Analysis report published with extensive market research, Regenerative Medicine Products Market growth analysis, and forecast by 2026. this report is highly predictive as it holds the overall market analysis of topmost companies into the Regenerative Medicine Products industry. With the classified Regenerative Medicine Products market research based on various growing regions, this report provides leading players portfolio along with sales, growth, market share, and so on.

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Regenerative Medicine Products Market Size By Product Analysis, Application, End-Users, Regional Outlook, Competitive Strategies And Forecast Up To...

Whats the Best Human Brain Alternative for Hungry Zombies? – Gizmodo Australia

Lets say youre a zombie. Youre lumbering around, doing your zombie-mumble, and just ten feet ahead you see a living human being. Your first impulse, of course, is to head over there and eat their brain. And youre about to do just that, when suddenly you feel a pang of something like shame. You remember, dimly, being a human yourself. You remember how you mightve felt, if an undead weirdo got to gnawing on your skull. Youre at an impasse: at once desperate for brain meat and reluctant to kill for it. So you head to your zombie psychologist and start explaining the situation, and your zombie psychologist starts grinning, which annoys you at first I mean, youre baring your soul to this guy until he explains whats on his mind. Turns out, hes been toying with an idea a pilot program for conscience-stricken zombies. Instead of human brains, theyll be fed stuff that looks and tastes just like brains, thereby sparing them the obligation to kill. The only thing they need to work out is: what would be an acceptable substitute for human brains? For this weeks Giz Asks, we reached out to a number of brain experts to find out.

Associate Professor, Neurobiology, Harvard Medical School

The brain is of course composed primarily of lipids, and so it is perfectly reasonable to assume that it is brain lipids that zombies really crave. But why human brains and not, say, mouse brains? Lipidomic analysis reveals that human brains are unusually enriched in a compound called sphingomyelin (relative to brains from rodents), and so it is further reasonable to assume that what zombies want is actually lots of sphingomyelin. So where to get it? Eggs. Eggs are packed with sphingomyelin. Furthermore, eggs also have the advantage of having a white outer cortex and a lipid-rich centre, just like the human brain, so they seem a reasonable substitute all around.

Chair and Professor of Neurology at the David Geffen School of Medicine at UCLA and Co-Director UCLA Broad Stem Cell Centre

A food-based substitute would require a fair amount of work, because youd have to get a sort of fatty, proteinaceous slop together as a mimic for the brain. A thick macaroni and cheese might work, with a larger noodle like ziti or rigatoni and no tang, meaning a thick white cheese, as opposed to cheddar.

The brain sandwich, made from cow brains, was an unusual delicacy in St. Louis for years. When I lived there, I saw what it looked like as they fried it, and its hard to imagine any other organ meat could substitute for the real thing. Kidney and liver are too firm and too structured; most foods we eat, or could think about eating, are also too firm, and not fatty enough.

A brain from another animal might work, though it would have to be an animal with an advanced brain that is, one with the folds we see when we look at the brains surface (which are called gyri and cilici). Those are what distinguish higher mammals from lower mammals. They also make the human brain this particularly characteristic thing in terms of substance and texture and appearance. So an animal brain, to sub for a human brain, would need to have those features. That would mean anything from, say, a dog or cat on up those both have gyri and cilici, whereas rodents and rabbits, for example, do not.

Assistant Professor of Brain Science, Psychiatry and Human Behaviour at Brown University

I think my Zombie would be a vegan. The thing that I have found to be the closest in texture to the brain is tofu (not the firm kind). People are often surprised by that fact, because its really soft you can put your finger through it easily.

Broadly, I study the kind of complex planning and decision making that is localised to the front of the brain, the prefrontal cortex. This area is also one of the most likely to be injured if you hit your head, because your very soft brain bounces around inside your skull. Our lab typically does a demo for Brain Week and other events that lets people feel tofu, and then shake it around in a container and see what happens to it. Shake it around in some water (mimicking some of the protections that our brain has in the cerebro-spinal fluid that it floats in) and the tofu does much better (which is why its packaged in water!).

Unfortunately tofu doesnt mimic all the wonderful folding that it has that lets us pack so many brain cells into a tight space. A sheet of paper crumpled up is best to show that capacity, but paper is probably much less tasty than tofu (to humans anyway, I dont know about zombies!).

Professor, Systems Biology, George Mason University

My proposal is: a literal pound of flesh. Many people have too much of it; its very similar to the brain in texture; it has a lot of cholesterol, which is important, because in my opinion at least zombies would crave exactly that. Also, adipose tissue is very rich with various kinds of growth hormones and other kinds of bioactive stuff. If you could develop some kind of device that would transfer the flesh to the zombies, people might even be grateful they wouldnt have to get liposuction.

Senior Lecturer, Medical Biotechnology, Deakin University

The best thing to do would be to make small versions of a brain from stem cells, called organoids. These are almost, but not quite, brains. You grow them in an artificial 3D environment that mimics the properties of the central nervous tissue, and allow them to develop networks of neural cells in a structured way. Theyre used for research into drugs and diseases and so on, but would probably be an acceptable meat-free snack for an ethically conscious zombie plague.

Professor in Neurology and Professor of Biomedical Engineering at Duke University

If I were a vegetarian zombie, I would try to make a brain substitute using the major components of the brain carbohydrates, proteins, and cells. The major carbohydrate component is hyaluronic acid (which is found in many beauty products, and can be purchased in bulk). Though by itself it does not form a solid, only a very viscous liquid, it can be combined with other materials that do form a solid. For example, sea weed has a carbohydrate named alginate that does form gels when combined with calcium. So, a blend of hyaluronic acid and alginate with calcium can yield a material that has the mechanics of the brain. For the protein component, eggs, beans, soy, and quinoa all can be good choices. To get the texture right, the calcium can be added while stirring to generate chunks. If it is OK to eat other animals, then I would buy pig brains, which are often discarded. Pig organs are close to the same size of humans and have even been used for transplantation due to similarities in physiology/biochemistry. That would be the simplest choice.

Associate Professor, Psychology and Neuroscience, George Mason University

Whenever I eat cauliflower, I think of the cerebellum or little brain. It is tucked away behind the cerebrum, or main part of the brain. The cerebellum is small, but it is where about 80 per cent of the entire brains neurons are found! Most of the cerebellums neurons, or grey matter, are found on its outer surface. They are tightly packed together in little folds called folia. The neurons in the folia are connected to each other by nerve fibres, also known as white matter. When the cerebellum is cut in half, the white matter appears as this beautiful network of branches called the arbor vitae, or tree of life. It really does look just like a head of cauliflower!

Professor, Psychology and Neuroscience, Trinity College

The brain is actually quite soft and squishy. Fortunately for us it normally floats in a pool of cerebrospinal fluid that serves as a cushiony packing material protecting the delicate brain from the hard skull. But the brain is so soft it can easily become injured without the head striking any object. If there is enough rotational or acceleration/deceleration motion for the brain to hit the skull the tips of the brain can be bruised and individual cells can be stretched or sheared from their connections. This can happen, for example, in motor vehicle accidents or shaken baby syndrome where the head is thrown very quickly forwards and then backwards.

The consistency I think the brain comes closest to is a gelatin. But I would recommend that our zombie make the gelatin with milk rather than water. This will give it a closer consistency to a brain, the colour will be more opaque like a real brain, and it will provide more of the much needed protein the zombie craves. There are even commercially made gelatin molds if the zombie is able to access stores or online shopping.

Another option would be a soft tofu. This might be a great option for a zombie who is a vegetarian or vegan. There is plenty of protein but it will be much harder to mould into the right shape. Sadly, most zombies are not portrayed to have the fine motor skills needed to create a brain shape from scratch, so the tofu would just have to be eaten as is.

On a side note, if our zombie truly finds that nothing satisfies like a real brain, they could certainly consider becoming a neurosurgeon that specialises in therapeutic surgeries, like temporal lobe resections. In this case, a small portion of the temporal lobe of the brain is removed to relieve a person of intractable epilepsy. This might allow for a chance to satisfy their craving while providing benefit to the person involved.

Do you have a burning question for Giz Asks? Email us at [emailprotected]

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Whats the Best Human Brain Alternative for Hungry Zombies? - Gizmodo Australia

Michael Longaker won a national title at Michigan State, then dove into the world of medicine – MLive.com

Note: This is part of a series of stories about former Michigan State players who have gone on to interesting or unique post-basketball careers. Previously: Adam Ballinger, artist; Delvon Roe, actor; Anthony Ianni, public speaker

Four decades later, the memory of his first practice against Earvin Magic Johnson is a vivid one for Michael Longaker.

As a sophomore guard for Michigan State in 1977-78, Longaker was among those tasked with defending the Spartans star newcomer. He spent that day exhausting himself while chasing the bigger and more athletic Johnson around Jenison Fieldhouse.

But the challenges didnt stop even when practice did. After leaving the court, Longaker balled up the tape on his ankles and threw it in a wastebasket. Johnson promptly grabbed the ball of tape and boasted he could sink the wastebasket shot from further away.

I was like Oh my gosh, what a nightmare, Longaker said. That was a window into how competitive Earvin was at everything.

While they competed in practice, the two teamed up to help Michigan State win the schools first national title in 1979. Johnson was the face of the team, while Longaker was a role player helping keep Johnson and others sharp in practice every day.

After Michigan State, the two teammates went to California and found plenty of professional success.

Johnson, of course, won five NBA titles and three MVP awards in his Hall of Fame career for the Lakers.

Longaker, meanwhile, settled in Northern California and became a leader in a different field: medicine.

I do something very different from my teammates, I imagine, Longaker said this week from his office.

Longaker has spent the last two decades at Stanford University, where hes a professor at the School of Medicine and the co-director of the Institute for Stem Cell Biology and Regenerative Medicine. His work focuses on scarring and how to regenerate skin and improve wound healing.

Its a field of study far different than the matchup zone he worked to master under Jud Heathcote. But playing and studying at Michigan State, he said, set him up for a successful career in medicine.

I cant overstate the role that Michigan State has played in my career, Longaker said.

Longaker spent four years at Michigan State working hard in practices like that first one and fighting for playing time on some immensely talented Spartans teams.

His contributions were often not seen on box scores. Later in his career, Heathcote started asking Longer for his thoughts before and during games. He saw Longaker as a potential future coach.

Longaker, though, had other career plans. He initially planned on going into dentistry, but a summer spent doing research with James Potchen, then the chair of Michigan States Department of Radiology, sold him on a career in medicine.

Heathcote ended up writing a letter of recommendation that helped Longaker get into Harvard Medical School. But even then, he still held out hope to see his former player on the sideline one day.

I said Coach, Im kind of committed to being a physician, Longaker said.

Longaker finished medical school with the intent of becoming a pediatric heart surgeon. But during a year of research during his residency at the University of California, San Francisco, he was assigned to work under a doctor who operated on children before they were born and asked to investigate how embryos heal wounds.

His findings, that embryos heal without scars in their first two trimesters, set his career on a different course. One year of research turned into four, then was followed by more training in New York and Los Angeles before he landed at Stanford in 2000.

Now, most of his work is in directing a lab that focuses on skin and the skeleton, developing techniques to use stem cells to improve wound healing and prevent scarring. His work has earned him numerous awards and hes been an inventor on over 40 patents and patent applications.

Its been great, Longaker said. I couldnt have predicted it.

That world is far removed from that of Michigan State basketball, but Longaker finds ways to bridge his past and his present. He has two teenage sons who follow the program closely he was elated this week in the afterglow of commitments from Emoni Bates and Max Christie and typically attends multiple games per year. Tom Izzo didnt join Heathcotes staff until after Longaker left, but the two have developed a friendship over the years.

Longaker has also become involved with the sports program at his employer (he attended the 2013 Rose Bowl wearing a split T-shirt featuring both Stanford and Michigan State) Former Stanford running back Bryce Love, the 2017 Heisman Trophy runner-up, worked in Longakers lab while completing his degree in human biology, and Oscar da Silva, an All-Pac 12 forward for the Cardinal, counts Longaker as his academic mentor.

One of Longakers recent trips back to East Lansing was last year, for the 40th anniversary of the 1979 national title. And when that team meets again in another decade, Longaker hopes his smarts can help reverse the outcome of that first practice way back when.

I always joked with my teammates, at our 50-year reunion, Im going to dominate, Longaker said.

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Michael Longaker won a national title at Michigan State, then dove into the world of medicine - MLive.com

Cell Isolation Market Analysis Of Key Vendors With Their Size, Share And Year-Over-Year Growth 2026 | Thermo Fisher Scientific, Beckman Coulter,…

The report on the Global Cell Isolation Market by Reports and Data report consists of the historical data, latest market trends, rules and regulations, technological advancements, new upcoming technologies, and prevalent strategies adopted by industry participants. This study also analyzes the overall market status, market share, growth rate, key market drivers, growth opportunities and challenges, risks and entry barriers, sales channels, and others.

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Our team of experts has conducted extensive studies on the Cell Isolation market, including a competitive analysis highlighting the key players.

In market segmentation by manufacturers, the report covers the following companies-

Thermo Fisher Scientific, Beckman Coulter, Becton, Dickinson and Company, GE Healthcare, Merck KgaA, Miltenyi Biotec, pluriSelect, STEMCELL Technologies Inc., Terumo BCT and Bio-Rad Laboratories Inc.

This category-based assessment is beneficial for the reader to capitalize on those market segments that promise positive growth in the coming years. The report also examines the Cell Isolation Market on the basis of the value, cost structure, and gross revenue. The three factors are analyzed for the different product types, the companies that are primarily engaged in the manufacture of the prevalent products, and the leading regional market in terms of sales of those product types.

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Product (Revenue in USD Billion, 2018 2026)

Cell Type (Revenue in USD Billion, 2018 2026)

Technique (Revenue in USD Billion, 2018 2026) Centrifugation Surface marker Filtration

Application (Revenue in USD Billion, 2018 2026) Biomolecule Isolation Cancer Research Stem Cell Research Tissue Regeneration & Regenerative Medicine Vitro Diagnostics

End Use (Revenue in USD Billion, 2018 2026) Research laboratories and institutes Biotechnology and biopharmaceutical companies Cell banks Hospitals and diagnostic laboratories

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Geographically,the research report is divided into several key Regions, including the production, consumption, revenue, and market share and the growth rate of Cell Isolation in these regions, from 2016 to 2027. The regions mapped in the report are North America, Europe, Asia Pacific, Latin America, and Middle East & Africa

TOC highlights of the Global Cell Isolation Market:

Chapter 1 analyzes the Cell Isolation Introduction, product offerings, and scope, complete market overview, growth opportunities, market risks, driving forces, and others.

Chapter 2 presents a detailed study of the key manufacturers of Cell Isolation , along with sales, revenue, and the price of Cell Isolation .

Chapter 3 includes the competitive scenario among the major manufacturers and vendors.

Chapter 4 shows the global Cell Isolation market by regions, clubbed with sales, revenue, and market share for each region, from 2016 to 2027.

Chapters 5, 6, 7, 8, and 9, study the market by region, by type, by application, and by manufacturer, with the sales, revenue, and market share based on leading countries in these regions.

Browse the full report @ https://www.reportsanddata.com/report-detail/cell-isolation-market

The research report by Reports and Data analyzes and forecasts the growth of the Cell Isolation Market at the global and regional levels. The market has been projected in terms of volume and price for the forecast period. The report also sheds light on the various opportunities within the market.

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Cell Isolation Market Analysis Of Key Vendors With Their Size, Share And Year-Over-Year Growth 2026 | Thermo Fisher Scientific, Beckman Coulter,...

Cell Culture Market Size & Share 2020 Research Report Covering COVID-19 Impact on Growth Analysis and Outlook till 2026 – The Collegian

Cell Culture Market Report 2020-26: COVID-19 Impact Analysis, Growth, and Change by Facts and Factors provide the strategists, marketers, and senior management with the critical information they need to assess the Cell Culture market.

Leading market research company Facts & Factors (FnF) published the latest research report onCell Culture Market By Product (Consumables and Equipment), By Application (Biopharmaceutical Production, Stem Cell Technology, Diagnostics Drug Discovery & Development, Tissue Engineering & Regenerative Medicine, and Others), By End-User (Pharmaceutical and Biotechnology Companies, Hospitals and Diagnostic Laboratories, Research Institutes, and Cell Banks), and By Region: Global Industry Outlook, Market Size, Business Intelligence, Consumer Preferences, Statistical Surveys, Comprehensive Analysis, Historical Developments, Current Trends, and Forecasts, 20202026in its database which covering in-depth analysis of size, segmentation market growth, and market share, competitive Landscape, Detailed List of Key Buyers and End-Users.

This report focuses on theCell Culture marketwhich is experiencing strong growth. The report gives a guide to the Cell Culture market which will be shaping and changing our lives over the next six years and beyond, including the markets response to the challenge of the global pandemic.

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Spreadsheet Chapters May include

Market Consumption in US$ by Country by Product/Service by Year. Market, Financial, Competitive, Market Segmentation, Industry, Critical Parameters, Marketing Costs, Markets, Decision Makers, Performance, Product Launch.

Some of Following Top Market Players Profile Included in This Report:

Cell Culture Market Analysis by Leading Market Players

Leading top market players in the Cell Culture market are analyzed in the report along with their business overview, operations, geographical locations, financial analysis, SWOT profile, and Carbon Black products & services.

COVID-19- Current Scenario, Potential Impact, and Strategic Situation Analysis

Various communities and companies are doing their best to function and perform, and eventually cope with the challenges raised by COVID-19 pandemic. The COVID-19 pandemic had a negative impact on the market size for the year 2020, with small and medium scale companies struggling to sustain their businesses in the near term future. Industry leaders are now focusing to create new business practices to deal with crisis situations like COVID-19 pandemic.

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The report covers market characteristics, market size and growth, segmentation, regional and country breakdowns, competitive landscape, market shares, trends and strategies for this market. It traces the markets historic and forecast market growth by geography. It places the market within the context of the wider Cell Culture market, and compares it with other markets.

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This report includes Free Customization which generally involves a breakout of particular industries or country data at no additional charge. An analyst call can be arranged as part of this which is included in the free customization offering. The Cell Culture Market can be customized to the country level or any other market segment.

The report concludes with the profiles of the key players in the Cell Culture market. The key players are evaluated on various parameters such as business overview, development, sales value analysis, and recent development. The emerging players are evaluated on various parameters such as business overview, promising vaccines in the clinical development with phase, platform technology, and recent development.

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Cell Culture Market Size & Share 2020 Research Report Covering COVID-19 Impact on Growth Analysis and Outlook till 2026 - The Collegian

Fate Therapeutics Announces FDA Clearance of IND Application for First-ever iPSC-derived CAR T-Cell Therapy | DNA RNA and Cells | News Channels -…

Details Category: DNA RNA and Cells Published on Monday, 13 July 2020 10:45 Hits: 11

FT819 CAR T-cell Product Candidate Derived from Clonal Master iPSC Line with Novel CD19-specific 1XX CAR Integrated into TRAC Locus

Phase 1 Clinical Study will Evaluate FT819 for Patients with Advanced B-cell Leukemias and Lymphomas

SAN DIEGO, CA, USA I July 09, 2020 I Fate Therapeutics, Inc. (NASDAQ: FATE), a clinical-stage biopharmaceutical company dedicated to the development of programmed cellular immunotherapies for cancer and immune disorders, announced today that the U.S. Food and Drug Administration (FDA) has cleared the Companys Investigational New Drug (IND) application for FT819, an off-the-shelf allogeneic chimeric antigen receptor (CAR) T-cell therapy targeting CD19+ malignancies. FT819 is the first-ever CAR T-cell therapy derived from a clonal master induced pluripotent stem cell (iPSC) line, and is engineered with several first-of-kind features designed to improve the safety and efficacy of CAR T-cell therapy. The Company plans to initiateclinical investigation of FT819for the treatment of patients with relapsed / refractory B-cell malignancies, including chronic lymphocytic leukemia (CLL), acute lymphoblastic leukemia (ALL), and non-Hodgkin lymphoma (NHL).

The clearance of our IND application for FT819 is a ground-breaking milestone in the field of cell-based cancer immunotherapy. Our unique ability to produce CAR T cells from a clonal master engineered iPSC line creates a pathway for more patients to gain timely access to therapies with curative potential, said Scott Wolchko, President and Chief Executive Officer of Fate Therapeutics. Four years ago, we first set out under our partnership with Memorial Sloan Kettering led by Dr. Michel Sadelain to improve on the revolutionary success of patient-derived CAR T-cell therapy and bring an off-the-shelf paradigm to patients, and we are very excited to advance FT819 into clinical development.

FT819 was designed to specifically address several limitations associated with the current generation of patient- and donor-derived CAR T-cell therapies. Under a collaboration with Memorial Sloan Kettering Cancer Center (MSK) led by Michel Sadelain, M.D., Ph.D., Director, Center for Cell Engineering, and Head, Gene Expression and Gene Transfer Laboratory at MSK, the Company incorporated several first-of-kind features into FT819 including:

The multi-center Phase 1 clinical trial of FT819 is designed to determine the maximum tolerated dose of FT819 and assess its safety and clinical activity in up to 297 adult patients across three types of B-cell malignancies (CLL, ALL, and NHL). Each indication will enroll independently and evaluate three dose-escalating treatment regimens: Regimen A as a single dose of FT819; Regimen B as a single dose of FT819 with IL-2 cytokine support; and Regimen C as three fractionated doses of FT819. For each indication and regimen, dose-expansion cohorts of up to 15 patients may be enrolled to further evaluate the clinical activity of FT819.

At the American Association for Cancer Research (AACR) Virtual 2020 Meeting, the Company presented preclinical data demonstrating FT819 is comprised of CD8 T cells with uniform 1XX CAR expression and complete elimination of endogenous TCR expression. Additionally, data from functional assessments showed FT819 has antigen-specific cytolytic activity in vitro against CD19-expressing leukemia and lymphoma cell lines that is comparable to that of healthy donor-derived CAR T cells, and persists and maintains tumor clearance in the bone marrow in an in vivo disseminated xenograft model of lymphoblastic leukemia.

Fate Therapeutics has an exclusive license for all human therapeutic use to U.S. Patent No. 10,370,452 pursuant to its license agreement with MSK1, which patent covers compositions and uses of effector T cells expressing a CAR, where such T cells are derived from a pluripotent stem cell including an iPSC. In addition to the patent rights licensed from MSK, the Company owns an extensive intellectual property portfolio that broadly covers compositions and methods for the genome editing of iPSCs using CRISPR and other nucleases, including the use of CRISPR to insert a CAR in the TRAC locus for endogenous transcriptional control.

1 Fate Therapeutics haslicensedintellectual propertyfrom MSK on which Dr. Sadelain is aninventor.As a result of the licensing arrangement, MSK has financial interests related to Fate Therapeutics.

About Fate Therapeutics iPSC Product Platform The Companys proprietary induced pluripotent stem cell (iPSC) product platform enables mass production of off-the-shelf, engineered, homogeneous cell products that can be administered with multiple doses to deliver more effective pharmacologic activity, including in combination with cycles of other cancer treatments. Human iPSCs possess the unique dual properties of unlimited self-renewal and differentiation potential into all cell types of the body. The Companys first-of-kind approach involves engineering human iPSCs in a one-time genetic modification event and selecting a single engineered iPSC for maintenance as a clonal master iPSC line. Analogous to master cell lines used to manufacture biopharmaceutical drug products such as monoclonal antibodies, clonal master iPSC lines are a renewable source for manufacturing cell therapy products which are well-defined and uniform in composition, can be mass produced at significant scale in a cost-effective manner, and can be delivered off-the-shelf for patient treatment. As a result, the Companys platform is uniquely capable of overcoming numerous limitations associated with the production of cell therapies using patient- or donor-sourced cells, which is logistically complex and expensive and is subject to batch-to-batch and cell-to-cell variability that can affect clinical safety and efficacy. Fate Therapeutics iPSC product platform is supported by an intellectual property portfolio of over 300 issued patents and 150 pending patent applications.

About Fate Therapeutics, Inc. Fate Therapeutics is a clinical-stage biopharmaceutical company dedicated to the development of first-in-class cellular immunotherapies for cancer and immune disorders. The Company has established a leadership position in the clinical development and manufacture of universal, off-the-shelf cell products using its proprietary induced pluripotent stem cell (iPSC) product platform. The Companys immuno-oncology product candidates include natural killer (NK) cell and T-cell cancer immunotherapies, which are designed to synergize with well-established cancer therapies, including immune checkpoint inhibitors and monoclonal antibodies, and to target tumor-associated antigens with chimeric antigen receptors (CARs). The Companys immuno-regulatory product candidates include ProTmune, a pharmacologically modulated, donor cell graft that is currently being evaluated in a Phase 2 clinical trial for the prevention of graft-versus-host disease, and a myeloid-derived suppressor cell immunotherapy for promoting immune tolerance in patients with immune disorders. Fate Therapeutics is headquartered in San Diego, CA. For more information, please visit http://www.fatetherapeutics.com.

SOURCE: Fate Therapeutics

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Fate Therapeutics Announces FDA Clearance of IND Application for First-ever iPSC-derived CAR T-Cell Therapy | DNA RNA and Cells | News Channels -...

Impact of COVID-19 on 3D Cell Culture Market to Record Significant Revenue Growth During the Forecast Period 2020-2026 – 3rd Watch News

The latest research report on Global 3D Cell Culture Market was conducted across a variety of industries in various regions to provide a report that has data surpassing 100+ pages. The report offers a mixture of qualitative and quantifiable information focusing on aspects such as key market developments, industry and competitors challenges in gap analysis and new opportunities in the 3D Cell Culture market. Various leaders along with players that are emerging, have been profiled in this report such as Thermo Fisher Scientific, Reprocell Incorporated, Kuraray Co, Corning, N3d Bioscience, Lonza Group, Insphero, Merck Kgaa, 3D Biotek that are a major part of the industry.

The unique point that this report includes, is that it contains details about the import and export policies that can have an immediate impact on the global 3D Cell Culture market. In addition, this study includes EX-IM * related chapters for all relevant companies dealing with the 3D Cell Culture market and related profiles and provides valuable data in terms of finances, product portfolio, investment planning and marketing and business strategy. Related graphs and tables of key industry data is available through purchase of this report.

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(The sample of this report is readily available on request). This Free report sample includes: A brief introduction to the research report. Graphical introduction of the regional analysis. Top players in the market with their revenue analysis. Selected illustrations of market insights and trends. Example pages from the report.

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The market is based on type, application, and geographical segments. Based on type, the market is segmented into Scaffold-based, Scaffold-free. Based on application, the market is segmented into Cancer Research, Stem Cell Research, Drug Discovery, Regererative Medicine .

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Market Data Breakdown by Key Geography, Type & Application / End-User By type (past and forecast) 3D Cell Culture Market-Specific Applications Sales and Growth Rates (Historical & Forecast) 3D Cell Culture revenue and growth rate by market (history and forecast) 3D Cell Culture market size and growth rate, application and type (past and forecast) Sales revenue, volume and Y-O-Y growth rate (base year) of 3D Cell Culture market

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Key Research: Industry experts from the global 3D Cell Culture industry, including management organizations, processing organizations, and analytical services providers that address the value chain of industry organizations, were the main source of collection of data. To collect and certify qualitative and quantitative information and to determine future prospects, we interviewed all major sources.

Secondary Research: Critical information about the industrial value chain, core pool of people, and applications, was the primary focus of secondary research. Market segmentation based on the industrys lowest level of industry, geographical markets and key developments in market and technology-driven core development, has also been done to provide a detailed picture of the current market situation.

Qualitative data: Includes factors affecting or influencing market dynamics and market growth. To list some names in related sections

Industry overview Global 3D Cell Culture market growth driver Global 3D Cell Culture market trend Incarceration 3D Cell Culture Market Opportunity Market entropy ** [specially designed to emphasize market aggressiveness] Fungal analysis Porter Five Army Model

Customized specific regional and country-level reports for the following areas.

North America: United States, Canada, and Mexico. South & Central America: Argentina, Chile, and Brazil. Middle East & Africa: Saudi Arabia, UAE, Turkey, Egypt and South Africa. Europe: UK, France, Italy, Germany, Spain, and Russia. Asia-Pacific: India, China, Japan, South Korea, Indonesia, Singapore, and Australia.

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Providing separate section of covid-19 crisis which consists:

Acknowledge the Global 3D Cell Culture market with the assist of our expert analyst moderating the worldwide fluctuations. This market report will answer all your queries regarding growth of your business in this Covid-19 pandemic. : This section sums up entire research study along with volume forecasts and CAGR value. Major Segments: This segment provide information about leading segments with important factors like growth potential and share. Leading Regions: In depth study of major regions in covid-19 pandemic and countries overall growth during this crisis. Competitors profiling: Accurate study of competitive landscape in affected regions and other studies. Dynamics: Aspects such as market constraints, prospective supply and demand, barriers, opportunities, etc. of the 3D Cell Culture market report would be available within the report.

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Chapter 1: Overview of Global 3D Cell Culture Market (2014-2026)

Definition Specifications Classification Applications Regions

Chapter 2: Market Competition by Players/Suppliers 2014 and 2018

Manufacturing Cost Structure Raw Material and Suppliers Manufacturing Process Industry Chain Structure

Chapter 3: Sales (Volume) and Revenue (Value) by Region (2014-2018)

Sales Revenue and market share

Chapter 4, 5 and 6: Global 3D Cell Culture Market by Type, Application & Players/Suppliers Profiles (2014-2018)

Market Share by Type & Application Growth Rate by Type & Application Drivers and Opportunities Company Basic Information

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Impact of COVID-19 on 3D Cell Culture Market to Record Significant Revenue Growth During the Forecast Period 2020-2026 - 3rd Watch News

Stem Cell Assay Market 2020 Forecast to 2026 (Based on 2020 COVID-19 Worldwide Spread), Key Players Bio-Techne Corporation, Bio-Rad Laboratories,…

The Global Stem Cell Assay Market is an in-depth analysis on basis of the growth regions, types and product applications, over the forecast (2020-2026) of the industry. It distinguishes global Stem Cell Assay market by product specification, company overview, market strategies adopted by the leaders to ensure growth, sustainability, financial overview and developments in recent times. The detailed knowledge of the Stem Cell Assay market based on present and future data, Stem Cell Assay market forecast with the list of figures, pie-charts to help aspirants and key market players in making decisions for the company growth. The report performs SWOT on the leading vendors, combines primary and secondary information with inputs from key participants in the Stem Cell Assay industry calculates XX CAGR values, and forecast over years (2020-2026). Global Stem Cell Assay industry summarizes the fundamental features commanding the market with their business summary, Stem Cell Assay market sales, press release, evolution taking place in the market.

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The Stem Cell Assay research report assesses market trends impacting the growth for the accomplishments in the market. Stem Cell Assay industry opportunities and threats faced by the vendors. The research recapitulates components that will be subject Stem Cell Assay market growth rate in the forecast period.

The Global Stem Cell Assay market report includes various key manufacturers, type and application analysis:

Global Stem Cell Assay Market Key players:

Bio-Techne Corporation Bio-Rad Laboratories Promega Corporation Merck KGaA Hemogenix GE Healthcare Cellular Dynamics International STEMCELL Technologies Cell Biolabs Thermo Fisher Scientific

Type analysis divides Stem Cell Assay market into:

Viability/Cytotoxicity Isolation & Purification Cell Identification Proliferation Differentiation Function Apoptosis

Application analysis divides the Stem Cell Assay market into:

Regenerative Medicine & Therapy Development Drug Discovery and Development Clinical Research

The report executes the tenacious and in-depth study, in order to abstracts future outlook and prospects of Stem Cell Assay market.It analyzes the Stem Cell Assay past and present information, production processes, major issues and predicts future Stem Cell Assay market trends. It amplifies the Stem Cell Assay market supply-chain scenario with respect to volume. The research mainly covers Stem Cell Assay Market in North America (Canada, Mexico, and the United States), Europe industry (UK, Germany, Russia, Italy, and France), in Asia-Pacific (Southeast Asia, China, Korea, India and Japan), South America (Argentina, Colombia, Brazil), Stem Cell Assay in Middle East and Africa (UAE, Egypt, Saudi Arabia, South Africa).

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Stem Cell Assay Market 2020 Forecast to 2026 (Based on 2020 COVID-19 Worldwide Spread), Key Players Bio-Techne Corporation, Bio-Rad Laboratories,...

Stem Cell Assay Depth Market Size By Product Analysis, Application, End-Users, Regional Outlook, Competitive Strategies And Forecast Up To 2026 – 3rd…

New Jersey, United States,- Latest update on Stem Cell Assay Depth Market Analysis report published with extensive market research, Stem Cell Assay Depth Market growth analysis, and forecast by 2026. this report is highly predictive as it holds the overall market analysis of topmost companies into the Stem Cell Assay Depth industry. With the classified Stem Cell Assay Depth market research based on various growing regions, this report provides leading players portfolio along with sales, growth, market share, and so on.

The research report of the Stem Cell Assay Depth market is predicted to accrue a significant remuneration portfolio by the end of the predicted time period. It includes parameters with respect to the Stem Cell Assay Depth market dynamics incorporating varied driving forces affecting the commercialization graph of this business vertical and risks prevailing in the sphere. In addition, it also speaks about the Stem Cell Assay Depth Market growth opportunities in the industry.

Stem Cell Assay Depth Market Report covers the manufacturers data, including shipment, price, revenue, gross profit, interview record, business distribution etc., these data help the consumer know about the competitors better. This report also covers all the regions and countries of the world, which shows a regional development status, including Stem Cell Assay Depth market size, volume and value, as well as price data.

Stem Cell Assay Depth Market competition by top Manufacturers:

Stem Cell Assay Depth Market Classification by Types:

Stem Cell Assay Depth Market Size by End-user Application:

Listing a few pointers from the report:

The objective of the Stem Cell Assay Depth Market Report:

Cataloging the competitive terrain of the Stem Cell Assay Depth market:

Unveiling the geographical penetration of the Stem Cell Assay Depth market:

The report of the Stem Cell Assay Depth market is an in-depth analysis of the business vertical projected to record a commendable annual growth rate over the estimated time period. It also comprises of a precise evaluation of the dynamics related to this marketplace. The purpose of the Stem Cell Assay Depth Market report is to provide important information related to the industry deliverables such as market size, valuation forecast, sales volume, etc.

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Stem Cell Assay Depth Market Size By Product Analysis, Application, End-Users, Regional Outlook, Competitive Strategies And Forecast Up To 2026 - 3rd...