Why Young and Female Patients Don’t Respond as Well to Cancer Immunotherapy – UC San Diego Health

Cancer immunotherapy empowering a patients own immune system to clear away tumors on its own holds great promise for some patients. But for other patients, immunotherapy just doesnt work.

Researchers at University of California San Diego School of Medicine have found evidence that helps explain why patients who are young and/or female have especially low response rates to some types of cancer immunotherapy.

Their findings suggest that since the typically robust immune systems of young and female patients are better at getting rid of tumor cells, the cells left behind are not as readily visible to the immune system to begin with, rendering some types of immunotherapy ineffective.

Due to a process known as immuno-editing, younger and female patients with cancer have cancer-causing genetic mutations that are least visible to the immune system according to a new Nature Communications study by Hannah Carter, PhD, and team at UC San Diego School of Medicine.

The study is published August 17, 2020, in Nature Communications.

Now that we know why some patients dont respond as well to immunotherapy, we can begin developing more informed approaches to treatment decisions for instance, developing predictive algorithms to determine a persons likely response before initiating immunotherapies that may have a high probability of not working or working poorly for them, said senior author Hannah Carter, PhD, associate professor of medicine at UC San Diego School of Medicine.

Cancerous or infected cells wave molecular flags that tell the immune system to clear them away before the problem gets out of control. The flag poles molecules of the Major Histocompatibility Complexes (MHC) are displayed at the surface of most cells in the body. MHCs hold up antigen flags bits of just about everything from inside the cells and display them to immune cell surveyors that are constantly checking for damaged or infected cells. Since tumor cells carry a lot of mutations, they show up frequently among these flags, allowing the immune system to detect and eliminate them.

But some tumor cells evade the immune system by also throwing up a stop sign molecule that keeps the immune system from recognizing the MHC flags. And heres where immune checkpoint inhibitors come in: This type of cancer immunotherapy uses antibodies to make the tumor cell once again visible to the patients immune system.

So why would a persons age or sex influence how well immune checkpoint inhibitors work?

Sex and age differences have long been observed when it comes to immune response. For example, females have twice the antibody response to flu vaccines and are far more susceptible to autoimmune diseases. Similarly, human immune systems tend to weaken as we age. But if females and younger people have stronger immune responses in most cases, you might expect cancer immunotherapy to work better for them, not worse.

To get to the bottom of this conundrum, Carters team looked at genomic information for nearly 10,000 patients with cancer available from the National Institutes of Healths The Cancer Genome Atlas, and another 342 patients with other tumor types available from the International Cancer Genome Consortium database and published studies. They found no age or sex-related differences in MHC function.

What they did find was that, compared to older and male patients with cancer, younger and female patients tend to accumulate more cancer-causing genetic mutations of the sort that MHCs cant present to the immune system as efficiently. Carter said this is likely because robust immune systems of the young and female are better at getting rid of cells displaying well-presented mutant self-antigens, leaving behind tumor cells that rely more heavily on the poorly presented mutations. This selective pressure is known as immuno-editing.

So if a tumor cell doesnt present highly visible, mutated self antigens to begin with, checkpoint inhibitor drugs cant help reveal them to the immune system, she said.

This shows an important thing, that the interplay between the cancer genome and the adaptive arm of the immune system is not a static one, said co-author Maurizio Zanetti, MD, professor of medicine at UC San Diego School of Medicine and head of the Laboratory of Immunology at UC San Diego Moores Cancer Center. Two simple but important variables, age and sex, influence this interplay. The study also emphasizes the master role of the MHC in dictating the outcome of this interplay, reaffirming its central role in the evolution of disease, cancer included, at the level of the individual and population.

Carter cautions that their findings for younger patients dont necessarily apply to children since, genetically speaking, pediatric tumors are very different from adult tumors. In addition, she noted that, like most genomics databases, those used in this study contain data primarily from people of Caucasian descent, and more diversity is needed to confirm that the findings can be generalized to all populations.

Cancer isnt just one disease, and so the way we treat it cant be one-size-fits-all, she said. All checkpoint inhibitors can do is remove the generic block that tumors put up to hide from the immune system. The more we learn about how interactions between tumors and immune systems might vary, the better positioned we are to tailor treatments to each persons situation.

Co-authors of the study also include: Andrea Castro, Rachel Marty Pyke, Xinlian Zhang, Wesley Kurt Thompson, Ludmil B. Alexandrov, Maurizio Zanetti, UC San Diego; and Chi-Ping Day, National Institutes of Health.

The study was funded, in part, by the National Institutes of Health (grants T15LM011271, DP5-OD017937, RO1CA220009, P41GM103504, 5R01CA155010-02, 5R01HL103532-03, 2P50CA101942-11A1, R50RCA211482A, R35CA197633, P01CA168585, 5P50CA168536, GM08042, 1RO1CA155010-02, 5R01HL103532-03, R21CA216772-01A1, T32HL007627, P50CA165962, P01CA163205, K08CA188615), National Science Foundation (graduate fellowship 2015205295), Mark Foundation for Cancer Research (grant 18-022-ELA), CIFAR Fellowship, Blavatnik Family Foundation, Broad Institute SPARC Program, BroadIgnite, BroadNext10, Francis and Adele Kittredge Family Immuno-Oncology and Melanoma Research Fund, Faircloth Family Research Fund, DFCI Center for Cancer Immunotherapy, Leukemia and Lymphoma Society, American Association for Cancer Research, Geoffrey Beene Cancer Research Center, Society for Memorial Sloan Kettering Cancer Center, Lung Cancer Research Foundation, Frederick Adler Chair Fund, One Ball Matt Memorial Golf Tournament, Queen Wilhelmina Cancer Research Award, STARR Foundation, Ludwig Trust, Stand Up To Cancer-Cancer Research Institute Cancer Immunology Translational Cancer Research Grant, Stand Up To Cancer-American Cancer Society Lung Cancer Dream Team Translational Research Grant (grant SU2C-AACR-DT17-15), Ben and Catherine Ivy Foundation, Zuckerman STEM Leadership Program, Benoziyo Endowment Fund for the Advancement of Science, DFCI Center for Cancer Immunotherapy Research fellowship, Howard Hughes Medical Institute and American Cancer Society (grant PF-17-042-01LIB).

Disclosure: Co-author Rachel Marty Pyke is an employee and holds stock in Personalis.

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Why Young and Female Patients Don't Respond as Well to Cancer Immunotherapy - UC San Diego Health

Global Stem Cell and Primary Cell Culture Medium Market Report: Production, Revenue, Price Trend by Types & Market Analysis by Application -…

Stem Cells are a class of cells that have unlimited or immortal self-renewal ability, capable of producing at least one type of highly differentiated progeny cells. Primary Cells are cells that are cultured immediately after removal from the body. Stem Cell and Primary Cell Cultures are specialized systems, and as such developing and manufacturing media for these systems come with inherent complexities.

The global Stem Cell and Primary Cell Culture Medium market is valued at US$ xx million in 2020 is expected to reach US$ xx million by the end of 2026, growing at a CAGR of xx% during 2021-2026.

Access more details about this report at: https://www.themarketreports.com/report/global-stem-cell-and-primary-cell-culture-medium-market-research-report

(This is our latest offering and this report also analyzes the impact of COVID-19 on Stem Cell and Primary Cell Culture Medium market and updated by the current situation, especially the forecast)

The research report has incorporated the analysis of different factors that augment the markets growth. It constitutes trends, restraints, and drivers that transform the market in either a positive or negative manner. This section also provides the scope of different segments and applications that can potentially influence the market in the future. The detailed information is based on current trends and historic milestones. This section also provides an analysis of the volume of production about the global market and also about each type from 2015 to 2026. This section mentions the volume of production by region from 2015 to 2026. Pricing analysis is included in the report according to each type from the year 2015 to 2026, manufacturer from 2015 to 2020, region from 2015 to 2020, and global price from 2015 to 2026.

A thorough evaluation of the restrains included in the report portrays the contrast to drivers and gives room for strategic planning. Factors that overshadow the market growth are pivotal as they can be understood to devise different bends for getting hold of the lucrative opportunities that are present in the ever-growing market. Additionally, insights into market experts opinions have been taken to understand the market better.

The major players in the market include Merck, STEMCELL Technologies, Irvinesci, Cell Applications, Inc, Biological Industries, Miltenyi Biotec, Swiss Medica Clinic, Promocell, Creative Biolabs, Lifeline Cell Technology, ScienCell Research Laboratories, Osiris Therapeutics, NuVasive, Chiesi Pharmaceuticals, JCR Pharmaceutical, Pharmicell, Medi-post, Anterogen, Molmed, Takeda (TiGenix), etc.

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Global Stem Cell and Primary Cell Culture Medium Market: Regional Analysis

The report offers in-depth assessment of the growth and other aspects of the Stem Cell and Primary Cell Culture Medium market in important regions, including the U.S., Canada, Germany, France, U.K., Italy, Russia, China, Japan, South Korea, Taiwan, Southeast Asia, Mexico, and Brazil, etc. Key regions covered in the report are North America, Europe, Asia-Pacific and Latin America.

The report has been curated after observing and studying various factors that determine regional growth such as economic, environmental, social, technological, and political status of the particular region. Analysts have studied the data of revenue, production, and manufacturers of each region. This section analyses region-wise revenue and volume for the forecast period of 2015 to 2026. These analyses will help the reader to understand the potential worth of investment in a particular region.

Global Stem Cell and Primary Cell Culture Medium Market: Competitive Landscape

This section of the report identifies various key manufacturers of the market. It helps the reader understand the strategies and collaborations that players are focusing on combat competition in the market. The comprehensive report provides a significant microscopic look at the market. The reader can identify the footprints of the manufacturers by knowing about the global revenue of manufacturers, the global price of manufacturers, and production by manufacturers during the forecast period of 2015 to 2019.

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Global Stem Cell and Primary Cell Culture Medium Market Report: Production, Revenue, Price Trend by Types & Market Analysis by Application -...

Hackensack University Medical Center Has the Best Cancer Center in New Jersey John Theurer Cancer Center recognized by U.S. News & World Report -…

Newswise HACKENSACK, N.J.,AUGUST 17, 2020 U.S. News & World Report has recognized John Theurer Cancer Center at Hackensack University Medical Center as the best cancer center in New Jersey. The recognition reflects the extraordinary strength of its comprehensive patient care, research and education programs.

In 2019, John Theurer Cancer Center became a member of the National Cancer Institute-approved Georgetown Lombardi Comprehensive Cancer Center Consortium, making the Cancer Center a member of one of just 16 cancer consortia based at the nation's most prestigious institutions. The NCI endorses such consortia to bring together accomplished institutionswith independently proven records of excellence to join forces in pursuit of the NCI's original mission: improving cancer outcomes through scientific discovery, reducing the impact of cancer on individuals and communities and diminishing cancer disparities, and developing the next generation of cancer scientists, clinicians and educators.

John Theurer Cancer Center is organized into 16 specialized divisions, each led by a recognized expert in the field. With a strong focus on clinical science and innovation, John Theurer Cancer Center investigators were directly involved in the development of more than 40 new anticancer agents approved by the U.S. Food and Drug Administration over the last three yearsparticularly for blood cancers such as leukemia, lymphoma, and multiple myeloma, as well as solid tumors through Phase I first-in-human clinical trials.

"Our multidisciplinary team cares for patients with cancers of every type and stage in a highly subspecialized environment," said Robert C. Garrett, FACHE, CEO, Hackensack Meridian Health. "Our commitment to cancer is reflective of our approach to everything we do: to provide the most advanced health care services based on the latest findings of medical research in a compassionate, culturally sensitive setting. It is an honor for us to be recognized as the top cancer center in our state."

"Our exceptional team is proud to be recognized as the top cancer program in New Jersey. The scope and depth of expertise, together with our focus on clinical science and innovation, are what make our Cancer Center a destination program, explained Andre Goy, M.D., M.S., chair and chief physician of John Theurer Cancer Center, Lymphoma Division chief, physician-in-chief of the Hackensack Meridian Health Oncology Care Transformation Service, and a renowned lymphoma expert who led the Cancer Center's participation in the pioneering ZUMA-2 study. "Understandably, every person who receives a diagnosis of cancer seeks the center with the most experience and the best innovation. This is why patients come to John Theurer Cancer Center. We take care of each patient in a compassionate and friendly environment, and that's what makes our patients smile.

A number of metrics support that successful track record:

This recognition as the state's best cancer center reflects the strength of our research, the dedication of our multidisciplinary team, and the expertise of our physicians," said Ihor Sawczuk, MD, FACS, Hackensack Meridian Health regional president, Northern Market and chief research officer. We are grateful to our patients who have trusted us with their care and who continually inspire us to provide the best possible experience.

For more information, please contact Katherine Emmanouilidis, Director, Communications & Public Relations, 551-996-3764.

About Hackensack Meridian Health Hackensack University Medical Center

Hackensack Meridian Health Hackensack University Medical Center, a 781-bed nonprofit teaching and research hospital located in Bergen County, NJ, is the largest provider of inpatient and outpatient services in the state. Founded in 1888 as the countys first hospital, it is now part of the largest, most comprehensive and truly integrated health care network in New Jersey, offering a complete range of medical services, innovative research and life-enhancing care, which is comprised of 35,000 team members and more than 7,000 physicians. Hackensack University Medical Center is ranked #2 in New Jersey and #59 in the country in U.S. News & World Reports 2019-20 Best Hospital rankings and is ranked high-performing in the U.S. in colon cancer surgery,lung cancersurgery,COPD, heart failure, heart bypass surgery, aortic valve surgery,abdominal aortic aneurysm repair, knee replacement and hip replacement. Out of 4,500 hospitals evaluated, Hackensack is one of only 57 that received a top rating in all nine procedures and conditions. Hackensack University Medical Center is one of only five major academic medical centers in the nation to receive Healthgrades Americas 50 Best Hospitals Award for five or more years in a row. Beckers Hospital Review recognized Hackensack University Medical Center as one of the 100 Great Hospitals in America 2018. The medical center is one of the top 25 green hospitals in the country according to Practice Greenhealth, and received 28 Gold Seals of Approval by The Joint Commission more than any other hospital in the country. It was the first hospital in New Jersey and second in the nation to become a Magnet recognized hospital for nursing excellence; receiving its sixth consecutive designation in 2019. Hackensack University Medical Center has created an entire campus of award-winning care, including: John Theurer Cancer Center, a consortium member of the NCI-designated Georgetown Lombardi Comprehensive Cancer Center; the Heart & Vascular Hospital; and the Sarkis and Siran Gabrellian Womens and Childrens Pavilion, which houses the Joseph M. Sanzari Childrens Hospital and Donna A. Sanzari Womens Hospital, which was designed with The Deirdre Imus Environmental Health Center and listed on the Green Guides list of Top 10 Green Hospitals in the U.S. Hackensack University Medical Center is the Hometown Hospital of the New York Giants and the New York Red Bulls and is Official Medical Services Provider to THE NORTHERN TRUST PGA Golf Tournament. It remains committed to its community through fundraising and community events especially the Tackle Kids Cancer Campaign providing much needed research at the Childrens Cancer Institute housed at the Joseph M. Sanzari Childrens Hospital. To learn more, visit http://www.HackensackUMC.org.

About John Theurer Cancer Center atHackensack University Medical Center

John Theurer Cancer Center at Hackensack University Medical Center is New Jerseys largest and most comprehensive center dedicated to the diagnosis, treatment, management, research, screenings, and preventive care as well as survivorship of patients with all types of cancers. The 16 specialized divisions covering the complete spectrum of cancer care have developed a close-knit team of medical, research, nursing, and support staff with specialized expertise that translates into more advanced, focused care for all patients. Each year, more people in the New Jersey/New York metropolitan area turn to John Theurer Cancer Center for cancer care than to any other facility in New Jersey.John Theurer Cancer Center is amember of the Georgetown Lombardi Comprehensive Cancer Center Consortium,one of just 16 NCI-approved cancer research consortiabased at the nations most prestigious institutions. Housed within a 775-bed not-for-profit teaching, tertiary care, and research hospital, John Theurer Cancer Center provides state-of-the-art technological advances, compassionate care, research innovations, medical expertise, and a full range of aftercare services that distinguish John Theurer Cancer Center from other facilities.For additional information, please visitwww.jtcancercenter.org

ABOUTHACKENSACKMERIDIAN HEALTH

Hackensack Meridian Health is a leading not-for-profit health care organization that is the largest, most comprehensive and truly integrated health care network in New Jersey, offering a complete range of medical services, innovative research and life-enhancing care.

Hackensack Meridian Health comprises 17 hospitals from Bergen to Ocean counties, which includes three academic medical centers Hackensack University Medical Center in Hackensack, Jersey Shore University Medical Center in Neptune, JFK Medical Center in Edison; two childrens hospitals - Joseph M. Sanzari Childrens Hospital in Hackensack, K. Hovnanian Childrens Hospital in Neptune; nine community hospitals Bayshore Medical Center in Holmdel, Mountainside Medical Center in Montclair, Ocean Medical Center in Brick, Palisades Medical Center in North Bergen, Pascack Valley Medical Center in Westwood, Raritan Bay Medical Center in Old Bridge, Raritan Bay Medical Center in Perth Amboy, Riverview Medical Center in Red Bank, and Southern Ocean Medical Center in Manahawkin; a behavioral health hospital Carrier Clinic in Belle Mead; and two rehabilitation hospitals - JFK Johnson Rehabilitation Institute in Edison and Shore Rehabilitation Institute in Brick.

Additionally, the network has more than 500 patient care locations throughout the state which include ambulatory care centers, surgery centers, home health services, long-term care and assisted living communities, ambulance services, lifesaving air medical transportation, fitness and wellness centers, rehabilitation centers, urgent care centers and physician practice locations. Hackensack Meridian Health has more than 36,000 team members, and 7,000 physicians and is a distinguished leader in health care philanthropy, committed to the health and well-being of the communities it serves.

The networks notable distinctions include having four of its hospitals are among the top hospitals in New Jersey for 2020-21, according toU.S. News & World Report. Additionally, the health system has more top-ranked hospitals than any system in New Jersey. Childrens Health is again ranked a top provider of pediatric health care in the United States and earned top 50 rankings in the annual U.S. News 2020-21 Best Childrens Hospitals report. Other honors include consistently achieving Magnet recognition for nursing excellence from the American Nurses Credentialing Center and being named to Beckers Healthcares 150 Top Places to Work in Healthcare/2019 list.

The Hackensack Meridian School of Medicine, the first private medical school in New Jersey in more than 50 years, welcomed its first class of students in 2018 to its On3 campus in Nutley and Clifton. The Hackensack Meridian Center for Discovery and Innovation (CDI), housed in a fully renovated state-of-the-art facility, seeks to translate current innovations in science to improve clinical outcomes for patients with cancer, infectious diseases and other life-threatening and disabling conditions.

Additionally, the network partnered with Memorial Sloan Kettering Cancer Center to find more cures for cancer faster while ensuring that patients have access to the highest quality, most individualized cancer care when and where they need it.

Hackensack Meridian Health is a member of AllSpire Health Partners, an interstate consortium of leading health systems, to focus on the sharing of best practices in clinical care and achieving efficiencies.

To learn more, visit http://www.hackensackmeridianhealth.org.

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Hackensack University Medical Center Has the Best Cancer Center in New Jersey John Theurer Cancer Center recognized by U.S. News & World Report -...

Global Stem Cells Market Report Forecast to 2025 by Global Market Insights, Key Companies and Driving Trends| CCBC, Vcanbio, Boyalife, Beikebiotech -…

Global Stem Cells Market Report 2020 by Key Players, Types, Applications, Countries, Market Size, Forecast to 2026 (Based on 2020 COVID-19 Worldwide Spread)

Global Stem Cells Market Report offers an entire study of the Impact of COVID-19 on Stem Cells Market, Industry Outlook, Opportunities in Market, and Expansion By 2025 and also taking into consideration key factors like drivers, challenges, recent trends, opportunities, advancements, and competitive landscape. This report offers a clear understanding of this also as a future scenario of the worldwide Stem Cells industry. Research techniques like PESTLE and SWOT analysis are deployed by the researchers. They need also provided accurate data on Stem Cells production, capacity, price, cost, margin, and revenue to help the players gain a clear understanding of the general existing and future market situation.

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Stem Cells Market competition by top manufacturers/Key player Profiled: CCBC, Vcanbio, Boyalife, Beikebiotech

The study objectives of Stem Cells Market report are: 1.To identify opportunities and challenges for Global Stem Cells. 2.To provide insights about factors affecting market growth. To analyze the Stem Cells market based on various factors- price analysis, supply chain analysis, SWOT analysis, etc. 3.To identify and analyze the profile of leading players involved within the manufacturing of worldwide Stem Cells. 4.To provide country-level analysis of the market regarding the present Stem Cells market size and future prospective. 5.To examine competitive developments like expansions, new product launches, mergers & acquisitions, etc., in Global Stem Cells. 6.To provide a detailed analysis of the market structure alongside forecast of the varied segments and sub-segments of the worldwide Stem Cells market.

By Types, the Stem Cells Market can be Splits into:

Umbilical Cord Blood Stem Cell Embryonic Stem Cell Adult Stem Cell Other

By Applications, the Stem Cells Market can be Splits into:

Diseases Therapy Healthcare

The global Stem Cells market was valued at $XX million in 2019, and MAResearch analysts predict the global market size will reach $XX million by the end of 2029, growing at a CAGR of XX% between 2019 and 2029.

This report provides detailed historical analysis of global market for Stem Cells from 2014-2019, and provides extensive market forecasts from 2020-2029 by region/country and subsectors. It covers the sales volume, price, revenue, gross margin, historical growth and future perspectives in the Stem Cells market.

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Regions Covered in these Report:

Asia Pacific (China, Japan, India, and Rest of Asia Pacific) Europe (Germany, the UK, France, and Rest of Europe) North America (the US, Mexico, and Canada) Latin America (Brazil and Rest of Latin America) Middle East & Africa (GCC Countries and Rest of Middle East & Africa)

Global Stem Cells Market is highly fragmented and the major players have used various strategies such as new product launches, expansions, agreements, joint ventures, partnerships, acquisitions, and others to increase their footprints in this market. The report includes market shares of Stem Cells Market for Global, Europe, North America, Asia-Pacific, South America and Middle East & Africa.

Reasons To Buy: Make strategic business decisions using in-depth historic and forecast market data associated with the Stem Cells market, and every category within it. Extensive price charts draw particular pricing trends within recent years Position yourself to realize the most advantage of the Stem Cells markets growth potential To understand the latest trends of the Stem Cells market To understand the impactful developments of key players within the market, their strategic initiatives and comprehensively study their core competencies

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Table of Contents

Report Overview:It includes major players of the global Stem Cells Market covered in the research study, research scope, and Market segments by type, market segments by application, years considered for the research study, and objectives of the report.

Global Growth Trends:This section focuses on industry trends where market drivers and top market trends are shed light upon. It also provides growth rates of key producers operating in the global Stem Cells Market. Furthermore, it offers production and capacity analysis where marketing pricing trends, capacity, production, and production value of the global Stem Cells Market are discussed.

Market Share by Manufacturers:Here, the report provides details about revenue by manufacturers, production and capacity by manufacturers, price by manufacturers, expansion plans, mergers and acquisitions, and products, market entry dates, distribution, and market areas of key manufacturers.

Market Size by Type:This section concentrates on product type segments where production value market share, price, and production market share by product type are discussed.

Market Size by Application:Besides an overview of the global Stem Cells Market by application, it gives a study on the consumption in the global Stem Cells Market by application.

Production by Region:Here, the production value growth rate, production growth rate, import and export, and key players of each regional market are provided.

Consumption by Region:This section provides information on the consumption in each regional market studied in the report. The consumption is discussed on the basis of country, application, and product type.

Company Profiles:Almost all leading players of the global Stem Cells Market are profiled in this section. The analysts have provided information about their recent developments in the global Stem Cells Market, products, revenue, production, business, and company.

Market Forecast by Production:The production and production value forecasts included in this section are for the global Stem Cells Market as well as for key regional markets.

Market Forecast by Consumption:The consumption and consumption value forecasts included in this section are for the global Stem Cells Market as well as for key regional markets.

Value Chain and Sales Analysis:It deeply analyzes customers, distributors, sales channels, and value chain of the global Stem Cells Market.

Key Findings: This section gives a quick look at important findings of the research study.

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Global Stem Cells Market Report Forecast to 2025 by Global Market Insights, Key Companies and Driving Trends| CCBC, Vcanbio, Boyalife, Beikebiotech -...

ASU engineers get to the heart of organs-on-a-chip – ASU Now

August 17, 2020

Denver is known for its relatively mild climate and its four distinct seasons. Its also known for its temperature fluctuations over the course of a day or even hours. But what does that mean for the citys residents and for that matter, the rest of the inhabitants of the continental United States when it comes to temperature extremes?

Thats what Ashley Broadbentwanted to know. Specifically, he wanted to know how populations throughout the United States will experience heat and cold during the 21st century.

So, Broadbent, an assistant research professor in Arizona State Universitys School of Geographical Sciences and Urban Planning, used state-of-the-art modeling tools to analyze how three key variables would affect human exposure to extreme temperatures from the beginning of this century to its end.

He and his collaborator Matei Georgescu, an associate professor in the School of Geographical Sciences and Urban Planning, concentrated on the following three key factors: climate change brought about by greenhouse gas emissions, urban development-induced impacts arising from the growth of cities, and population change in individual cities.

The paper, "The motley drivers of heat and cold exposure in 21st century U.S. cities," was published onlineAug. 17 in the Proceedings of the National Academy of Sciences. It is the first study of its kind to consider population-weighted heat and cold exposure that directly and simultaneously account for greenhouse gas and urban development-induced warming.

Graphic by Alex Davis/ASU Media Relations and Strategic Communications

To describe how these three variables would affect temperatures, and in turn populations, Broadbent, Georgescu and co-author Eric Scott Krayenhoff, assistant professor at the University of Guelph, Ontario, in Canada, used a metric they dubbed person-hours, to describe humans exposure to extreme heat and cold.

Its an intuitive metric, Broadbent said. For example, when one person is exposed to one hour of an extreme temperature, that exposure equals one person-hour of exposure. Likewise, if 10 people are exposed to 10 hours of an extreme temperature, that exposure equals 100 person-hours.

I think this definition is more representative of what people experience, which is what this study is about versus a study that simply communicates temperature changes without any human element attached to it, Broadbent said.

Overall, the researchers found that the average annual heat exposure at the start of this century in the United States was about 5.2 billion person-hours. Assuming a worst-case scenario of peak global warming, population growth and urban development, the annual heat exposure would rise to 150 billion person-hours by the end of the century, a nearly 30-fold increase.

The combined effect of these three drivers will substantially increase the average heat exposure across the United States, but heat exposure is not projected to increase uniformly in all cities across the U.S., Broadbent said. There will be hot spots where heat exposure grows sharply.

To that end, the researchers defined heat thresholds based on local city definitions, something previous studies have not done. Instead, prior studies have used fixed-temperature thresholds that may be inappropriate for some cities. Afterall, a 90-degree day in Phoenix feels much different than a 90-degree day in New York City, given relative humidity differences.

Its well-known that cities have locally defined thresholds where heat and cold cause mortality and morbidity, Broadbent explained. In other words, people die at different temperatures in different cities because what is extreme in one city may be normal in another.

Importantly, areas of the United States where human exposure would increase the most is where climate change and population increase in tandem. Meanwhile, urban development has a smaller, yet not negligible effect.

According to the results of the study, the largest absolute changes in population heat exposure are projected to occur in major U.S. metropolitan regions, such as New York, Los Angeles and Atlanta.

The study also finds the largest relativechanges in person-hours related to heat exposure are projected to occur in rapidly growing cities located in the Sun Belt, including Austin, Texas; Orlando, Florida; and Atlanta.

The increase in exposure is quite large if you look at it relative to the start of the century, Broadbent said. Some cities across the Sun Belt, according to our projections, will have 90 times the number of person-hours of heat exposure. For example, cities in Texas that see substantial population growth and strong greenhouse gas-induced climate warming could be markedly affected.

One way to prepare for increased heat exposure is to reduce greenhouse gas emissions on a global scale, which would reduce the number of hours people are exposed to extreme temperatures. Other options include localized infrastructure adaptation that provides buffering effects against rising temperatures such as planting trees, providing shade and cooling areas and constructing buildings using materials that absorb less heat.

Although the average temperature in the United States will be warmer in the future, the study finds that cold exposure will increase slightly compared with the start of the century, primarily because of population growth. While there is a generaldecreasein the number of projected extreme cold events by the end of this century, the number of individuals exposed to extreme cold is projected toincrease,as population growth means that the total number of person-hours of cold exposure will go up, Broadbent said.

Cold is currently more of a national health problem than heat, but our results suggest that by the end of the century heat exposure may become a larger health problem than cold exposure, Broadbent said. However, cold exposure will not disappear completely as the climate warms. In fact, according to one of the teams simulations, Denver is projected to have more extreme cold at the end of the century compared with the beginning, according to the study.

Thats the interesting thing about climate change. We know the average temperature is going to increase, said Broadbent. But we know less about how the extremes are going to change, and often the extremes are the most important part of our daily lives.

There are several takeaway messages from this work, but one of the central ones concerns the future resiliency of our cities, Georgescu said.

The successful steps taken will require holistic thinking that embraces contributions from urban planners, engineers, social scientists and climate scientists with a long-range vision of how we want our cities to be.

"We therefore call on cities to start asking some very foundational questions regarding the projected exposure of their constituents to future environmental change," Georgescu said. "Is the work of the urban climate modeling community being integrated into their environmental adaptation plans? If so, how, and if not, why not?

This work was funded by the National Science Foundation.

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ASU engineers get to the heart of organs-on-a-chip - ASU Now

Global Cell Isolation Market Report Promising Growth of CAGR of 17.91% , Analysis of Top companies and their Share, Size and Scope – Scientect

Global Cell Isolation Market is expected to grow at a CAGR of 17.91% from 2020 to 2023 and Cell Isolation Market report explains why and how it is going to achieve this growth. It provides vital information on every parameter which is required for making strategic decisions and development of every business in Cell Isolation industry. It would come handy to understand market situations, top competitors with their focused segments, regions etc.

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About Cell Isolation Market The rise in demand for clinical diagnosis is one of the key factors anticipated to drive the cell isolation market growth during the forecast period. To effectively treat various diseases using genetic engineering tools, early diagnosis is essential. Genetic engineering tools provide diagnostic enzymes such as cholesterol oxidase and xylitol oxidase. These diagnostic enzymes identify specific cells like cells with high levels of cholesterol. When blood levels of these particular enzymes increase significantly, it indicates a probable site for tissue damage, which releases these enzymes in the blood. These enzymes are used in assays using samples of serum or urine. The isolation of these enzymes can provide the required enzymes for clinical diagnosis. Thus, genetic engineering tools are useful, precise, and economical for researchers and healthcare providers to diagnose patients. Research analysts have predicted that the cell isolation market will register a CAGR of almost 19% by 2023.

TheTop Manufacturers/playersincluding:-

Agilent Technologies Inc., Becton Dickinson and Co., Merck KGaA, QIAGEN NV, Thermo Fisher Scientific Inc.

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Market Segment of Cell Isolation Industry:

Market Overview

Competitive Landscape

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Cell Isolation Market Report provides comprehensive analysis of-

Key Summary of Cell Isolation Market Growth Report:

In our market size and forecast determination efforts, in-depth secondary research was initially completed to realize an honest perspective of the market in each region. Extensive primary research was also administered by interviewing key executives from the industry. These interviews helped us to fill-in the info gaps after secondary research. Several secondary sources like encyclopedia, directories, and databases are wont to identify and collect information useful for this extensive techno-commercial study.

Key Questions Answered in ROY Cell Isolation Market Report:

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In the end, the Cell Isolation Market report makes some important proposals for a new project of the Cell Isolation Industry before evaluating its feasibility. Overall, the report provides an in-depth insight of Global Cell Isolation Industry covering all important parameters.

Table of Contents included in Cell Isolation Market ROY Report

PART 01: Executive summary

PART 02: Scope of the report

PART 03: Research Methodology

PART 04: Introduction

PART 05: Market landscape

PART 06: Market segmentation by end-user industry

PART 07: Market segmentation by application

PART 08: Geographical Segmentation

PART 09: A Decision framework

PART 10: Impact of drivers and challengesAnd Many More Parts Covered.

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Global Cell Isolation Market Report Promising Growth of CAGR of 17.91% , Analysis of Top companies and their Share, Size and Scope - Scientect

Researchers find method to regrow cartilage in the joints – Stanford Medical Center Report

Damaged cartilage can be treated through a technique called microfracture, in which tiny holes are drilled in the surface of a joint. The microfracture technique prompts the body to create new tissue in the joint, but the new tissue is not much like cartilage.

Microfracture results in what is called fibrocartilage, which is really more like scar tissue than natural cartilage, said Chan. It covers the bone and is better than nothing, but it doesnt have the bounce and elasticity of natural cartilage, and it tends to degrade relatively quickly.

The most recent research arose, in part, through the work of surgeon Matthew Murphy, PhD, a visiting researcher at Stanford who is now at the University of Manchester. I never felt anyone really understood how microfracture really worked, Murphy said. I realized the only way to understand the process was to look at what stem cells are doing after microfracture. Murphy is the lead author on the paper. Chan and Longaker are co-senior authors.

For a long time, Chan said, people assumed that adult cartilage did not regenerate after injury because the tissue did not have many skeletal stem cells that could be activated. Working in a mouse model, the team documented that microfracture did activate skeletal stem cells. Left to their own devices, however, those activated skeletal stem cells regenerated fibrocartilage in the joint.

But what if the healing process after microfracture could be steered toward development of cartilage and away from fibrocartilage? The researchers knew that as bone develops, cells must first go through a cartilage stage before turning into bone. They had the idea that they might encourage the skeletal stem cells in the joint to start along a path toward becoming bone, but stop the process at the cartilage stage.

The researchers used a powerful molecule called bone morphogenetic protein 2 (BMP2) to initiate bone formation after microfracture, but then stopped the process midway with a molecule that blocked another signaling molecule important in bone formation, called vascular endothelial growth factor (VEGF).

What we ended up with was cartilage that is made of the same sort of cells as natural cartilage with comparable mechanical properties, unlike the fibrocartilage that we usually get, Chan said. It also restored mobility to osteoarthritic mice and significantly reduced their pain.

As a proof of principle that this might also work in humans, the researchers transferred human tissue into mice that were bred to not reject the tissue, and were able to show that human skeletal stem cells could be steered toward bone development but stopped at the cartilage stage.

The next stage of research is to conduct similar experiments in larger animals before starting human clinical trials. Murphy points out that because of the difficulty in working with very small mouse joints, there might be some improvements to the system they could make as they move into relatively larger joints.

The first human clinical trials might be for people who have arthritis in their fingers and toes. We might start with small joints, and if that works we would move up to larger joints like knees, Murphy says. Right now, one of the most common surgeries for arthritis in the fingers is to have the bone at the base of the thumb taken out. In such cases we might try this to save the joint, and if it doesnt work we just take out the bone as we would have anyway. Theres a big potential for improvement, and the downside is that we would be back to where we were before.

Longaker points out that one advantage of their discovery is that the main components of a potential therapy are approved as safe and effective by the FDA. BMP2 has already been approved for helping bone heal, and VEGF inhibitors are already used as anti-cancer therapies, Longaker said. This would help speed the approval of any therapy we develop.

Joint replacement surgery has revolutionized how doctors treat arthritis and is very common: By age 80, 1 in 10 people will have a hip replacement and 1 in 20 will have a knee replaced. But such joint replacement is extremely invasive, has a limited lifespan and is performed only after arthritis hits and patients endure lasting pain. The researchers say they can envision a time when people are able to avoid getting arthritis in the first place by rejuvenating their cartilage in their joints before it is badly degraded.

One idea is to follow a Jiffy Lube model of cartilage replenishment, Longaker said. You dont wait for damage to accumulate you go in periodically and use this technique to boost your articular cartilage before you have a problem.

Longaker is the Deane P. and Louise Mitchell Professor in the School of Medicine and co-director of the Institute for Stem Cell Biology and Regenerative Medicine. Chan is a member of the Institute for Stem Cell Biology and Regenerative Medicine and Stanford Immunology.

Other Stanford scientist taking part in the research were professor of pathology Irving Weissman, MD, the Virginia and D. K. Ludwig Professor in Clinical Investigation in Cancer Research; professor of surgery Stuart B. Goodman, MD, the Robert L. and Mary Ellenburg Professor in Surgery; associate professor of orthopaedic surgery Fan Yang, PhD; professor of surgery Derrick C. Wan, MD; instructor in orthopaedic surgery Xinming Tong, PhD; postdoctoral research fellow Thomas H. Ambrosi, PhD; visiting postdoctoral scholar Liming Zhao, MD; life science research professionals Lauren S. Koepke and Holly Steininger; MD/PhD student Gunsagar S. Gulati, PhD; graduate student Malachia Y. Hoover; former student Owen Marecic; former medical student Yuting Wang, MD; and scanning probe microscopy laboratory manager Marcin P. Walkiewicz, PhD.

The research was supported by the National Institutes of Health (grants R00AG049958, R01 DE027323, R56 DE025597, R01 DE026730, R01 DE021683, R21 DE024230, U01HL099776, U24DE026914, R21 DE019274, NIGMS K08GM109105, NIH R01GM123069 and NIH1R01AR071379), the California Institute for Regenerative Medicine, the Oak Foundation, the Pitch Johnson Fund, the Gunn/Olivier Research Fund, the Stinehart/Reed Foundation, The Siebel Foundation, the Howard Hughes Medical Institute, the German Research Foundation, the PSRF National Endowment, National Center for Research Resources, the Prostate Cancer Research Foundation, the American Federation of Aging Research and the Arthritis National Research Foundation.

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Researchers find method to regrow cartilage in the joints - Stanford Medical Center Report

3D Cell Culture Market 2020 by Application (Cancer Research, Stem Cell Research, Drug Discovery, Regererative Medicine), Top Countries Data with…

3D Biotek

Scope of the 3D Cell Culture Market Report:This report focuses on the 3D Cell Culture in global market, especially in North America, Europe and Asia-Pacific, South America, Middle East and Africa. This report categorizes the market based on manufacturers, regions, type and application.The global 3D cell culture market is relatively concentrated; the sales of top nine manufacturers account about 68.23% of total global Production in 2016. The largest manufacture of 3D cell culture is Thermo Fisher Scientific; its Production is 252.73 K Unit in 2016. The next is Corning and Lonza Group.North America is the largest consumption region of 3D cell culture in 2016. In 2016, the sales of 3D cell culture is about 470 K Unit in North America; its sales proportion of total global sales exceeds 36%.The next is Europe. Asia has a large growth rate of 3D cell culture.Cancer research is currently the most well established application area and accounts for 40.05% of the present 3D culture market. Drug Discovery has also emerged quite popular with 36.25% of the current market share. Stem cells and regenerative medicine together capture a share of 24.08% in the current 3D culture market and would gradually gain focus as the market matures in the field of therapeutics in 2016.The worldwide market for 3D Cell Culture is expected to grow at a CAGR of roughly 13.5% over the next five years, will reach 970 million US$ in 2023, from 510 million US$ in 2020, According to a New Research study.

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Report further studies the market development status and future 3D Cell Culture Market trend across the world. Also, it splits 3D Cell Culture market Segmentation by Type and by Applications to fully and deeply research and reveal market profile and prospects.

Major Classifications are as follows:

Geographically,this report is segmented into severalkey regions, with sales, revenue, market share and growth Rate of 3D Cell Culture in these regions, from 2014 to 2024, covering

This 3D Cell Culture Market Research/Analysis Report Contains Answers to your following Questions

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Major Points from Table of Contents:

1. Market Overview 1.1 3D Cell Culture Introduction 1.2 Market Analysis by Type 1.3 Market Analysis by Applications 1.4 Market Dynamics 1.4.1 Market Opportunities 1.4.2 Market Risk 1.4.3 Market Driving Force

2.Manufacturers Profiles

2.4.1 Business Overview 2.4.2 3D Cell Culture Type and Applications 2.4.2.1 Product A 2.4.2.2 Product B

3.Global 3D Cell Culture Sales, Revenue, Market Share and Competition By Manufacturer (2019-2020)

3.1 Global 3D Cell Culture Sales and Market Share by Manufacturer (2019-2020) 3.2 Global 3D Cell Culture Revenue and Market Share by Manufacturer (2019-2020) 3.3 Market Concentration Rates 3.3.1 Top 3 3D Cell Culture Manufacturer Market Share in 2020 3.3.2 Top 6 3D Cell Culture Manufacturer Market Share in 2020 3.4 Market Competition Trend

4.Global 3D Cell Culture Market Analysis by Regions

4.1 Global 3D Cell Culture Sales, Revenue and Market Share by Regions 4.1.1 Global 3D Cell Culture Sales and Market Share by Regions (2014-2019) 4.1.2 Global 3D Cell Culture Revenue and Market Share by Regions (2014-2019) 4.2 North America 3D Cell Culture Sales and Growth Rate (2014-2019) 4.3 Europe 3D Cell Culture Sales and Growth Rate (2014-2019) 4.4 Asia-Pacific 3D Cell Culture Sales and Growth Rate (2014-2019) 4.6 South America 3D Cell Culture Sales and Growth Rate (2014-2019) 4.6 Middle East and Africa 3D Cell Culture Sales and Growth Rate (2014-2019)

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5.3D Cell Culture Market Forecast (2020-2024) 5.1 Global 3D Cell Culture Sales, Revenue and Growth Rate (2020-2024) 5.2 3D Cell Culture Market Forecast by Regions (2020-2024) 5.3 3D Cell Culture Market Forecast by Type (2020-2024) 5.3.1 Global 3D Cell Culture Sales Forecast by Type (2020-2024) 5.3.2 Global 3D Cell Culture Market Share Forecast by Type (2020-2024) 5.4 3D Cell Culture Market Forecast by Application (2020-2024) 5.4.1 Global 3D Cell Culture Sales Forecast by Application (2020-2024) 5.4.2 Global 3D Cell Culture Market Share Forecast by Application (2020-2024)

6.Sales Channel, Distributors, Traders and Dealers 6.1 Sales Channel 6.1.1 Direct Marketing 6.1.2 Indirect Marketing 6.1.3 Marketing Channel Future Trend 6.2 Distributors, Traders and Dealers

7.Research Findings and Conclusion

8.Appendix 8.1 Methodology 8.2 Data Source

Continued..

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3D Cell Culture Market 2020 by Application (Cancer Research, Stem Cell Research, Drug Discovery, Regererative Medicine), Top Countries Data with...

Researcher John Craig Venter Is Awarded the 2020 Edogawa-NICHE Prize for His Accomplishment in Human Genome Research – Financialbuzz.com

The Edogawa NICHE Prize for the year 2020 has been awarded to Dr. John Craig Venter for his contribution to research and development pertaining to the Human genome. This honor reflects Dr. Venters lifetime accomplishments in the power of the genomics and specifically in the identification of the human genome which has radically transformed healthcare according to Prof. Gary Levy, chair, Edogawa NICHE awards committee (www.edogawanicheprize.org).

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Dr. John Craig Venter, recipient of the 2020 Edogawa NICHE Prize, for his contribution to research and development pertaining to the Human genome. (Photo: Business Wire)

Edogawa NICHE Prize was Instituted in 2018, by the Jinseisha trust, and the Nichi-In Centre for Regenerative Medicine (NCRM), which honours scientists or clinicians whose contributions lead to the development of prevention, diagnosis or treatment of any disease, through an inter-disciplinary approach. Alumni of the Fujio Cup Quiz, a part of NCRM NICHE, (www.ncrmniche.org), have priority for nomination, a unique feature of this prize. Previous awardees include Prof James Till, University of Toronto, Canada for discovery of stem cells (2018) and Dr. Steven Rosenberg, National Institutes of Health, USA for his groundbreaking work on T-lymphocyte immunotherapy (2019).

Dr. Venter was born in Salt Lake City Utah on October 14, 1946. He started his college education at the College of San Mateo, CA and later studied Biochemistry in University of California, San Diego under biochemist Nathan O. Kaplan. After obtaining a PhD in Physiology and Pharmacology from UCSD, he became a Professor at the State University of New York and joined the National Institute of Health in 1984. He has founded Celera Genomics, The Institute of Genomic Research (TIGR), J.Craig Venter Institute (JCVI) and co-founded Human Longevity Inc and Synthetic Genomics.

His path breaking sequencing of the first human genome with the Human Genome Project further progressed to transfecting a cell with a synthetic chromosome, a feat that has opened up opportunities to develop novel solutions not only in healthcare, but also in environmental issues and energy domain.

The awarding of the Edogawa NICHE prize to Dr Venter is the most recent in a string of honors including United States Medal of Science (2008), Gardner Foundation International Award (2002), Paul Erlich and Ludwig Darmstaedter Prize (2001) and the King Faisal International Award of Science (2001). He was listed on Time Magazines list of the most influential people in the world.

The award ceremony date will be announced later.

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Researcher John Craig Venter Is Awarded the 2020 Edogawa-NICHE Prize for His Accomplishment in Human Genome Research - Financialbuzz.com

Stem Cell Market Emerging Trends, Strong Application Scope, Size, Status, Analysis and Forecast to 2026 – AlgosOnline

A concise assortment of data on ' Stem Cell market' is covered in a newly published research added to the repository of Market Study Report, LLC. It offers an exhaustive study targeting current market trends influencing the business across assorted regions. Significant details related to market size, market share, applications, and statistics are put together to convey an ensemble prediction of the industry. The research further focuses on comprehensive competitors analysis in addition to highlighting growth strategies embraced by market leaders.

The research report on Stem Cell market delivers an exhaustive analysis of this business space while offering significant information pertaining to the factors that are affecting the revenue generation as well as the industry growth. The document also comprises of a detailed assessment of the regional scope of the market alongside its regulatory outlook. Additionally, the report provides with a detailed SWOT analysis while elaborating market driving factors.

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Additional information including limitations & challenges faced by new entrants and market players in tandem with their respective impact on the revenue generation of the companies is enumerated. The document scrutinizes the impact of COVID-19 pandemic on growth as well as future remuneration of the market.

From the regional perspective of Stem Cell market:

Emphasizing on the competitive scenario of the Stem Cell market:

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Comprehensive assessment of all opportunities and risks in the Stem Cell market.

This exclusive study addresses key questions for stakeholders in the Stem Cell Market:

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