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Archive for the ‘Biotechnology’ Category

Is Summit Therapeutics Inc (SMMT) The Right Choice in Biotechnology? – InvestorsObserver

Sunday, February 14th, 2021

A rating of 76 puts Summit Therapeutics Inc (SMMT) near the top of the Biotechnology industry according to InvestorsObserver. Summit Therapeutics Inc's score of 76 means it scores higher than 76% of stocks in the industry. Summit Therapeutics Inc also received an overall rating of 64, putting it above 64% of all stocks. Biotechnology is ranked 18 out of the 148 industries.

Trying to find the best stocks can be a daunting task. There are a wide variety of ways to analyze stocks in order to determine which ones are performing the strongest. Investors Observer makes the entire process easier by using percentile rankings that allows you to easily find the stocks who have the strongest evaluations by analysts.

Our proprietary scoring system captures technical factors, fundamental analysis and the opinions of analysts on Wall Street. This makes InvestorsObservers overall rating a great way to get started, regardless of your investing style. Percentile-ranked scores are also easy to understand. A score of 100 is the top and a 0 is the bottom. Theres no need to try to remember what is good for a bunch of complicated ratios, just pay attention to which numbers are the highest.

Summit Therapeutics Inc (SMMT) stock is trading at $8.75 as of 2:56 PM on Wednesday, Feb 10, a decline of -$0.60, or -6.42% from the previous closing price of $9.35. The stock has traded between $8.50 and $10.41 so far today. Volume today is more active than usual. So far 440,384 shares have traded compared to average volume of 244,979 shares.

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Is Bio-Path Holdings Inc (BPTH) a Winner in the Biotechnology Industry? – InvestorsObserver

Sunday, February 14th, 2021

Bio-Path Holdings Inc (BPTH) is near the top in its industry group according to InvestorsObserver. BPTH gets an overall rating of 68. That means it scores higher than 68 percent of stocks. Bio-Path Holdings Inc gets a 83 rank in the Biotechnology industry. Biotechnology is number 15 out of 148 industries.

Finding the best stocks can be tricky. It isnt easy to compare companies across industries. Even companies that have relatively similar businesses can be tricky to compare sometimes. InvestorsObservers tools allow a top-down approach that lets you pick a metric, find the top sector and industry and then find the top stocks in that sector.

This ranking system incorporates numerous factors used by analysts to compare stocks in greater detail. This allows you to find the best stocks available in any industry with relative ease. These percentile-ranked scores using both fundamental and technical analysis give investors an easy way to view the attractiveness of specific stocks. Stocks with the highest scores have the best evaluations by analysts working on Wall Street.

Bio-Path Holdings Inc (BPTH) stock is trading at $8.90 as of 1:23 PM on Thursday, Feb 11, a loss of -$2.87, or -24.38% from the previous closing price of $11.77. The stock has traded between $8.60 and $11.48 so far today. Volume today is 2,787,467 compared to average volume of 3,445,362.

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Is Celsion Corporation (CLSN) a Winner in the Biotechnology Industry? – InvestorsObserver

Sunday, February 14th, 2021

The 66 rating InvestorsObserver gives to Celsion Corporation (CLSN) stock puts it near the top of the Biotechnology industry. In addition to scoring higher than 78 percent of stocks in the Biotechnology industry, CLSNs 66 overall rating means the stock scores better than 66 percent of all stocks.

Analyzing stocks can be hard. There are tons of numbers and ratios, and it can be hard to remember what they all mean and what counts as good for a given value. InvestorsObserver ranks stocks on eight different metrics. We percentile rank most of our scores to make it easy for investors to understand. A score of 66 means the stock is more attractive than 66 percent of stocks.

This ranking system incorporates numerous factors used by analysts to compare stocks in greater detail. This allows you to find the best stocks available in any industry with relative ease. These percentile-ranked scores using both fundamental and technical analysis give investors an easy way to view the attractiveness of specific stocks. Stocks with the highest scores have the best evaluations by analysts working on Wall Street.

Celsion Corporation (CLSN) stock is trading at $2.83 as of 9:58 AM on Thursday, Feb 11, an increase of $0.88, or 44.87% from the previous closing price of $1.95. The stock has traded between $2.56 and $3.48 so far today. Volume today is more active than usual. So far 42,653,017 shares have traded compared to average volume of 17,258,583 shares.

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Is AgeX Therapeutics Inc (AGE) The Right Choice in Biotechnology? – InvestorsObserver

Sunday, February 14th, 2021

AgeX Therapeutics Inc (AGE) is near the middle in its industry group according to InvestorsObserver. AGE gets an overall rating of 56. That means it scores higher than 56 percent of stocks. AgeX Therapeutics Inc gets a 59 rank in the Biotechnology industry. Biotechnology is number 18 out of 148 industries.

Analyzing stocks can be hard. There are tons of numbers and ratios, and it can be hard to remember what they all mean and what counts as good for a given value. InvestorsObserver ranks stocks on eight different metrics. We percentile rank most of our scores to make it easy for investors to understand. A score of 56 means the stock is more attractive than 56 percent of stocks.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

AgeX Therapeutics Inc (AGE) stock is trading at $2.46 as of 1:47 PM on Tuesday, Feb 9, a loss of -$0.22, or -8.21% from the previous closing price of $2.68. The stock has traded between $2.39 and $2.57 so far today. Volume today is more active than usual. So far 430,476 shares have traded compared to average volume of 299,401 shares.

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Application of Biotechnology Market Emerging Trends and Prospects 2028 with Leading Vendors: Gilead, Celgene, Abbott, Novo Nordisk A/S,Novartis AG,…

Sunday, February 14th, 2021

The applications of biotechnology include therapeutics, diagnostics, and genetically modified crops for agriculture, processed food, bioremediation, waste treatment, and energy production.

Biotechnology is widely used in different fields such as medicine, agriculture, food processing, etc. to produce useful products for human benefits.

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Top Companies of Application of Biotechnology Market:

Gilead, Celgene, Abbott, Novo Nordisk A/S,Novartis AG, Sanofi Aventis, and Lonza

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The Application of Biotechnology Market report includes the statistics about the systematic approaches, which needs to follow for booming industries. It consists of different ways to analyze, seek, and shed light on new opportunities. This report consists of the estimated data about the drivers, restraints, and opportunities that can help to drive the flow of the businesses.

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This report focuses on the important pillars of the businesses such as drivers, restraints and opportunities that either grow or obstruct the market. The Application of Biotechnology market research report includes an in-depth assessment of the global market. In addition to this, it covers the selling approaches of the industries to enlarge the businesses in the forthcoming years. It summarizes on the well-developed framework of the market to accomplish the risk factors obstacles that stand in front of the businesses. Report Consultant has concluded its statistical report by promoting the economic growth in the upcoming year 2021 to 2028.

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Report Consultant is a prime destination for your business aptitude and analytical solutions because we provide qualitative and quantitative sources of information that are proficient to give one-stop solutions. We skillfully syndicate qualitative and quantitative research in exact proportions to have the best report, which not only gives the most recent insights but also assists you to grow.

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CytoImmune Therapeutics and Biosimilar Sciences US to Move Biotechnology Operations to Puerto Rico – JD Supra

Sunday, February 14th, 2021

With the support of the economic development organization Invest Puerto Rico, Biosimilar Solutions LLC announced that both it and CytoImmune Therapeutics will be establishing operations on the island to conduct biologics and cell therapy research and development.

According to the press release, CytoImmune will relocate to Toa Baja and plans to invest $28 million in the facility, which will be developing and marketing novel cancer immunotherapy products. CytoImmune currently develops proprietary Chimeric Antigen Receptor engineered t cells (CAR-T) technology, as well as an approach for human natural killer cell immunotherapy. Biosimilar Sciences will establish its new facility in Aguadilla, and plans $200 million of investment in machinery and equipment to develop a series of biosimilar products including a COVID-19 vaccine.

This announcement is a clear indication thatPuerto Ricosbusiness ecosystem is primed to support bioscience innovation, manufacturing, and distribution on a global scale. It also shows that this sector is crucial to the Islands path to economic transformation since biotechnology start-ups can provide hundreds of jobs upon a successful FDA approval. We proudly welcome CytoImmune and Biosimilar toPuerto Ricoand reiterate our commitment to helping them ensure success and a healthy ROI, saidRodrick Miller, CEO of InvestPR. Puerto Rico currently has over 100 FDA approved pharmaceutical and bioscience plants, and is the U.S.s largest pharmaceutical manufacturing region.

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Biotechnology Market 2021: Report Aims to Outline and Forecast, Organization Sizes, Top Vendors Overview, Growth Factors, Industry Opportunity and End…

Sunday, February 14th, 2021

The global biotechnology market estimated to grow at a CAGR of 10.5% during the forecast period from 2018 to 2025. The market for biotechnology was valued at USD 218,012.1 Mn in 2017 and is estimated to reach US$ 471,336.4 Mn by 2025.

Download Sample Copy of This Report @ https://www.theinsightpartners.com/sample/TIPHE100001316/

The global biotechnology market is segmented on the basis of technology and application and geography. On the basis of technology, the biotechnology market is segmented into DNA sequencing, fermentation, cell based assay, nanobiotechnology, chromatography, PCR technology, tissue engineering and regeneration and others. On the basis of application, the biotechnology market is segmented into industrial/bio processing, bioinformatics, food & agriculture, health, natural resource & environment and others.

The biotechnology market is aimed to describe, define and estimate the forecast for market size of the biotechnology till 2025. The report strategically analyzes macro and micro-markets to entail the major factors impacting the growth of the global biotechnology market. The market report for biotechnology is appropriate to cater the needs and demands of various stakeholders that include pharmaceutical, biotechnology and medical companies in the form of research services.

The major players operating in the biotechnology market include Thermo Fisher Scientific Inc., Merck KGaA, PerkinElmer, Inc., Agilent Technologies, Inc., F. Hoffmann-La Roche Ltd., Danaher, QIAGEN, BD, Bio-Rad Laboratories, Inc., Illumina, Inc. and among others. The global biotechnology market is highly competitive and driven by large number of novel product launches and approvals. For instance, in April 2017, Illumina, Inc. introduced BaseSpace Informatics Suite, used to accelerate genomic data analysis for sequence lab.

Research study is a highly acclaimed resource that investors, market contestants, and other people interested in this Biotechnology report can use to intensely position themselves in the global Biotechnology market. It mentions the recent developments structures, future growth plans, and other significant aspects of the business key participants that define their growth in the global Biotechnology market.

Biotechnology Market Important Factors:

Biotechnology Industry research report is a meticulous investigation of the current scenario of the Biotechnology global and regional market, which covers several industry dynamics. The Biotechnology market research report is a resource, which provides current as well as upcoming technical and financial details with market risk, growing demand and raw materials. The thorough analysis in this report enables investors, CEOs, regional traders, suppliers, top vendors to understand the market in a better way and based on that knowledge make well-informed decisions.

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The Insight Partners is a one stop industry research provider of actionable intelligence. We help our clients in getting solutions to their research requirements through our syndicated and consulting research services. We are a specialist in Technology, Healthcare, Manufacturing, Automotive and Defence.

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Is Veru Inc (VERU) The Right Choice in Biotechnology? – InvestorsObserver

Sunday, February 14th, 2021

The 78 rating InvestorsObserver gives to Veru Inc (VERU) stock puts it near the top of the Biotechnology industry. In addition to scoring higher than 91 percent of stocks in the Biotechnology industry, VERUs 78 overall rating means the stock scores better than 78 percent of all stocks.

Finding the best stocks can be tricky. It isnt easy to compare companies across industries. Even companies that have relatively similar businesses can be tricky to compare sometimes. InvestorsObservers tools allow a top-down approach that lets you pick a metric, find the top sector and industry and then find the top stocks in that sector.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

Veru Inc (VERU) stock is higher by 24.21% while the S&P 500 has fallen -0.31% as of 9:59 AM on Tuesday, Feb 9. VERU is higher by $3.37 from the previous closing price of $13.92 on volume of 3,707,074 shares. Over the past year the S&P 500 is higher by 16.45% while VERU is higher by 319.66%. VERU lost -$0.28 per share the over the last 12 months.

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Covid-19 impact on Biotechnology Reagents Market Key Vendors, Regional Analysis and Competitive Landscape Forecast by 2026| Promega Corporation,…

Sunday, February 14th, 2021

Toronto, Canada: Global Biotechnology Reagents Market research report offers extensive research and analysis of key aspects of the global Biotechnology Reagents industry. Report provides holistic analysis of the market allowing companies to take decisions according to the changing market trends. It contains market overview providing basic understanding about what the market is. This market is fragmented into various segments, such as type, applications, end-users, and distribution channel. Furthermore, report contains competitive analysis and provide company profiling of key players involved in market. This provide deeper understanding of the competitive landscape and its future scenarios, crucial dynamics, and leading segments of the global Biotechnology Reagents market. In addition, report includes regional analysis and market dynamics. For instance, report involves detailed analysis about the factors responsible for the growth of market along with factors that can hamper the growth of market.

Get Free PDF Sample Copy of this Report to understand the structure of the complete report: (Including Full TOC, List of Tables & Figures, Chart) https://www.supplydemandmarketresearch.com/home/contact/1559597?ref=Sample-and-Brochure&toccode=SDMRHE1559597

Global Biotechnology Reagents Market 2020 By Technology [Analytical Reagents, Life Sciences Reagents and others],By Applications [DNA & RNA Analysis, Gene Expression, Drug Testing and Protein Synthesis & Purification]: Global Forecast to 2026 and COVID-19 Impact OutlookGlobal Biotechnology Reagents Market is valued at 88.02 USD Billion in 2019 and expected to reach USD 223.02 Billion by 2026 with the CAGR of 14.21% over the forecast period.

Scope of the reportThis report analyses the global market for Biotechnology Reagents. The report will enable the user to understand and gain insights into the current and forecast market situation. The market is comprehensively analyzed by geography to give complete information on the global scenario. The qualitative and quantitative data provided in this study can help user understand which market segments, regions are expected to grow at higher rates, factors affecting the market and key opportunity areas. The report also includes competitive landscape of

Segmentation by Type:

o Analytical Reagentso Life Sciences Reagents

Segmentation by Application:

o DNA & RNA Analysiso Gene Expressiono Drug Testingo Protein Synthesis & Purification

Grab Best Discount on Biotechnology Reagents Market Research Report [Single User | Multi User | Corporate Users] @ https://www.supplydemandmarketresearch.com/home/contact/1559597?ref=Discount&toccode=SDMRHE1559597

Table of Contents

Report Overview: It includes six chapters, viz. research scope, major manufacturers covered, market segments by type, Biotechnology Reagents market segments by application, study objectives, and years considered.

Global Growth Trends: There are three chapters included in this section, i.e. industry trends, the growth rate of key producers, and production analysis.

Biotechnology Reagents Market Share by Manufacturer: Here, production, revenue, and price analysis by the manufacturer are included along with other chapters such as expansion plans and merger and acquisition, products offered by key manufacturers, and areas served and headquarters distribution.

Market Size by Type: It includes analysis of price, production value market share, and production market share by type.

Market Size by Application: This section includes Biotechnology Reagents market consumption analysis by application.

Profiles of Manufacturers:Here, leading players of the global Biotechnology Reagents market are studied based on sales area, key products, gross margin, revenue, price, and production.

Biotechnology Reagents Market Value Chain and Sales Channel Analysis: It includes customer, distributor, Biotechnology Reagents market value chain, and sales channel analysis.

Market Forecast: Production Side: In this part of the report, the authors have focused on production and production value forecast, key producers forecast, and production and production value forecast by type.

Contact Us: Charles Lee302-20 Misssisauga, Valley, Missisauga,L5A 3S1, Toronto, Canada Phone Number: +1-276-477-5910Email- info@supplydemandmarketresearch.com

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Is Entera Bio Ltd (ENTX) a Winner in the Biotechnology Industry? – InvestorsObserver

Sunday, February 14th, 2021

The 61 rating InvestorsObserver gives to Entera Bio Ltd (ENTX) stock puts it near the top of the Biotechnology industry. In addition to scoring higher than 69 percent of stocks in the Biotechnology industry, ENTXs 61 overall rating means the stock scores better than 61 percent of all stocks.

Trying to find the best stocks can be a daunting task. There are a wide variety of ways to analyze stocks in order to determine which ones are performing the strongest. Investors Observer makes the entire process easier by using percentile rankings that allows you to easily find the stocks who have the strongest evaluations by analysts.

These scores are not only easy to understand, but it is easy to compare stocks to each other. You can find the best stock in an industry, or look for the sector that has the highest average score. The overall score is a combination of technical and fundamental factors that serves as a good starting point when analyzing a stock. Traders and investors with different goals may have different goals and will want to consider other factors than just the headline number before making any investment decisions.

Entera Bio Ltd (ENTX) stock is trading at $1.90 as of 1:11 PM on Wednesday, Feb 10, a decline of -$0.03, or -1.55% from the previous closing price of $1.93. The stock has traded between $1.82 and $2.09 so far today. Volume today is 475,843 compared to average volume of 604,868.

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Where Does Polarityte Inc (PTE) Stock Fall in the Biotechnology Field? – InvestorsObserver

Sunday, February 14th, 2021

A rating of 33 puts Polarityte Inc (PTE) near the middle of the Biotechnology industry according to InvestorsObserver. Polarityte Inc's score of 33 means it scores higher than 33% of stocks in the industry. Polarityte Inc also received an overall rating of 39, putting it above 39% of all stocks. Biotechnology is ranked 23 out of the 148 industries.

Analyzing stocks can be hard. There are tons of numbers and ratios, and it can be hard to remember what they all mean and what counts as good for a given value. InvestorsObserver ranks stocks on eight different metrics. We percentile rank most of our scores to make it easy for investors to understand. A score of 39 means the stock is more attractive than 39 percent of stocks.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

Polarityte Inc (PTE) stock is trading at $1.27 as of 1:29 PM on Monday, Feb 8, a gain of $0.12, or 9.91% from the previous closing price of $1.16. The stock has traded between $1.19 and $1.32 so far today. Volume today is 9,264,669 compared to average volume of 12,177,284.

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Is it Time to Dump Puma Biotechnology Inc (PBYI) Stock After it Is Higher By 12.02% in a Week? – InvestorsObserver

Sunday, February 14th, 2021

Puma Biotechnology Inc (PBYI) stock has gained 12.02% over the past week and gets a Bullish rating from InvestorsObserver's Sentiment Indicator.

When making investment decisions, sentiment gives a good overview of what stocks investors currently favor. Sentiment incorporates short-term technical analysis into its score and does not encompass any fundamental analysis such as profitability of the company. This means that earnings updates and other news can greatly impact overall sentiment.

Sentiment is how investors, or the market, feels about a stock. There are lots of ways to measure sentiment. At the core, sentiment is pretty easy to understand. If a stock is going up, investors must be bullish, while if it is going down, sentiment is bearish.

InvestorsObservers Sentiment Indicator looks at price trends over the past week and also considers changes in volume. Increasing volume can mean a trend is getting stronger, while decreasing volume can mean a trend is nearing a conclusion.

For stocks that have options, our system also considers the balance between calls, which are often bets that the price will go up, and puts, which are frequently bets that the price will fall.

Puma Biotechnology Inc (PBYI) stock is trading at $13.70 as of 2:45 PM on Tuesday, Feb 9, a rise of $0.77, or 5.96% from the previous closing price of $12.93. The stock has traded between $12.97 and $13.99 so far today. Volume today is 434,254 compared to average volume of 410,577.

To see InvestorsObserver's Sentiment Score for Puma Biotechnology Inc click here.

Puma Biotechnology is a biotechnology company focused on developing novel therapeutics for the treatment of cancer. Puma licenses the commercial rights to its current drug candidates. The company expects to augment its product pipeline by acquiring, through license or otherwise, additional drug candidates for research and development and potential commercialization. In evaluating potential drug candidates, Puma employs disciplined decision criteria favoring drug candidates that have undergone at least some clinical study.

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Where Does Outlook Therapeutics Inc (OTLK) Stock Fall in the Biotechnology Field? – InvestorsObserver

Sunday, February 14th, 2021

The 94 rating InvestorsObserver gives to Outlook Therapeutics Inc (OTLK) stock puts it near the top of the Biotechnology industry. In addition to scoring higher than 100 percent of stocks in the Biotechnology industry, OTLKs 94 overall rating means the stock scores better than 94 percent of all stocks.

Analyzing stocks can be hard. There are tons of numbers and ratios, and it can be hard to remember what they all mean and what counts as good for a given value. InvestorsObserver ranks stocks on eight different metrics. We percentile rank most of our scores to make it easy for investors to understand. A score of 94 means the stock is more attractive than 94 percent of stocks.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

Outlook Therapeutics Inc (OTLK) stock is trading at $2.60 as of 1:23 PM on Thursday, Feb 11, a drop of -$0.16, or -5.98% from the previous closing price of $2.76. The stock has traded between $2.42 and $2.85 so far today. Volume today is 7,334,312 compared to average volume of 7,690,891.

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Biotechnology | Encyclopedia.com

Thursday, February 4th, 2021

Biotechnology is a set of techniques by which human beings modify living things or use them as tools. In its modern form, biotechnology uses the techniques of molecular biology to understand and manipulate the basic building blocks of living things. The earliest biotechnology, however, was the selective breeding of plants and animals to improve their food value. This was followed in time by the use of yeast to make bread, wine, and beer. These early forms of biotechnology began about ten thousand years ago and lie at the basis of human cultural evolution from small bands of hunter-gatherers to large, settled communities, cities, and nations, giving rise, in turn, to writing and other technologies. It is doubtful that, at the outset, the first biotechnologists understood the effects of their actions, and so the reason for their persistence in pursuing, for example, selective breeding over the hundreds of generations necessary to show much advantage in food value, remains something of a mystery.

The world's historic religions emerged within the context of agriculture and primitive biotechnology, and as one might expect they are at home in that context, for instance through their affirmation of agricultural festivals. In addition, Christianity took the view that nature itself has a history, according to which, nature originally was a perfectly ordered garden, but as a result of human refusal to live within limits, nature was cursed or disordered by its creator. The curse makes nature at once historic, disordered, both friendly and hostile to human life, and open to improvement through human work. These effects fall especially on human agriculture and childbirth, both of which are focal areas of biotechnology.

By the time of Charles Darwin (18091882), plant and animal breeders were deliberate and highly successful in applying techniques of selective breeding to achieve specific, intended results. Darwin's theory of evolution is built in part on his observation of the ability of animal breeders to modify species. The work of human breeders helped Darwin see that species are variable, dynamic, and subject to change. Inspired by the success of intentional selective breeding, Darwin proposed his theory of natural selection, by which nature unintentionally acts something like a human breeder. Nature, however, uses environmental selection, which favors certain individuals over others in breeding. The theory of natural selection, of course, led to a profound shift in human consciousness about the fluidity of life, which in turn fueled modern biotechnology and its view that life may be improved. While Christianity struggled with other implications of Darwinism, it did not object to the prospect that human beings can modify nature, perhaps even human nature.

In the twentieth century, as biologists refined Darwin's proposal and explored its relationship to genetics, plant breeders such as Luther Burbank (18491926) and Norman Borlaug (1914) took selective breeding to new levels of success, significantly increasing the quality and quantity of basic food crops. But it was the late twentieth-century breakthroughs in molecular biology and genetic engineering that established the technological basis for modern biotechnology. The discovery that units of hereditary information, or genes, reside in cells in a long molecule called deoxyribonucleic acid (or DNA) led to an understanding of the structure of DNA and the technology to manipulate it. Biotechnology is no longer limited to the genes found in nature or to those that could be moved within a species by breeding. Bioengineers can move genes from one species to another, from bacteria to human beings, and they can modify them within organisms.

The discovery in 1953 of the structure of DNA by Francis Crick (b. 1916) and James Watson (b. 1928) is but one key step in the story of molecular biology. Within two decades, this discovery opened the pathway to the knowledge of the socalled genetic alphabet or code of chemical bases that carry genetic information, an understanding of the relationship between that code and the proteins that result from it, and the ability to modify these structures and processes (genetic engineering). The decade of the 1980s saw the first transgenic mammals, which are mammals engineered to carry a gene from other species and to transmit it to their offspring, as well as important advances in the ability to multiply copies of DNA (polymerase chain reaction or PCR). The Human Genome Project, an international effort begun around 1990 to detail the entire DNA information contained in human cells, sparked the development of bioinfomatics, the use of powerful computers to acquire, store, share, and sort genetic information. As a result, not only is a standard human DNA sequence fully known (published in February 2001), but it is now possible to determine the detailed code in any DNA strand quickly and cheaply, a development likely to have wide applications in medicine and beyond.

Biotechnology is also dependent upon embryology and reproductive technology, a set of techniques by which animal reproduction is assisted or modified. These techniques were developed largely for agricultural purposes and include artificial insemination, in vitro fertilization, and other ways of manipulating embryos or the gametes that produce them. In 1978, the first in vitro human being was born, and new techniques are being added to what reproductive clinics can do to help women achieve pregnancy. These developments have been opposed by many Orthodox Christian and Roman Catholic theologians, by the Vatican, and by some Protestants, notably Paul Ramsey. Other faith traditions have generally accepted these technologies. In addition, some feminist scholars have criticized reproductive medicine as meeting the desires of men at the expense of women and their health.

Reproductive medicine, however it may be assessed on its own merits, does raise new concerns when it is joined with other forms of biotechnology, such as genetic testing and genetic engineering. In the 1990s, in vitro fertilization was joined with genetic testing, allowing physicians to work with couples at risk for a genetic disease by offering them the option of conceiving multiple embryos, screening them for disease before implantation, and implanting only those that were not likely to develop the disease. This technique, known as preimplantation diagnosis, is accepted as helpful by many Muslim, Jewish, and Protestant theologians, but is rejected by Orthodox Christians and in official Catholic statements. The ground for this objection is that the human embryo must be shown the respect due human life, all the more so because it is weak and vulnerable. It is permissible to treat the embryo as a patient, but not to harm it or discard it in order to treat infertility or to benefit another. The usual counterargument is to reject the view that the embryo should be respected as a human life or a person.

Developments in cloning and in the science and technology of stem cells offer additional tools for biotechnology. In popular understanding, cloning is usually seen as a technique of reproduction, and of course it does have that potential. The birth of Dolly, the cloned sheep, announced in 1997, was a surprising achievement that suggests that any mammal, including human beings, can be created from a cell taken from a previously existing individual. Many who accept reproductive technology generally, including such techniques as in vitro fertilization, found themselves opposing human reproductive cloning, but they are not sure how to distinguish between the two in religiously or morally compelling ways. With few exceptions, however, religious institutions and leaders from all faith traditions have opposed human reproductive cloning, if only because the issues of safety seem insurmountable for the foreseeable future. At the same time, almost no one has addressed the religious or moral implications of the use of reproductive cloning for mammals other than human beings, although it has been suggested that it would not be wise or appropriate to use the technique to produce large herds of livestock for food because of the risk of a pathogen destroying the entire herd.

The technique used to create Dollythe transfer of the nuclear DNA from an adult cell to an egg, thereby creating an embryo and starting it through its own developmental processcan serve purposes other than reproduction, and it is these other uses that are especially interesting to biotechnology. Of particular interest is the joining of the nuclear transfer technique with the use of embryonic stem cells to treat human disease. In 1998, researchers announced success in deriving human embryonic stem cells from donated embryos. These cells show promise for treating many diseases. Once derived, they seem to be capable of being cultured indefinitely, dividing and doubling in number about every thirty hours. As of 2002, researchers have some confidence that these cells can be implanted in the human body at the site of disease or injury, where they can proliferate and develop further, and thereby take up the function of cells that were destroyed or impaired.

Stem cells, of course, can be derived from sources other than the embryo, and research is underway to discover the promise of stem cells derived from alternative sources. There are two advantages in using these other sources. First, no embryos are destroyed in deriving these cells. For anyone who sets a high standard of protection for the human embryo, the destruction of the embryo calls into question the morality of any use of embryonic stem cells. Second, the use of stem cells from sources other than an embryo may mean that in time, medical researchers will learn how to derive healing cells from the patient's own body. The advantage here is that these cells, when implanted, will not be rejected by the patient's immune system. Embryonic stem cells, which may have advantages in terms of their developmental plasticity, are decidedly problematic because of the immune response.

One way to eliminate the immune response is to use nuclear transfer to create an embryo for the patient, harvesting stem cells from that embryo (thereby destroying it) and implanting these cells in the patient. Because they bear the patient's DNA, they should not be rejected. This approach is medically complicated, however, and involves the morally problematic step of creating an embryo to be destroyed for the benefit of another.

As a result of the developments in the underlying science and technologies, biotechnology is able to modify any form of life in ways that seem to be limited only by the imagination or the market. Biotechnology has produced genetically modified microorganisms for purposes ranging from toxic waste clean-up to the production of medicine. For example, by inserting a human gene into a bacterium that is grown in bulk, biotechnology is able to create a living factory of organisms that have been engineered to make a specific human protein. Such technologies may also be used to enhance the virulence of organisms, to create weapons for bioterrorism, or to look for means of defense against such weapons. Aside from obvious concerns about weapons development, religious institutions and scholars have not objected to these uses of biotechnology, although some Protestant groups question the need for patents, especially when sought for specific genes.

Plants, perhaps the first organisms modified by the earliest biotechnology, remain the subject of intense efforts. Around the year 2000, major advances were made in plant genome research, leading to the possibility that the full gene system of some plant species can be studied in detail, and the ways in which plants respond to their environment may be understood as never before. Some attention is given to plants for pharmaceutical purposes, but the primary interest of biotechnology in plants is to improve their value and efficiency as sources of food. For instance, attempts have been made to increase the protein value of plants like rice. The dependence of farm plants on fertilizer and pesticides may also be reduced using biotechnology to engineer plants that, for instance, are resistant to certain insects.

In the 1990s, the expanding use of genetically modified plants in agriculture was met with growing concerns about their effects on health and on the environment. Adding proteins to plants by altering their genes might cause health problems for at least some who consume the plants, perhaps through rare allergic reactions. Genes that produce proteins harmful to some insects may cause harm to other organisms, and they might even jump from the modified farm plant to wild plants growing nearby. Furthermore, some believe that consumers have a right to avoid food that is altered by modern biotechnology, and so strict segregation and labeling must be required. Deeply held values about food and, to some extent, its religious significance underlie many of these concerns. In Europe and the United Kingdom, where public opposition to genetically modified food has been strong, some churches have objected to excessive reliance upon biotechnology in food production and have supported the right of consumers to choose, while at the same time recognizing that biotechnology can increase the amount and the value of food available to the world's neediest people.

Animals are also modified by biotechnology, and this raises additional concerns for animal welfare. Usually the purpose of the modification is related to human health. Biotechnologists may, for example, create animals that produce pharmaceuticals that are expressed, for instance, in milk, or they may create animal research models that mimic human disease. These modifications usually involve a change in the animal germlinethat is, they are transmissible to future generations and they affect every cell in the body. Such animals may be patented, at least in some countries. All this raises concern about what some see as the commodification of life, the creation of unnecessary suffering for the animals, and a reductionistic attitude toward nature that sees animals as nothing but raw materials that may be reshaped according to human interest.

It is the human applications of biotechnology, however, that elicit the most thorough and intense religious responses. As of 2002, genetic technologies are used to screen for a wide range of genetic conditions, but treatments for these diseases are slow to develop. Screening and testing of pregnancies, newborns, and adults have become widespread in medicine, and the resulting knowledge is used to plan for and sometimes prevent the development of disease, or to terminate a pregnancy in order to prevent the birth of an infant with foreseeable health problems. Some religious bodies, especially Roman Catholic and Orthodox Christian, vigorously criticize this use of genetic testing. One particular use of prenatal testingto identify the sex of the unborn and to abort femalesis thought to be widespread in cultures that put a high priority on having sons, even though it is universally criticized. It is believed that the uses of testing will grow, while the technologies to treat disease will lag behind.

Attempts at treatment lie along two general pathways: pharmaceuticals and gene therapy. Biotechnology offers new insight into the fundamental processes of disease, either by the creation of animal models or by insight into the functions of human cells. With this understanding, researchers are able to design pharmaceutical products with precise knowledge of their molecular and cellular effects, with greater awareness of which patients will benefit, and with fewer side effects. This is leading to a revolution in pharmaceutical products and is proving to be effective in treating a range of diseases, including cancer, but at rapidly increasing costs and amidst growing concerns about access to these benefits, especially in the poorest nations.

Gene therapy, begun in human beings in 1990, tries to treat disease by modifying the genes that affect its development. Originally the idea was to treat the classic genetic diseases, such as Tay Sachs or cystic fibrosis, and it is expected that in time this technique will offer some help in treating these diseases. But gene therapy will probably find far wider use in treating other diseases not usually seen as genetic because researchers have learned how genes play a role in the body's response to every disease. Modifying this response may be a pathway to novel therapies, by which the body treats itself from the molecular level. For instance, it has been shown that modified genes can trigger the regeneration of blood vessels around the heart. In time these approaches will probably be joined with stem cell techniques and with other cell technologies, giving medicine a range of new methods for modifying the body in order to regenerate cells and tissues.

Religious opinion has generally supported gene therapy, seeing it as essentially an extension of traditional therapies. At the same time, both religious scholars and bioethicists have begun to debate the prospect that these technologies will be used not just to treat disease but to modify traits, such as athletic or mental ability, that have nothing to do with disease, perhaps to enhance these traits for competitive reasons. Many accept the idea of therapy but reject enhancement, believing that there is a significant difference between the two goals. Many scholars, however, are skeptical about whether an unambiguous distinction can be drawn, much less enforced, between therapy and enhancement. Starting down the pathway of gene therapy may mean that human genetic enhancement is likely to follow. This prospect raises religious concerns that people who can afford to do so will acquire genetic advantages that will lead to further privilege, or that people will use these technologies to accommodate rather than challenge social prejudices.

It is also expected that these techniques will be joined with reproductive technologies, opening the prospect that future generations of humans can be modified. The prospect of such germline modification is greeted with fear and opposition by many, usually for reasons that suggest religious themes. In Europe, germline modification is generally rejected as a violation of the human rights of future generations, specifically the right to be born with a genome unaffected by technology. In the United States, the opposition is less adamant but deeply apprehensive about issues of safety and about the long-term societal impact of what are popularly called "designer babies." Religious bodies have supported these concerns and have called either for total opposition or careful deliberation.

How far biotechnology can go is limited by the complexities of life processes, in particular in the subtleties of interaction between DNA and the environment. Biotechnology itself helps researchers discover these subtleties, and as much as biotechnology depends upon the sciences of biology and genetics, it must be noted that the influence between technology and science is reciprocal. The Human Genome Project, for instance, opened important new questions about human evolution and about how DNA results in proteins. Knowledge of the genomes of various species reveals that the relationship between human beings and distant species, such as single-celled or relatively simple organisms, turns out to be surprisingly close, suggesting that evolution conserves genes as species diverge.

Perhaps even more surprising is the way in which the Project has challenged the standard view in modern genetics of the tight relationship between each gene and its protein, the so-called dogma of one gene, one protein. It turns out that human beings have about one hundred thousand proteins but only about thirty-three thousand genes, and that genes are more elusive and dynamic than once thought. It appears that DNA sequences from various chromosomes assemble to become the functional gene, the complete template necessary to specify the protein, and that these various sequences can assemble in more than one way, leading to more than one protein. Such dynamic complexity allows some thirty-three thousand DNA coding sequences to function as the templates for one hundred thousand proteins. But this complexity, in view of the limited understanding of the processes that define it, means that the ability to modify DNA sequences may have limited success and unpredictable consequences, which should lower confidence in genetic engineering, especially when applied to human beings.

Biotechnology is further limited by financial factors. Most biotechnology is pursued within a commercial context, and the prospect of near-term financial return must be present to support research. Biotechnology depends upon access to capital and upon legal protection for intellectual property, such as the controversial policy of granting patent protection on DNA sequences or genes and on genetically modified organisms, including mammals. This financial dependence is itself a matter of controversy, giving rise to the fear that life itself is becoming a mere commodity or that the only values are those of the market.

There is no reason, however, to think that biotechnology has reached the limits of its powers. On the contrary, biotechnology is growing not just in the scope of its applications but in the range and power of its techniques. Biotechnology's access to the whole genomes of human beings and other species means that the dynamic action and interaction of the entire set of genes can be monitored. In one sense, the completion of full genomes ushers in what some have called post-genomic biotechnology, characterized by a new vantage point of a systematic overview of the cell and the organism. This is proving valuable, for instance, in opening new understandings of cancer as a series of mutation events within a set of cells in the body. Attention is turning, however, from the study of genes to the study of proteins, which are more numerous than genes but also more dynamic, coming quickly into and out of existence in the trillions of cells of the human body according to precise temporal and spatial signals. Most human proteins are created only in a small percentage of cells, during a limited period of human development, and only in precisely regulated quantities. Studying this full set of proteins, in all its functional dynamism, is a daunting task requiring technologies that do not exist at the beginning of the twenty-first century. The systematic study of proteins, called proteomics, may in fact become a new international project for biology, leading in time to a profound expansion of the powers of biotechnology.

In time, researchers will develop powerful new methods for modifying DNA, probably with far higher precision and effectiveness than current techniques allow, and perhaps with the ability to transfer large amounts of DNA into living cells and organisms. Computer power, which is essential to undertakings like the Human Genome Project and to their application, continues to grow, along with developments such as the so-called gene chip, using DNA as an integrated part of the computing device. Advances in engineering at the very small scale, known as nanotechnology (from nanometer, a billionth of a meter), suggest that molecular scale devices may someday be used to modify biological functions at the molecular level. For instance, nanotechnology devices in quantity may be inserted into the human body to enter cells, where they might modify DNA or other molecules. In another area of research, scientists are exploring the possibility that DNA itself may be used as a computer or a data storage device. DNA is capable of storing information more efficiently than current storage media, and it may be possible to exploit this capacity.

It is impossible to predict when new techniques will be developed or what powers they will bring. It is clear, however, that new techniques will be found and that they will converge in their effectiveness to modify life. Precisely designed pharmaceutical products will be available to treat nearly every disease, often by interrupting them at the molecular level and doing so in ways that match the specific needs of the patient. Stem cells, whether derived from embryos or from patients themselves, will probably be used to regenerate nearly any tissue or cell in the body, perhaps even portions of organs, including the brain. The genes in patients' bodies will be modified, either to correct a genetic anomaly that underlies a disease or to trigger a special response in specific cells to treat a disease or injury. It is more difficult to foresee the full extent of the long-term consequences of biotechnology on nonhuman species, on the ecosystem, on colonies of life beyond Earth, and on the human species itself; estimates vary in the extreme. Some suggest that through these means, human beings will engineer their own biological enhancements, perhaps becoming two or more species.

The prospect of these transformations has evoked various religious responses, and scholars from many traditions have been divided in their assessments. Those who support and endorse biotechnology stress religious duties to heal the sick and feed the hungry. Most hold the view that nature is to be improved, perhaps within limits, and that human beings are authorized to modify the processes of life. Some suggest that creation is not static but progressive, and that human beings are co-creators with God in the achievement of its full promise.

Others believe biotechnology will pervert nature and undermine human existence and its moral basis. They argue, for instance, that genetic modifications of offspring will damage the relationship between parents and children by reducing children to objects, products of technology, and limit their freedom to grow into persons in relationship with others. Some warn that saying yes to biotechnology now will make it impossible to say no in the future. Still others suggest that the point is not to try to stop biotechnology but to learn to live humanely with its powers, and as much as possible to steer it away from selfish or excessive uses and toward compassionate and just ends.

See also Cloning; Darwin, Charles; DNA; Evolution; Eugenics; Gene Patenting; Gene Therapy; Genetically Modified Organisms; Genetic Engineering; Genetics; Genetic Testing; Human Genome Project; In Vitro Fertilization; Reproductive Technology; Stem Cell Research

american association for the advancement of science. "human inheritable genetic modifications: assessing scientific, ethical, religious, and policy issues." washington, d.c.: aaas, 2000

bruce, donald, and bruce, ann, eds. engineering genesis: the ethics of genetic engineering in non-human species. london: earthscan publications, 1998

chapman, audrey r. unprecedented choices: religious ethics at the frontiers of genetic science. minneapolis, minn.: fortress press, 1999

cole-turner, ronald. the new genesis: theology and the genetic revolution. louisville, ky.: westminster and john knox press, 1993.

cole-turner, ronald. beyond cloning: religion and the remaking of humanity. harrisburg, pa.: trinity press international, 2001.

dorff, elliot n. matters of life and death: a jewish approach to modern medical ethics. philadelphia, pa.: jewish publication society, 1998

dorff, elliot n. "jewish views on technology in health care." in claiming power over life: religion and biotechnology policy, ed. mark j. hanson. washington, d.c.: georgetown university press, 2001.

evans, john h. playing god? human genetic engineering and the rationalization of public bioethical debate. chicago: university of chicago press, 2002.

genome sequencing consortium. "initial sequencing and analysis of the human genome." nature 409 (2001): 860921.

kilner, john f.; pentz, rebecca d.; and young, frank e., eds. genetic ethics: do the ends justify the genes? grand rapids, mich.: eerdmans, 1997.

national council of churches, panel on bioethical concerns. genetic engineering: social and ethical consequences. new york: pilgrim press, 1984.

peacocke, arthur r. god and the new biology. san francisco: harper, 1986.

peters, ted. playing god? genetic determinism and human freedom. new york: routledge, 1997.

peters, ted, ed. genetics: issues of social justice. cleveland, ohio: pilgrim press, 1998.

peterson, james c. genetic turning points: the ethics of human genetic intervention. grand rapids, mich.: eerdmans, 2001.

rahner, karl. "the problem of genetic manipulation." in theological investigations, vol. 9, trans. g. harrison. new york: seabury, 1966.

rahner, karl. "the experiment with man: theological observations on man's self-manipulation." in theological investigations, vol. 9, trans. g. harrison. new york: seabury, 1966.

ramsey, paul. fabricated man: the ethics of genetic control. new haven, conn.: yale university press, 1970.

shinn, roger lincoln. the new genetics: challenges for science, faith and politics. london and wakefield, r.i.: moyer bell, 1996.

venter, j. craig, et. al. "the sequence of the human genome." science 291 (2001): 13041351.

willer, roger a., ed. genetic testing and screening: critical engagement at the intersection of faith and science. minneapolis, minn.: kirk house, 1998.

world council of churches, church and society. manipulating life: ethical issues in genetic engineering. geneva: world council of churches, 1982.

world council of churches, church and society. biotechnology: its challenges to the churches and the world. geneva: world council of churches, 1989.

ronald cole-turner

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PDS Biotechnology Moves Forward With Full Enrollment In PDS0101 Trial In HPV-Associated Cancers, Shares Retreat – Yahoo Finance

Thursday, February 4th, 2021

TipRanks

Lets talk about risk and the big picture. Its an appropriate time, as the big risk presented by the COVID-19 pandemic is finally receding thanks to the ongoing vaccination program. COVID is leaving behind an economy that was forced into shutdown one year ago while in the midst of a great expansion, boosted by the deregulation policies. While the new Biden Administration is busy reversing many Trump policies, at least for now the economy is rebounding. And this brings us to risk. A time of economic growth and rebound is a forgiving time to move toward risk investments, as general economic growth tends to lift everything. Two strategists from JPMorgan have recently chimed in, promoting the view that the markets fundamentals are still sound, and that small- to mid-cap sector is going to keep rising. First, on the general conditions, quant strategist Dubravko Lakos-Bujas wrote, Although the recent technical selloff and short squeeze is receiving a lot of attention, we believe the positive macro setup, improving fundamentals and COVID-19 outlook, strength of the US consumer, as well as the reflation theme remain the bigger forces at play. Not only should this drive further equity upside, but it remains favorable for continued rotation into economic reopening Building on this, Eduardo Lecubarr, chief of the Small/Mid-Cap Strategy team, sees opportunity for investors now, especially in the smaller value stocks. We stick to our view that 2021 will be a stockpickers paradise with big money-making opportunities if you are willing to go against the grain Many macro indicators did fall in January but SMid-Caps and equities in general continued to edge higher, Lecubarr noted. And if you are prone to look at high-risk, small- to mid-cap stocks, youll find yourself drawn to penny stocks. The risk involved with these plays scares off the faint hearted as very real problems like weak fundamentals or overwhelming headwinds could be masked by the low share prices. So, how should investors approach a potential penny stock investment? By taking a cue from the analyst community. These experts bring in-depth knowledge of the industries they cover and substantial experience to the table. Bearing this in mind, we used TipRanks database to find two compelling penny stocks, according to Wall Street analysts. Both tickers boast a Strong Buy consensus rating and could climb over 200% higher in the year ahead. CNS Pharmaceuticals (CNSP) We will start with CNS Pharmaceuticals, a biotechnology company with a focus on the treatment of glioblastomas, a class of aggressive tumors that attack the braid and spinal cord. These cancers, while rare, are almost always terminal, and CNS is working a new therapy designed to more effectively cross the blood-brain barrier to attack glioblastoma. Berubicin, CNSs flagship drug candidate, is an anthracycline, a potent class of chemotherapy drugs derived from the Streptomyces bacteria strains, and used in the treatment of a wide variety of cancers. Berubicin is the first drug in this class to show promise against glioblastoma cancers. The drug candidate has completed its Phase 1 clinical trial, in which 44% of patients showed a clinical response. This number included one patient who showed a Durable Complete Response, defined as a demonstrated lack of detectable cancer. Following the success of the Phase 1 study, CNS applied for, and received, FDA approval of its Investigational New Drug application. This gives the company the go-ahead to conduct a Phase 2 study on adult patients, an important next step in the development of the drug. CNS plans to start the mid-stage trial in 1Q21. Based on the potential of the companys asset in glioblastoma, and with its share price at $2.22, several analysts believe that now is the time to buy. Among the bulls is Brooklines 5-star analyst Kumaraguru Raja who takes a bullish stance on CNSP shares. Until now, the inability of anthracyclines to cross the blood brain barrier prevented its use for treatment of brain cancers. Berubicin is the first anthracycline to cross the blood-brain barrier in adults and access brain tumors Berubicin has promising clinical data in a Phase 1 trial in recurrent glioblastoma (rGBM) and has Orphan drug designation for treatment of malignant gliomas from the FDA. We model approval of Berubicin for treatment of recurrent glioblastoma in 2025 based on the Phase 2 data with 55% probability of success for approval. We model peak sales of $533 million in 2032, Raja opined. CNS pipeline also includes WP1244 (novel DNA binding agent) that is 500x more potent than daunorubicin in inhibiting tumor cell proliferation is expected to enter the clinic in 2021 In vivo testing in orthotopic models of brain cancer showed high uptake of WP1244 by brain and subsequent antitumor activity, the analyst added. To this end, Raja rates CNSP a Buy, and his $10 price target implies room for a stunning 350% upside potential in the next 12 months. (To watch Rajas track record, click here) What does the rest of the Street have to say? 3 Buys and 1 Hold add up to a Strong Buy consensus rating. Given the $8.33 average price target, shares could climb ~275% in the year ahead. (See CNSP stock analysis on TipRanks) aTyr Pharma (LIFE) The next stock were looking at, aTyr Pharma, has a focus on inflammatory disease. Its leading drug candidate, ATYR1923, is a Neuropilin-2 (NRP2) agonist, working through the receptor proteins expressed by the NRP2 gene. These pathways are important for cardiovascular development and disease, and play a role in the inflammatory lung disease pulmonary sarcoidosis. In December, the company reported that the drug candidate had completed enrollment of 36 patients in a Phase 1b/2a clinical trial, testing the drug in the treatment of pulmonary sarcoidosis. Results of the current study are expected in 3Q21, and will inform further trials of ATYR1923, including against other forms of inflammatory lung disease. On a more immediate note, in early January the company announced top-line results of another Phase 2 clinical involving ATRY1923 this time in the treatment of patients hospitalized with severe respiratory complications from COVID-19. The results were positive, showing that a single dose of ATYR1923 (at 3 mg/kg) resulted in a 5.5-day median recovery time. Overall, of the patients dosed in this manner, 83% saw recovery in less than one week. Covering LIFE for Roth Capital, 5-star analyst Zegbeh Jallah noted, We like the risk profile here, with two shots on goal, and updated data details from the COVID study is expected in the coming months. Also announced recently, is that data from aTyr's Pulmonary Sarcoidosis program, will be reported in 3Q21 the success of either of these studies could result in a doubling or more of the market cap as these opportunities appear to barely be accounted for by investors. In line with his optimistic approach, Jallah gives LIFE shares a Buy rating and his $15 price target suggests an impressive 277% potential upside for the coming year. (To watch Jallahs track record, click here) Other analysts are on the same page. With 2 additional Buy ratings, the word on the Street is that LIFE is a Strong Buy. On top of this, the average price target is $13.33, suggesting robust growth of ~236% from the current price of $3.97. (See LIFE stock analysis on TipRanks) To find good ideas for penny stocks trading at attractive valuations, visit TipRanks Best Stocks to Buy, a newly launched tool that unites all of TipRanks equity insights. Disclaimer: The opinions expressed in this article are solely those of the featured analysts. The content is intended to be used for informational purposes only. It is very important to do your own analysis before making any investment.

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Nano Biotechnology Market 2021, Size, Share, Global Industry Growth, Business Statistics, Top Leaders, Competitive Landscape, Forecast To 2027 KSU |…

Thursday, February 4th, 2021

Nano Biotechnology Market:Global Size, Trends, Competitive, Historical & Forecast Analysis, 2020-2025. Increasing demand of new therapies for various tissues of lungs and cardiac as well as rising organizations investment in research and development for new drugs are some important factors driving the growth of Nano biotechnology market.

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Nano biotechnology is application of nanotechnology which is applied in biological field. The concept nanotechnology means a designed, development and applications of material which functional make up is on a nanometer scale. Technically nanotechnology is developing material or other structured material which is size from 1 to 100 nanometers. And biotechnology means the study of biological subjects including microorganism. Nano biotechnology is intersection of biology and nanotechnology. Nano biotechnology is a study of biological and biochemical applications. Nano biotechnology is used to study the nature of fabricating new Nano devices and elements which exists in living organisms. The use of Nano biotechnology in commercial applications in biomedical field is direction towards development of new techniques in biosciences and drug delivery systems.

The global nano biotechnology is segmented on the basis of applications, therapeutics and by regional basis. Based on application the global Nano biotechnology is segmented as medical research, medical devices, pharmaceuticals and others. On the basis of therapeutics the global Nano biotechnology market is divided as orthopedic therapies, dental therapies, cardiac therapies and others.

The regions covered in global Nano biotechnology report are North America, Europe, Asia-Pacific and Rest of the World. On the basis of country level, Global Nano biotechnology sub divided in U.S., Mexico, Canada, U.K., France, Germany, Italy, China, Japan, India, South East Asia, GCC, Africa, etc.

Nano Biotechnology Companies:

Global Nano biotechnology reports cover prominent players like,

Dabur Pharma

cellix

InanoBio

Marina Biotech

dermaCM

Ablynx

Xantac Bioanalytics

AC Serndip

WaveSense

Nanobiotech Pharma

Celgene

Thermo Fisher Scientific

merck KGaA

Bionano Genomics

Others

New Nano drug candidate kills aggressive breast cancer cells

News: July 20, 2020 The researchers at the University of Arkansas have developed a new Nano drug candidate that kills triple-negative breast cancer cells. Triple-negative breast cancer is one of the most aggressive and fatal types of breast cancer. The research will help clinicians target breast cancer cells directly while avoiding the adverse and toxic side effects of chemotherapy. The American Cancer Society estimated 268,600 new cases of invasive breast cancer in 2019 and 41,760 deaths. Researchers in Beyzavis laboratory focus on developing new targeted photodynamic therapy drugs, as alternative to chemotherapy and significantly fewer side effects.

Global Nano Biotechnology Dynamics

The key factor for growth of global Nano biotechnology is increasing advancements in medical science to improve healthcare practices around the world for better drug delivery system which drives the growth of Nano biotechnology market. The product of Nano biotechnology is under trial but scientist have confident that this trail will give positive result to increase the prevention process, diagnosis and treatment of various diseases. Nano biotechnology is also used in areas like electronics, biomaterial and energy production. The public and private companies are also showing keen interest in Nano biotechnology which gives commercial platform for the product of Nano biotechnology.

More detailed research is required to introduce diverse components of Nano biotechnology in medical applications which restrain the growth of global Nano biotechnology market. The effect of toxicity of Nano material on environment and economy affect the growth of Nano biotechnology market. However the increase in government initiative for research and development in Nano biotechnology will increase opportunities of Nano biotechnology market in future.

The National Nanotechnology Initiatives (NNI) funded approximately USD 170 billion in 2018. Currently there are 60 countries which is member of National Nanotechnology Initiative and conducted program on National Nanotechnology. According to National institute of standard there are 1700 nanotechnology companies worldwide.

Nano BiotechnologyRegional Analysis

North America is dominating the growth nano biotechnology due to increase in investment in research and development projects and implementing flexible policies. The National Nanotechnology Initiatives which was established in 2001 which develop nanotechnology within United States. There is 3729 patent registered in USA on Nanotechnology in 2018. European Union is expected to emerge the growth of share in global Nano biotechnology market. To increase in research and development spending and investment in public and private sectors of Nano biotechnology. The European Union has published the publications on Nano biotechnology.

Asia Pacific is also emerging in the field of nano biotechnology. India has introduced Nano biotechnology based chemotherapy. The Nano biotechnology have introduced polymer free drug for treatment of cardiac disease. The drug name is Sirolimous which shows extreme excellent result which reduces the blockages of in the arteries. China has duplicated research paper and publication about 3592 and 30.479 respectively. The patent on Nano biotechnology of china is 5030 in 2019.

Key Benefits forNano biotechnologyreports

Global Nano biotechnology report covers in depth historical and forecast analysis.

Global Nano biotechnology Market research report provides detail information about Market Introduction, Market Summary, Global market Revenue (Revenue USD), Market Drivers, Market Restraints, Market opportunities, Competitive Analysis, Regional and Country Level.

Global Nano biotechnology report helps to identify opportunities in market place.

Global Nano biotechnology report covers extensive analysis of emerging trends and competitive landscape.

Nano BiotechnologySegmentation

by Application:Medical Devices, Pharmaceuticals, Medical research, Others

by Therapeutics:Cardiac Therapies, Orthopedic Therapies, Dental therapies, Others

Regional & Country AnalysisNorth America, U.S., Mexico, Canada , Europe, UK, France, Germany, Italy , Asia Pacific, China, Japan, India, Southeast Asia, South America, Brazil, Argentina, Columbia, The Middle East and Africa, GCC, Africa, Rest of Middle East and Africa

Continued

Get Full Report: https://brandessenceresearch.com/biotechnology/nano-biotechnology-market-industry-analysis

https://www.marketwatch.com/press-release/cell-culture-industry-size-industry-analysis-report-statistics-application-development-price-trends-competitive-market-share-forecast-20212027-2021-02-03?tesla=y

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Read more from the original source:
Nano Biotechnology Market 2021, Size, Share, Global Industry Growth, Business Statistics, Top Leaders, Competitive Landscape, Forecast To 2027 KSU |...

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Is Ovid Therapeutics Inc (OVID) The Right Choice in Biotechnology? – InvestorsObserver

Thursday, February 4th, 2021

Ovid Therapeutics Inc (OVID) is near the middle in its industry group according to InvestorsObserver. OVID gets an overall rating of 40. That means it scores higher than 40 percent of stocks. Ovid Therapeutics Inc gets a 39 rank in the Biotechnology industry. Biotechnology is number 26 out of 148 industries.

Searching for the best stocks to invest in can be difficult. There are thousands of options and it can be confusing on what actually constitutes a great value. Investors Observer allows you to choose from eight unique metrics to view the top industries and the best performing stocks in that industry. A score of 40 would rank higher than 40 percent of all stocks.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

Ovid Therapeutics Inc (OVID) stock is lower by -3.34% while the S&P 500 is higher by 0.66% as of 12:01 PM on Thursday, Feb 4. OVID has fallen -$0.11 from the previous closing price of $3.29 on volume of 1,234,638 shares. Over the past year the S&P 500 has risen 15.62% while OVID has fallen -20.30%. OVID lost -$1.39 per share the over the last 12 months.

Click Here to get the full Stock Score Report on Ovid Therapeutics Inc (OVID) Stock.

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Is Ovid Therapeutics Inc (OVID) The Right Choice in Biotechnology? - InvestorsObserver

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Is Geron Corporation (GERN) the Top Pick in the Biotechnology Industry? – InvestorsObserver

Thursday, February 4th, 2021

A rating of 73 puts Geron Corporation (GERN) near the top of the Biotechnology industry according to InvestorsObserver. Geron Corporation's score of 73 means it scores higher than 73% of stocks in the industry. Geron Corporation also received an overall rating of 61, putting it above 61% of all stocks. Biotechnology is ranked 26 out of the 148 industries.

Searching for the best stocks to invest in can be difficult. There are thousands of options and it can be confusing on what actually constitutes a great value. Investors Observer allows you to choose from eight unique metrics to view the top industries and the best performing stocks in that industry. A score of 61 would rank higher than 61 percent of all stocks.

These rankings allows you to easily compare stocks and view what the strengths and weaknesses are of a given company. This lets you find the stocks with the best short and long term growth prospects in a matter of seconds. The combined score incorporates technical and fundamental analysis in order to give a comprehensive overview of a stocks performance. Investors who then want to focus on analysts rankings or valuations are able to see the separate scores for each section.

Geron Corporation (GERN) stock is lower by -6.67% while the S&P 500 is higher by 0.66% as of 11:47 AM on Thursday, Feb 4. GERN is lower by -$0.14 from the previous closing price of $2.10 on volume of 5,084,909 shares. Over the past year the S&P 500 has risen 15.62% while GERN is higher by 48.48%. GERN lost -$0.35 per share the over the last 12 months.

Click Here to get the full Stock Score Report on Geron Corporation (GERN) Stock.

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Is Geron Corporation (GERN) the Top Pick in the Biotechnology Industry? - InvestorsObserver

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Is PDS Biotechnology Corp (PDSB) Stock Near the Top of the Biotechnology Industry? – InvestorsObserver

Thursday, February 4th, 2021

PDS Biotechnology Corp (PDSB) is near the top in its industry group according to InvestorsObserver. PDSB gets an overall rating of 77. That means it scores higher than 77 percent of stocks. PDS Biotechnology Corp gets a 94 rank in the Biotechnology industry. Biotechnology is number 24 out of 148 industries.

Finding the best stocks can be tricky. It isnt easy to compare companies across industries. Even companies that have relatively similar businesses can be tricky to compare sometimes. InvestorsObservers tools allow a top-down approach that lets you pick a metric, find the top sector and industry and then find the top stocks in that sector.

This ranking system incorporates numerous factors used by analysts to compare stocks in greater detail. This allows you to find the best stocks available in any industry with relative ease. These percentile-ranked scores using both fundamental and technical analysis give investors an easy way to view the attractiveness of specific stocks. Stocks with the highest scores have the best evaluations by analysts working on Wall Street.

PDS Biotechnology Corp (PDSB) stock is down -11.08% while the S&P 500 is higher by 0.18% as of 11:54 AM on Wednesday, Feb 3. PDSB is down -$0.43 from the previous closing price of $3.88 on volume of 1,803,239 shares. Over the past year the S&P 500 is higher by 16.24% while PDSB is higher by 36.90%. PDSB lost -$1.57 per share the over the last 12 months.

Click Here to get the full Stock Score Report on PDS Biotechnology Corp (PDSB) Stock.

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Is PDS Biotechnology Corp (PDSB) Stock Near the Top of the Biotechnology Industry? - InvestorsObserver

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Biotechnology Crop Seeds Market Analysis and Demand with Forecast Overview to 2026 – AlgosOnline

Thursday, February 4th, 2021

A comprehensive research study on Biotechnology Crop Seeds market available at MarketStudyReport.com provides insights into the market size and growth trends of this industry over the forecast timeline. The study evaluates key aspects of Biotechnology Crop Seeds market in terms of the demand landscape, driving factors and growth strategies adopted by market players.

The study on Biotechnology Crop Seeds market provides thorough insights pertaining to major growth drivers, challenges, and opportunities that will influence the industry expansion in the forthcoming years.

Request a sample Report of Biotechnology Crop Seeds Market at:https://www.marketstudyreport.com/request-a-sample/3221257?utm_source=algosonline.com&utm_medium=SHR

According to the research document, the industry is expected to register XX% CAGR over the forecast period (2021-2026), subsequently accruing significant gains by the end of analysis timeframe.

The market is in a disarray due to the lockdowns imposed for limiting the spread of COVID-19 outbreak. In addition to the sudden slump of revenue, some businesses are expected to tackle a plethora of challenges post the pandemic.

Most of the businesses across various sectors have renewed their budgets to focus on profit gains in upcoming years. Our comprehensive analysis of the business sphere can help stakeholders in making sound decisions to compensate for market uncertainties and support them in building strong contingency plans.

Further, the report provides a granular assessment of the several industry segmentations to convey a deeper understanding of the areas with strong profit potential.

Key inclusions of the Biotechnology Crop Seeds market report:

Ask for Discount on Biotechnology Crop Seeds Market Report at:https://www.marketstudyreport.com/check-for-discount/3221257?utm_source=algosonline.com&utm_medium=SHR

Biotechnology Crop Seeds Market segments covered in the report:

Regional segmentation: North America, Europe, Asia-Pacific, South America, Middle East and Africa

Product types: Herbicide Tolerant and Insect Tolerant

Applications spectrum: Corn, Soybean, Cotton and Others

Competitive outlook: Bayer, Corteva, KWS SAAT, Limagrain and China National Chemical

For More Details On this Report: https://www.marketstudyreport.com/reports/global-biotechnology-crop-seeds-market-2021-by-manufacturers-regions-type-and-application-forecast-to-2026

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Biotechnology Crop Seeds Market Analysis and Demand with Forecast Overview to 2026 - AlgosOnline

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