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Researchers identify environmental components that affect gene expression in cardiovascular disease – The South End

Posted: June 21, 2020 at 11:43 pm

A research team led by Francesca Luca, Ph.D., associate professor of Wayne State Universitys Center for Molecular Medicine and Genetics, has published a study that annotated environmental components that can increase or decrease disease risk through changes in gene expression in 43 genes that could exacerbate or buffer the genetic risk for cardiovascular disease. Their results highlight the importance of evaluating genetic risk in the context of gene-environment interactions to improve precision medicine.

Interpreting Coronary Artery Disease Risk Through GeneEnvironment Interactions in Gene Regulation was published in Genetics, the journal of the Genetics Society of America.

The study, said Dr. Luca, also of the WSU Department of Obstetrics and Gynecology, illustrates that combining genome-wide molecular data with large-scale population-based studies is a powerful approach to investigate how genes and the environment interact to influence risk of cardiovascular disease.

By identifying regions of DNA important for endothelial cell response to different common environmental exposures, the researchers discovered that caffeine can influence the risk of cardiovascular disease. The study demonstrates the potentially beneficial and/or detrimental effects of certain environmental exposures on the cardiovascular disease risk differ depending on individual DNA sequence.

The study focused on cardiovascular disease, Dr. Luca said, because it is the leading cause of death, both in the United States and worldwide. Also, the disease is highly multifactorial, with large contributions from both environmental and genetic risk factors. By treating endothelial cells under a controlled environment, we can discover how these genetic and environmental risk factors influence each other at the molecular level, she said. Our lab has developed expertise in cardiovascular research, with additional projects using endothelial cells to develop new assays to test the regulatory activity of genetic variants. The approach outlined in this paper can be applied to many different diseases; for example, our lab has also focused on how bacteria in the human gut affect gene expression in the colon, and also on the effect of psychosocial stress on asthma.

While the work identified regions of the genome important for how endothelial cells respond to the environment and can influence the risk of cardiovascular disease, the researchers do not yet know exactly which genetic variants are directly responsible. A former graduate student, Cynthia Kalita, developed an assay to test thousands of genetic variants for gene regulatory activity. The researchers can test the variants discovered in their study using that assay to validate and explore the mechanisms by which they exert their effects, Dr. Luca said. They also are developing computational/statistical methods that can yield better personalized risk scores.

We have extended our approach to study cardiomyocytes, which are the muscle cells of the heart. Healthy heart tissue is difficult to obtain, so we have collaborated with researchers at the University of Chicago to derive cardiomyocytes from stem cells, Dr. Luca said. This will allow us to shift our focus from the vasculature to the heart itself, where we can study diseases like cardiomyopathies and arrhythmias.

As the cost of DNA sequencing continues to decrease, Dr. Luca expects that genetic testing will play a greater role in preventive health care. To fully realize the potential of precision medicine, we need to consider both genetic and environmental risk factors of disease, and how they interact. While there are already direct-to-consumer tests that prescribe an individualized diet based on DNA, these products currently offer no demonstrated clinical value. However, with very large numbers of individuals for whom we have both DNA sequencing and information on diet and lifestyle, we may one day be able to offer better recommendations.

Others involved in the study included Anthony Findley, an M.D./Ph.D. student; Allison Richards, Ph.D., a research scientist; Cristiano Petrini, of the Center for Molecular Medicine and Genetics; Adnan Alazizi, lab manager; Elizabeth Doman, of the Center for Molecular Medicine and Genetics; Alexander Shanku, Ph.D., research scientist; Gordon Davis, of the Center for Molecular Medicine and Genetics; Nancy Hauff, Department of Obstetrics and Gynecology; Yoram Sorokin, M.D., professor of Obstetrics and Gynecology; Xiaoquan Wen, of the Department of Biostatistics at the University of Michigan; and Roger Pique-Regi, Ph.D., associate professor of the Center for Molecular Medicine and Genetics, and of the Department of Obstetrics and Gynecology.

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Surrozen reloads with $50M for final dash to the clinic, shines some light on lead Wnt-modulating candidates – Endpoints News

Posted: June 20, 2020 at 6:49 pm

Two rounds totalling $83 million have propelled Surrozen through preclinical proof-of-concept, culminating in two antibody candidates modulating the Wnt pathway for tissue regeneration. Now, the South San Francisco biotech is topping up $50 million to complete the sprint to the clinic.

One of the two IND candidates targets liver disease while the other will be initially positioned for inflammatory bowel disease. With the cash infusion, Surrozen can also pursue more discovery projects in different tissues and areas.

Our goal is to file IND applications in 2021 and 2022, CEO Craig Parker said in a statement, 5 and 6 years after the company first set out to catch and push a second wave of regenerative medicine.

Christopher Garcia and Roeland Nusse, two Stanford professors, provided some of the scientific legs for the company. Aside from its role in cancer, Wnt a portmanteau integrating Wingless and Int-1 signaling is also key to the control of cell development and regeneration, but the instability means they are hard to manufacture. As Nusse elucidated crucial aspects of Wnt biology, Garcia inspired the idea to activate or enhance response to endogenous Wnts, through either bispecific or antibody-based molecules.

While it has long been known that the Wnt signaling pathway plays a crucial role in the maintenance and self-renewal of stem cells in a variety of tissues, scientists had been unable to overcome the technical challenges inherent in developing a therapeutic based on Wnt signaling, Nusse, the Virginia and Daniel K. Ludwig Professor of Cancer Research and Professor of Developmental Biology, said. I am hopeful that Surrozens approach to modulating the Wnt pathway, with the flexibility to address insufficient endogenous Wnt or insufficient receptors, may someday lead to therapeutics that have the potential to repair damaged tissue.

Claudia Janda, a postdoc at Garcias lab whos since moved on to the Princess Mxima Center for Pediatric Oncology, remains a scientific advisor alongside Princess Mxima director Hans Clevers and Stanfords Calvin Kuo.

Both tech platforms were represented in the lead nominated candidates.

SZN-043 was designed on SWEETS, or Surrozen Wnt signal enhancers engineered for tissue specificity. Through stabilizing the Frizzled receptors that Wnt proteins signal through, the compound was shown to stimulate hepatocyte proliferation in the liver and reduce fibrosis something that should be helpful in conditions like severe acute alcoholic hepatitis or even cirrhosis.

The possibilities are almost endless, with Surrozen spelling out potential applications in NASH and decompensated liver disease.

SZN-1326, meanwhile, was born out of SWAP (Surrozen Wnt signal activating proteins). The molecule binds to Frizzled receptors directly and should stimulate regeneration of intestinal epithelial cells. Researchers also noted anti-inflammatory effects in animal models.

It is still a ways from human data. But old investors are returning to take that leap with Surrozen, including The Column Group, Hartford Healthcare Trust and Horizons Ventures. Euclidian Capital and three other new believers are jumping on board.

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African farmers yearn for biotechnology in the face of climate change – Alliance for Science

Posted: June 20, 2020 at 6:46 pm

Southern Africa is on the receiving end of the devastating impact of climate change, driving millions into hunger.

A record 45 million people mostly women and children in the 16-nation Southern African Development Community are gravely food insecure following repeated drought, widespread flooding and economic disarray, according to the WFP.

Countries like Zambia have been the hardest hit, with 2.3 million people affected as a result of the drought experienced during the 2018/19 growing season. Recently, some parts of the country experienced extensive flooding, which submerged agricultural land.

The magnitude of the problem in this part of the world has reached unprecedented levels, creating a threat to peace, security and stability. At the centre of this catastrophe are the small-scale farmers.

Small-scale farmers in this part of the world are critical because they grow food for household consumption, as well generate income for their local communities.

It is against this backdrop that agricultural biotechnology is gaining support from researchers and small-scale farmers who are struggling to recover from floods and droughts. The most significant advantages of genetically modified (GM) crops to small-scale farmers include environmental protection,boosting food production andsustaining rural livelihoods.

In a telephone interview, Sunday Chileya, a smal-lscale farmer based in the northern part of Zambia, expressed worry over food security as a result of the floods that have wiped out his entire field.

I dont know how I am going to feed my family because everything that I planted has gone, Chileya said.

Chileya, who has some basic knowledge of agricultural biotechnology, said the adoption of the technology was the only solution, owing to recurring floods and droughts that have led to crop failure.

I have an idea of what agricultural biotechnology is and the benefits, so why not promote it to help farmers like me? he asked.

Chileya pointed out that there is need to promote the adoption of the technology if small-scale farmers like him are to continue surviving

The climate keeps changing and so should our ways of farming so that we can survive the effects of climate change, Chileya said.

Experts such as Dr. Kalaluka Munyinda, a University of Zambia (UNZA) lecturer and researcher, say agricultural biotechnology is a significant technology that will help small-scale farmers who have been adversely affected by climate change.

Agricultural biotechnology is safe, he said. We are now experiencing extreme events when it comes to the weather and we can use this technology to develop crop varieties that will withstand any weather pattern.

In order to adapt to and mitigate the devastating impact of climate change, there is a need to encourage the use of agricultural biotechnology, Munyinda said.

We are now experiencing situations where pests and diseases are appearing whether its warm or cold and they are spreading rapidly, Munyinda said.

He emphasized that agricultural biotechnology has significant advantages, contrary to the fears that have been created around the technology.

You see as result of using this technology the use of pesticides harmful to our environment is reduced, Munyinda said, noting that other biotech crops will reduce the use of nitrogen fertilizers that contribute to a rise in greenhouse gases.

He reiterated that small-scale farmers are on the receiving hand of climate change.

Small-scale farmers feed us, he said, adding that 90 percent of the maize we consume is grown by small-scale farmers. So if they get affected we wont eat.

He said the Department of Crop Science at the University of Zambia has been working on maize, finger millet, cowpea and beans using biotechnology and he is hopeful that these will benefit small-scale farmers.

Benedict Tembo, an environmental reporter and editor at the Zambia Daily Mail, said agricultural biotechnology has benefits, contrary to the conspiracies peddled by certain groups with unknown agendas.

Fears that agricultural biotechnology is harmful are totally unfounded, he said. Right now, our region is facing the brunt of climate change and there is need to utilize technology that will help our farmers.

Tembo pointed out that Zambia and some other African countries are missing out on an opportunity to introduce pest-resistant Bt cotton, for example, to fight the pests and diseases that are prevalent in Zambia and other countries across the continent.

Agricultural biotechnology increases productivity, which means small-scale farmers will be able to take care of their families and strengthen their financial capacity, he said.

Tembocalled on journalists, who are on the frontlines in disseminating information to people, to report accurately on the benefits of agricultural biotechnology.

An enlightened journalist is an asset to society, which looks up to him/her for the provision of quality, accurate and timely information on the demystification of myths around biotechnology, he said.

Image: Shutterstock

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Nanoparticles in Biotechnology and Pharmaceuticals Market 2020 Key Players, Share, Trend, Segmentation and Forecast to 2026 – Cole of Duty

Posted: June 20, 2020 at 6:46 pm

New Jersey, United States,- The report is a must-have for business strategists, participants, consultants, researchers, investors, entrepreneurs, and other interested parties associated with the Nanoparticles in Biotechnology and Pharmaceuticals Market. It is also a highly useful resource for those looking to foray into the Nanoparticles in Biotechnology and Pharmaceuticals market. Besides Porters Five Forces and SWOT analysis, it offers detailed value chain assessment, comprehensive study on market dynamics including drivers, restraints, and opportunities, recent trends, and industry performance analysis. Furthermore, it digs deep into critical aspects of key subjects such as market competition, regional growth, and market segmentation so that readers could gain sound understanding of the Nanoparticles in Biotechnology and Pharmaceuticals market.

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Nanoparticles in Biotechnology and Pharmaceuticals Market Segmentation

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

Nanoparticles in Biotechnology and Pharmaceuticals Market by Type:

YYYY

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Nanoparticles in Biotechnology and Pharmaceuticals Market by Region:

North America (The USA, Canada, and Mexico)Europe (Germany, France, the UK, and Rest of Europe)Asia Pacific (China, Japan, India, and Rest of Asia Pacific)Latin America (Brazil and Rest of Latin America.)Middle East &Africa (Saudi Arabia, the UAE, South Africa, and Rest of Middle East & Africa)

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Market Overview: This section comes under executive summary and is divided into four sub-sections. It basically introduces the Nanoparticles in Biotechnology and Pharmaceuticals market while focusing on market size by revenue and production, market segments by type, application, and region, and product scope.

Competition by Manufacturers: It includes five sub-sections, viz. market competitive situation and trends, manufacturers products, areas served, and production sites, average price by manufacturers, revenue share by manufacturers, and production share by manufacturers.

Market Share by Region: It provides regional market shares by production and revenue besides giving details about gross margin, price, and other factors related to the growth of regional markets studied in the report. The review period considered here is 2015-2019.

Company Profiles: Each player is assessed for its market growth in terms of different factors such as markets served, gross margin, price, revenue, production, product specification, and areas served.

Manufacturing Cost Analysis: It is sub-divided into four chapters, viz. industrial chain analysis, manufacturing process analysis, manufacturing cost structure, and key raw materials analysis.

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Agricultural Biotechnology Market Analysis and In-depth Research on Forecast 2018-2025 – 3rd Watch News

Posted: June 20, 2020 at 6:46 pm

Global Agricultural Biotechnology Market Research Report 20182025 is a historical overview and in-depth study on the current & future market of the Agricultural Biotechnology industry. The report represents a basic overview of the market status, competitor segment with a basic introduction of key vendors, top regions, product types and end industries. This report gives a historical overview of the market trends, growth, revenue, capacity, cost structure, and key drivers analysis.

The report is an exhaustive analysis of this market across the world. It offers an overview of the market including its definition, applications, key drivers, key market players, key segments, and manufacturing technology. In addition, the study presents statistical data on the status of the market and hence is a valuable source of guidance for companies and individuals interested in the industry. Additionally, detailed insights on the company profile, product specifications, capacity, production value, and market shares for key vendors are presented in the report.

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The total market is further segmented based on company, country, and application/type for competitive landscape analysis. On the contrary, information on industry chain structure, emerging applications, and technological developments in the market makes the report a must-read document.

The report reveals detailed information about the global key players as well as some small players of the Agricultural Biotechnology sector.

Target Audience of the Global Agricultural Biotechnology Market in Market Study:Key Consulting Companies & AdvisorsLarge, medium-sized, and small enterprisesVenture capitalistsValue-Added Resellers (VARs)Third-party knowledge providersInvestment bankersInvestors

These insights help determine the strength of competition and take the necessary steps to obtain a leading position in the Agricultural Biotechnology industry.

Additionally, the research provides a detailed analysis of the key segments of the market with the help of charts and tables. An overview of each market segment such as type, application, and region are also provided in the report. These insights help in understanding the global trends in the Agricultural Biotechnology industry and form strategies to be implemented in the future.

The regional analysis of global Agricultural Biotechnology market is considered for the key regions such as Asia Pacific, North America, Europe, Latin America and Rest of the World. North America is the leading/significant region across the world in terms of market share owing to the high disposable income coupled with rising trend of interior designing in the region. Whereas, Asia-Pacific is also anticipated to exhibit highest growth rate / CAGR over the forecast period 20182025

Our analysis involves the study of the market taking into consideration the impact of the COVID-19 pandemic. Please get in touch with us to get your hands on exhaustive coverage of the impact of the current situation on the market. Our expert team of analysts will provide as per report customized to your requirement. For more connect with us at [emailprotected] or call toll free: +1-800-910-6452

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Key Market Segments

The key players profiled in this report includeBayer AG, Dowdupont Inc., Syngenta AG, BASF SE, Adama Agricultural Solutions Ltd., Certis USA LLC, Evogene Ltd., KWS SAAT SE, Monsanto Company, Vilmorin & CIE, and so on.

The objective of the study is to define market sizes of different segments & countries in recent years and to forecast the values to the coming eight years. The report is designed to incorporate both qualitative and quantitative aspects of the industry within each of the regions and countries involved in the study.

Furthermore, the report also caters the detailed information about the crucial aspects such as driving factors & challenges which will define the future growth of the market. Additionally, the report shall also incorporate available opportunities in micro markets for stakeholders to invest along with the detailed analysis of competitive landscape and product offerings of key players.

The study clearly reveals that the Agricultural Biotechnology industry has attained remarkable growth since 20182025. This research report is prepared based on an in-depth analysis of the market by experts. As a final point, stakeholders, investors, product managers, marketing executives, and other professionals seeking unbiased data on supply, demand, and future forecasts would find the report valuable.

Table of Contents

Chapter 1. Global Agricultural Biotechnology Market Definition and ScopeChapter 2. Research MethodologyChapter 3. Executive SummaryChapter 4. Global Agricultural Biotechnology Market DynamicsChapter 5. Agricultural Biotechnology Market, by ComponentChapter 6. Global Agricultural Biotechnology Market, by ServicesChapter 7. Global Agricultural Biotechnology Market, by Organization SizeChapter 8. Agricultural Biotechnology Market, by VerticalChapter 9. Agricultural Biotechnology Market, by Regional AnalysisChapter 10. Competitive Intelligence

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Food Biotechnology Market to Witness Growth Acceleration During 2020-2026 – Cole of Duty

Posted: June 20, 2020 at 6:46 pm

Global Food Delivery Logistic Market Report provides complete industry analysis, market outlook, size, growth, opportunities and forecast 2026. This report will assist in analyzing the current and future business trends, sales and revenue forecast. It provides top manufacturers information along with Manufacturing Cost Analysis, Industrial Chain, Sourcing Strategy and growth.

The new Food Delivery Logistic market research report provides an in-depth analysis of this business space, thereby summarizing all the segments of the industry. The report offers crucial insights regarding the total earnings of major players operating in the industry. Furthermore, vital information pertaining to the regional terrain and competitive landscape are presented in the report.

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Emphasizing on the major aspects of the Food Delivery Logistic market report:

Comprehensive assessment of the geographical scenario of Food Delivery Logistic market:

Highlighting the competitive terrain of Food Delivery Logistic market:

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Other takeaways from the Food Delivery Logistic market research report:

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Some of the Major Highlights of TOC covers:

Chapter 1: Methodology & Scope

Definition and forecast parameters

Methodology and forecast parameters

Data Sources

Chapter 2: Executive Summary

Business trends

Regional trends

Product trends

End-use trends

Chapter 3: Food Delivery Logistic Industry Insights

Industry segmentation

Industry landscape

Vendor matrix

Technological and innovation landscape

Chapter 4: Food Delivery Logistic Market, By Region

Chapter 5: Company Profile

Business Overview

Financial Data

Product Landscape

Strategic Outlook

SWOT Analysis

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Media, Sera And Reagents In Biotechnology Market Insights on Trends, Application, Types and Users Analysis COVID-19 2023 – 3rd Watch News

Posted: June 20, 2020 at 6:46 pm

The global market formedia, sera and reagents in biotechnologyshould reach $5.5 billion by 2023 from $4.1 billion in 2018 at a compound annual growth rate (CAGR) of 6.0% for the period 2018-2023.

Report Scope:

Cell culture products are used from the point of drug discovery through the process of drug development. Cell culture products are used mainly for research purposes, for production of biopharmaceuticals, and for educational purposes. This report focuses on the global market for media, sera and reagent products used in the cell culture industry and discusses the applications in various arenas of biomedical and life science research. The report addresses the whole market for cell culture including the research segment, production segment, contract segment, and others segment, which includes the in vitro diagnostics and educational sector.

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The scope of the study is worldwide. Current market dynamics, market drivers, restraints, trends, regulatory issues, and strategic developments are discussed in the report. In the regional analysis, the report identifies and analyzes market size and forecasts for the U.S., Europe and emerging markets. The emerging markets for media, sera and reagents in biotechnology include India, China, Japan, Korea, Taiwan, Canada, Africa, Australia, New Zealand, and other countries.

Also included in the report are relevant patent analyses and comprehensive profiles of companies that lead the market for media, sera and reagents in the cell culture industry. A few prominent players in this industry are Thermo Fisher Scientific, Merck KGaA, GE Healthcare Life Sciences, BD Biosciences, and Corning Inc.

Report Includes:

An overview of the global markets and technologies for media, sera and reagents used in biotechnology. Analyses of global market trends, with data from 2015 and 2016, and projections of compound annual growth rates (CAGRs) through 2021. Information on different types of cell cultures and products from cell culture technology as well as the advantages and disadvantages for the use of various types of media. Detailed analysis of the cell culture industrys structure. Discussion covering the applications of cell culture technology with an emphasis on usage in the research, production, and contract segments. Profiles of major players in the media, sera, and reagents industry.

Report Summary

In the past decade, there has been a significant shift in the nature of the products being manufactured and sold by biotechnology companies. Innovative products are coming to market that help to increase the growth and differentiation of cells in in vitro conditions. Launch of innovative cell culture products and growing demand for biopharmaceuticals reflect increased use of cell culture products.

The global biopharmaceutical portfolio of today is a sign of increased therapeutic competition and expansion in a number of targeted therapies. These trends have given rise to highly specific manufacturing requirements, including cell culture media, sera and reagents. The fundamental shift in the pharmaceutical industry from small-molecule or chemical-based drugs towards biotherapeutics and a focus on consistently improving the efficiency and effectiveness of production are spurring an evolution in cell culture technology that is needed to support advanced biopharmaceutical manufacturing. Development of cell culture products, especially serum-free and animal-component-free media, has improved manufacturing processes by conferring many advantages.

The global market for cell culture products is driven by increased demand for biologics including biosimilars; by use of cell-based methods for vaccine production; and by use of cell lines for new drug developments. Ever-increasing demand for biopharmaceuticals has forced manufacturers to move toward contract manufacturing and research organizations, which will help the cell culture market to grow further during the forecast period of 2016 to 2021.

This report analyzes the market under three main segments: sera, media and reagents. All three categories are witnessing growth because of increased demand for biopharmaceuticals and research activities in the field of regenerative medicine. Use of mammalian cells to increase capacity, scalability and flexibility in vaccine production is an additional factor for the growth of the cell culture product market. Major companies operating in the cell culture market include BD Biosciences, Lonza Group, Sigma-Aldrich Corp. (a part of Merck KGaA), and Thermo Fisher Scientific Inc.

Innovation in biotechnology is interrelated with research and development (R&D) discoveries. As the biopharmaceutical portfolio continues to evolve, the manufacturing technologies and superior cell culture products offered by companies such as Sartorius Stedim Biotech SA, EMD Millipore (a part of Merck KGaA), and others will continue to advance in the coming years.

In 2015, the U.S. was the largest market for cell culture products, accounting for about 42.1% of the global market. The U.S. has one of the most supportive environments for the development and commercialization of new drugs, as it is the worlds largest free-pricing market for pharmaceuticals and has high per capita incomes. A large elderly population and high rates of chronic diseases and affordability are other factors that make the U.S. suitable for the development and consumption of drugs. Support from the government for medical research, an unparalleled scientific and research base, and an innovative biotechnology sector are the major factors that make the U.S. market the preferred home for growth in the healthcare industry, which also includes biotechnology.

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Assistant Professor in Biotechnology job with DUBLIN CITY UNIVERSITY | 210110 – Times Higher Education (THE)

Posted: June 20, 2020 at 6:46 pm

School of Biotechnology

Dublin City University

Dublin City University http://www.dcu.ie is a research-intensive, globally-engaged, dynamic institution that is distinguished both by the quality and impact of its graduates and by its focus on the translation of knowledge into societal and economic benefit. Through its mission to transform lives and societies through education, research and innovation, DCU acts as an agent of social, cultural and economic progress. DCU is Irelands fastest growing university, and now hosts more than 17,000 students across its three academic campuses: DCU Glasnevin Campus, DCU St Patricks Campus and DCU All Hallows campus.

School of Biotechnology

The School of Biotechnology is the academic unit leading life science and biotechnology education and research within the Faculty of Science & Health at Dublin City University (DCU). The school delivers both undergraduate B.Sc and taught M.Sc. postgraduate degree programmes in addition to the education and training of research M.Sc. and Ph.D students under its structured Ph.D programme BioTranslate. It is an active centre of basic, applied and multi-disciplinary research, supporting a defined cluster of intersecting research themes which link closely with the Schools teaching programmes. The School and associated research centres (including the National Institute for Cellular Biotechnology (NICB nicb.ie) and the Water Institute (dcuwater.ie)) offer core facilities and technical support in the areas of Molecular Biology, Bioinformatics, Cell Characterisation, Proteomics, Bioprocessing, Sensor, Analytical Separations and membrane technology. Research projects fall into the general categories of Life Science or Industry-associated with activity in the domains of Health/Ageing/Disease, Biodesign, Environmental Science and Precision Health. They bring together a critical mass of multidisciplinary researchers that are strategically positioned to pursue national and international opportunities for research and innovation. The excellence of the schools research is reflected by funding success from many national and international sources (including direct funds from industry) and the quality of its published and other outputs.

Role Profile

The School is seeking to recruit an Assistant Professor in Biotechnology. The post holder will be expected to contribute to teaching, curriculum development, research, and administrative activities in the School, across all levels. The post holder will also be expected to contribute directly to degree programmes through research-led teaching, student mentoring and supervision of student projects.

Duties and Responsibilities

The duties and responsibilities of this post falls within DCUs Academic Development and Promotions Framework and the principles of the Schools Academic Workload Model with activity across the domains of teaching and learning, research and scholarship, and service and contribution. They are in line with DCUs strategic plan Talent, Discovery and Transformation: 2017-2022.

Teaching and Learning

This post will support the delivery of the Education mission of the University; specifically the delivery of the Schools two core undergraduate programmes, namely the B.Sc in Biotechnology and B.Sc in Genetics & Cell Biology and its substantial contribution to the B.Sc in Analytical Science and B.Sc. in Environmental Science & Technology, in addition to its two taught Masters programmes: M.Sc in Bioprocess Engineering and M.Sc in Diagnostics & Precision Medicine plus our service teaching to support other degree programmes. The School is committed to a flexible mode of module delivery across all of its programmes and the successful candidate(s) will be expected to develop on-line components to their assigned teaching modules. Teaching duties also include the design, supervision and delivery of undergraduate/postgraduate student projects.

Research and Scholarship

In addition to a demonstrable teaching ability, the post holder will be expected to have an independent research profile and the ability to secure grant awards from national/international agencies and/or industry to fund their research activities which would include the recruitment of both postgraduate students and postdoctoral research fellows; contribute to existing School/Centre and DCU-wide research initiatives and expand their network within DCU, nationally and internationally.

Service and Contribution to University

The post holder will be required to undertake administrative roles related to the activities of the School of Biotechnology and the Faculty of Science & Health as assigned by the Head of School. These roles may include but are not limited to the following: Programme Chair; School Executive member; Convenor roles (teaching, research or international), Faculty Management board, Marketing, Safety Committee, Open Days, Conference organisation, Work Placement Tutoring. Participation in courses provided by the University designed to develop skills in such areas as teaching, management and safety will also be expected.

Candidate Requirements

Mandatory Training

The post holder will be required to undertake the following mandatory compliance training: GDPR, Orientation, and Compliance.

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Assistant Professor in Biotechnology job with DUBLIN CITY UNIVERSITY | 210110 - Times Higher Education (THE)

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How Gene Therapy Market: Impact Of COVID-19 On Biotechnology Industry Sangamo Therapeutics, Vineti, Solid Biosciences – Medic Insider

Posted: June 20, 2020 at 6:46 pm

Latest market study on Global Gene Therapy Market Forecast to 2027 Covid-19 Impact and Global Analysis By Cell Type (Somatic Gene Therapy, Germline Gene Therapy); By Application (Genetic Disorder, Cancer, Neurological Disorder, and Others).The research report provides deep insights into the global market revenue, parent market trends, macro-economic indicators, and governing factors, along with market attractiveness per market segment. The report provides an overview of the growth rate of the Gene Therapy market during the forecast period, i.e., 20202027. Most importantly, the report further identifies the qualitative impact of various market factors on market segments and geographies. The research segments the market on the basis of product type, application, technology, and region. To offer more clarity regarding the industry, the report takes a closer look at the current status of various factors including but not limited to supply chain management, niche markets, distribution channel, trade, supply, and demand and production capability across different countries.

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Gene therapy is the introduction of DNA into a patient to treat a genetic disease or a disorder. The newly inserted DNA contains a correcting gene to correct the effects of a disease, causing mutations. Gene therapy is a promising treatment for genetic diseases and also includes cystic fibrosis and muscular dystrophy. Gene therapy is a suitable treatment for infectious diseases, inherited disease and cancer.

The growth of the gene therapy market is regulated due to various reason which includes the rapid involvement of synthetically modified gene to treat various diseases, it helps in designing the personalized medicine, rise in the research and development of the gene therapy among the others. The gene therapy requires less doses of medicines and is one time treatment, this factor is likely to show growth opportunity for gene therapy market in coming near future.

Some of the key players profiled in the study areSangamo Therapeutics, Inc., bluebird bio, Inc., uniQure N.V., AveXis, Inc., Vineti, Solid Biosciences., Spark Therapeutics, Inc., CHIMERON BIO, RENOVA THERAPEUTICS, HORAMA S.A., etc.

The research provides answers to the following key questions:

The Covid-19 (coronavirus) pandemic is impacting society and the overall economy across the world. The impact of this pandemic is growing day by day as well as affecting the supply chain. The COVID-19 crisis is creating uncertainty in the stock market, massive slowing of supply chain, falling business confidence, and increasing panic among the customer segments. The overall effect of the pandemic is impacting the production process of several industries including Medical Device, Pharmaceutical, Healthcare and many more. Trade barriers are further restraining the demand- supply outlook. As government of different regions have already announced total lockdown and temporarily shutdown of industries, the overall production process being adversely affected; thus, hinder the overall Gene Therapy Market globally. This report on Gene Therapy Market provides the analysis on impact on Covid-19 on various business segments and country markets. The report also showcase market trends and forecast to 2027, factoring the impact of Covid -19 Situation.

The report profiles the key players in the industry, along with a detailed analysis of their individual positions against the global landscape. The study conducts SWOT analysis to evaluate strengths and weaknesses of the key players in the Gene Therapy market. The researcher provides an extensive analysis of the Gene Therapy market size, share, trends, overall earnings, gross revenue, and profit margin to accurately draw a forecast and provide expert insights to investors to keep them updated with the trends in the market.

Competitive scenario:

The study assesses factors such as segmentation, description, and applications of Gene Therapy industries. It derives accurate insights to give a holistic view of the dynamic features of the business, including shares, profit generation, thereby directing focus on the critical aspects of the business.

Scope of the Report

The research on the Gene Therapy market focuses on mining out valuable data on investment pockets, growth opportunities, and major market vendors to help clients understand their competitors methodologies. The research also segments the Gene Therapy market on the basis of end user, product type, application, and demography for the forecast period 20212027. Comprehensive analysis of critical aspects such as impacting factors and competitive landscape are showcased with the help of vital resources, such as charts, tables, and infographics.

Gene Therapy Market Segmented by Region/Country: North America, Europe, Asia Pacific, Middle East & Africa, and Central & South America

Major highlights of the report:

All-inclusive evaluation of the parent market

Evolution of significant market aspects

Industry-wide investigation of market segments

Assessment of market value and volume in past, present, and forecast years

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Tactical approaches of market leaders

Lucrative strategies to help companies strengthen their position in the market

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Team Builds the First Living Robots – University of Vermont

Posted: June 20, 2020 at 2:50 am

A book is made of wood. But it is not a tree. The dead cells have been repurposed to serve another need.

Now a team of scientists has repurposed living cellsscraped from frog embryosand assembled them into entirely new life-forms. These millimeter-wide "xenobots" can move toward a target, perhaps pick up a payload (like a medicine that needs to be carried to a specific place inside a patient)and heal themselves after being cut.

"These are novel living machines," saysJoshua Bongard, a computer scientist and robotics expert at the University of Vermont who co-led the new research. "They're neither a traditional robot nor a known species of animal. It's a new class of artifact: a living, programmable organism."

The new creatures were designed on a supercomputer at UVMand then assembled and tested by biologists at Tufts University. "We can imagine many useful applications of these living robots that other machines can't do," says co-leader Michael Levin who directs theCenter for Regenerative and Developmental Biologyat Tufts, "like searching out nasty compounds or radioactive contamination, gathering microplastic in the oceans, traveling in arteries to scrape out plaque."

The results of the new research were published January 13 in theProceedings of the National Academy of Sciences.

Bespoke living systems

People have been manipulating organisms for human benefit since at least the dawn of agriculture, genetic editing is becoming widespread, and a few artificial organisms have been manually assembled in the past few yearscopying the body forms of known animals.

But this research, for the first time ever, "designs completely biological machines from the ground up," the team writes in their new study.

With months of processing time on the Deep Green supercomputer cluster at UVM'sVermont Advanced Computing Core, the teamincluding lead author and doctoral student Sam Kriegmanused an evolutionary algorithm to create thousands of candidate designs for the new life-forms. Attempting to achieve a task assigned by the scientistslike locomotion in one directionthe computer would, over and over, reassemble a few hundred simulated cells into myriad forms and body shapes. As the programs randriven by basic rules about the biophysics of what single frog skin and cardiac cells can dothe more successful simulated organisms were kept and refined, while failed designs were tossed out. After a hundred independent runs of the algorithm, the most promising designs were selected for testing.

Then the team at Tufts, led by Levin and with key work by microsurgeon Douglas Blackistontransferred the in silico designs into life. First they gathered stem cells, harvested from the embryos of African frogs, the speciesXenopus laevis. (Hence the name "xenobots.") These were separated into single cells and left to incubate. Then, using tiny forceps and an even tinier electrode, the cells were cut and joined under a microscope into a close approximation of the designs specified by the computer.

Assembled into body forms never seen in nature, the cells began to work together. The skin cells formed a more passive architecture, while the once-random contractions of heart muscle cells were put to work creating ordered forward motion as guided by the computer's design, and aided by spontaneous self-organizing patternsallowing the robots to move on their own.

These reconfigurable organisms were shown to be able move in a coherent fashionand explore their watery environment for days or weeks, powered by embryonic energy stores. Turned over, however, they failed, like beetles flipped on their backs.

Later tests showed that groups of xenobots would move around in circles, pushing pellets into a central locationspontaneously and collectively. Others were built with a hole through the center to reduce drag. In simulated versions of these, the scientists were able to repurpose this hole as a pouch to successfully carry an object. "It's a step toward using computer-designed organisms for intelligent drug delivery," says Bongard, a professor in UVM'sDepartment of Computer ScienceandComplex Systems Center.

A manufactured quadruped organism, 650-750 microns in diametera bit smaller than a pinhead. (Credit: Douglas Blackiston, Tufts University.)

Living technologies

Many technologies are made of steel, concrete or plastic. That can make them strong or flexible. But they also can create ecological and human health problems, like the growing scourge of plastic pollution in the oceans and the toxicity of many synthetic materials and electronics. "The downside of living tissue is that it's weak and it degrades," say Bongard. "That's why we use steel. But organisms have 4.5 billion years of practice at regenerating themselves and going on for decades." And when they stop workingdeaththey usually fall apart harmlessly. "These xenobots are fully biodegradable," say Bongard, "when they're done with their job after seven days, they're just dead skin cells."

Your laptop is a powerful technology. But try cutting it in half. Doesn't work so well. In the new experiments, the scientists cut the xenobots and watched what happened. "We sliced the robot almost in half and it stitches itself back up and keeps going," says Bongard. "And this is something you can't do with typical machines."

University of Vermont professor Josh Bongard. (Photo: Joshua Brown)

Cracking the Code

Both Levin and Bongard say the potential of what they've been learning about how cells communicate and connect extends deep into both computational science and our understanding of life. "The big question in biology is to understand the algorithms that determine form and function," says Levin. "The genome encodes proteins, but transformative applications await our discovery of how that hardware enables cells to cooperate toward making functional anatomies under very different conditions."

To make an organism develop and function, there is a lot of information sharing and cooperationorganic computationgoing on in and between cells all the time, not just within neurons. These emergent and geometric properties are shaped by bioelectric, biochemical, and biomechanical processes, "that run on DNA-specified hardware," Levin says, "and these processes are reconfigurable, enabling novel living forms."

The scientists see the work presented in their newPNASstudy"A scalable pipeline for designing reconfigurable organisms,"as one step in applying insights about this bioelectric code to both biology and computer science. "What actually determines the anatomy towards which cells cooperate?" Levin asks. "You look at the cells we've been building our xenobots with, and, genomically, they're frogs. It's 100% frog DNAbut these are not frogs. Then you ask, well, what else are these cells capable of building?"

"As we've shown, these frog cells can be coaxed to make interesting living forms that are completely different from what their default anatomy would be," says Levin. He and the other scientists in the UVM and Tufts teamwith support from DARPA's Lifelong Learning Machines program and the National Science Foundationbelieve that building the xenobots is a small step toward cracking what he calls the "morphogenetic code," providing a deeper view of the overall way organisms are organizedand how they compute and store information based on their histories and environment.

Future Shocks

Many people worry about the implications of rapid technological change and complex biological manipulations. "That fear is not unreasonable," Levin says. "When we start to mess around with complex systems that we don't understand, we're going to get unintended consequences." A lot of complex systems, like an ant colony, begin with a simple unitan antfrom which it would be impossible to predict the shape of their colony or how they can build bridges over water with their interlinked bodies.

"If humanity is going to survive into the future, we need to better understand how complex properties, somehow, emerge from simple rules," says Levin. Much of science is focused on "controlling the low-level rules. We also need to understand the high-level rules," he says. "If you wanted an anthill with two chimneys instead of one, how do you modify the ants? We'd have no idea."

"I think it's an absolute necessity for society going forward to get a better handle on systems where the outcome is very complex," Levin says. "A first step towards doing that is to explore: how do living systems decide what an overall behavior should be and how do we manipulate the pieces to get the behaviors we want?"

In other words, "this study is a direct contribution to getting a handle on what people are afraid of, which is unintended consequences," Levin sayswhether in the rapid arrival of self-driving cars, changing gene drives to wipe out whole lineages of viruses, or the many other complex and autonomous systems that will increasingly shape the human experience.

"There's all of this innate creativity in life," says UVM's Josh Bongard. "We want to understand that more deeplyand how we can direct and push it toward new forms."

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