Showing posts with label Cancer. Show all posts
Showing posts with label Cancer. Show all posts

Friday, June 3, 2016

Creating New Pathways for the Development, Translation, and Delivery of Immunotherapies


The team behind the Next Generation Protein Therapeutics Summit have recently produced an exclusive whitepaper titled "Creating New Pathways for the Development, Translation, and Delivery of Immunotherapies". Below you will find a brief summary of the whitepaper and download the complete whitepaper now


 Whitepaper Summary:

The last decade has seen substantial growth of immunotherapy treatments for cancer. The new immunotherapies have produced exciting results in terms of response rates to treatment for certain cancers, such as melanoma, which have been refractory to treatment, once substantial metastasis has occurred. The US Food and Drug Administration (FDA) has approved several antibodies against immune checkpoint inhibitors based on the encouraging results in clinical trials. Other types of immune therapies are also being developed which may also be useful in the treatment of cancer.

New antibody/cytokine fusion proteins, anti-CD 137 monoclonal antibodies (mabs) for stimulating cells of the immune system, more refined uses of cytokines in immunotherapy treatments, cancer vaccines, use of genetically engineered T cells to specifically target tumors, new techniques in stimulating the innate immune system and combinations of immunotherapies have great potential for being effective treatment options for cancer treatment in the future.

Challenges, however, remain to perfect these therapies for use in the clinic for cancer treatment. The nature of these challenges are scientific, clinical and regulatory. Scientific challenges include defining the appropriate tumor types for an appropriate immunotherapy, the conditions under which various cells of the immune system would be activated and determining how best to manipulate them to allow for maximum tumor cell destruction, finding better ways to circumvent cancer cell suppression of immune cell responses and using new techniques to prevent or ameliorate the nonspecific injury to normal tissue that can occur as a side effect of immunotherapeutic treatment.

Clinical challenges include ensuring there is adequate quality control in manufacturing process to supply the agent in pure enough form for clinical trials, obtaining enough patients that meet inclusion criteria, designing clinical trials that will yield adequate information to assess the safety and efficacy of the treatment and defining appropriate endpoints for a cancer clinical trial to effectively interpret clinical data gained from the clinical trial.

Regulatory challenges can occur at multiple levels for companies or entities trying to gain FDA approval for their immunotherapy technique or product. These challenges can be at the preclinical level, clinical or manufacturing levels. Adherence to regulations governing Good Laboratory Practices, Good Clinical Practices, and Good Manufacturing Practices can be problematic when trying to take immunological reagents or cellular treatments from the research laboratory to the cancer treatment clinic.

Despite the challenges when conducting research and treatment with immunotherapies, the intense level of research and data being generated with immunotherapies for cancer will ensure that a wide variety of new therapies will be possible in the coming years.




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Friday, December 4, 2015

Antibodies as Drugs: A Lesson from Before the Antibiotic Era

This post was contributed by Twist Bioscience


'His penicillin will save more lives than war can spend’ was the tagline accompanying a serious-looking Alexander Fleming on the cover of the May 15th, 1944 issue of TIME Magazine. With his discovery of penicillin came the antibiotic era of medicine. However, when one giant rises, another must fall. Serum therapy was, almost overnight, systematically dethroned as the accepted treatment for infectious diseases.

The cover of the May 15th 1944 issue of TIME magazine, which features Alexander Fleming shortly after his discovery of Penicillin. Source.

Serum therapy, the treatment of an infectious disease by injection of an immunized animal’s blood serum, was first used to cure disease in the 1890s. In the 40 years it took for penicillin to be discovered, serum therapy treated a swath of diseases including tetanus, diphtheria, measles and chicken pox.

By inoculating an animal with a dead pathogen, the animal’s antibody-rich immune sera could be extracted. Injecting the immunized animal sera into patients lead to prophylactic, bactericidal, antitoxic and protective benefits. However, it would take around six months to develop a serum, and even then only around 40% of patients would show improvement, making antibiotics were a better solution1.

Today, with the threat of antibiotic resistance looming, antibody treatment is reinstating itself into the next era of medicine. Significant developments that enable us to mass-engineer an antibody’s binding domains have occurred in recent years. Our ability to screen candidates for highly efficient binding, and grow them into concentrated sera of monoclonal antibodies has also drastically improved.

With this, antibody therapy has become accepted into routine clinical practice. Antibody research is now at fever pitch, with thousands of published clinical trials on PubMed today.

Monoclonal antibodies have incredible potential in disease and disorder treatment, due to their ability to explicitly bind specific molecules. The immunosuppressant Muromonab-CD3, given to organ transplant patients, was the very first to be approved by the FDA for human use in 1985. Since its approval, many monoclonal antibodies have now been cleared for use, or are advancing through clinical testing. Disease targets include Crohn’s disease, cancer, asthma, psoriasis, diabetes, HIV, influenza and Alzheimer’s disease.

Importantly, antibody-based therapies are moving toward completely humanized monoclonals (as opposed to those sourced from mice). Research focuses on engineering low toxicity, high target specificity and improved manufacturability – all characteristics bolstered by the advent of synthetic biology, especially massively multiplex DNA libraries.

These vast libraries contain around 1010 different antibody sequences, representing every possible combination of mutations at particular points within an antibody’s variable regions. The single set of mutations that confers perfect, high-specificity binding to an antigen of interest can then be fished out with a number of high throughput screening technologies. Such advancement has been pivotal to antibody therapy research, pushing engineering costs down, reinforcing efforts to treat complex diseases with global reach, such as cancer.

The many ways an antibody can be engineered to destroy a tumor cell. Source: (Chao et al., 2012)

In addition to DNA libraries, advances in next-generation sequencing-based diagnostics have opened new avenues for targeted, personalized, antibody-based therapies. By sequencing a tumor biopsy, it is possible to identify specific cancer-related surface antigens that are overexpressed – known as the ‘oncotype’ of the patient’s tumor. The corresponding antibody treatment can then be administered.

One well-known example of a cancer-treating, FDA-approved monoclonal antibody is Herceptin – for treatment of HER2-positive (HER2+) breast cancer oncotypes. In a large fraction of aggressive breast cancers, HER2 is overexpressed causing accelerated cellular proliferation. Herceptin targets HER2 receptors, blocks their signaling pathway, and attenuates tumor growth and proliferation. In a 10-year study of 4,000 women with early-stage HER2+ breast cancer, treatment with Herceptin showed a 37% increase in overall survival and a 40% increase in disease-free survival compared to a cohort treated only with chemotherapy2.

A vial of the breast cancer fighting, monoclonal antibody - Herceptin. Source.

Herceptin binds specifically to its cancer-specific antigen, however, oftentimes antigens are shared between cancer and some of the body’s own cells, causing the destruction of healthy tissues.

Yvonne Chen of UCLA, who spoke at the recent 2015 Synthetic Biology Congress in London, discussed her research on integrating synthetic biology and antibody engineering to solve this problem. Her group engineered antibodies to contain additional binding domains – so one antibody will only have strong binding if two antigens are present. This ensures the antibodies exclusively bind to a specific cancer cell.

Synthetic biology tools are revolutionizing high-throughput antibody engineering. As the cost of writing DNA decreases with new methods of DNA synthesis, the speed of development will increase. Simply, pharmaceutical and biotechnology companies will be able to test more options to improve specificity and manufacturability. In turn, this will enable highly targeted and highly beneficial therapies for the hardest-to-treat diseases, which can be delivered to patients worldwide.



About Twist Bioscience
At Twist Bioscience, our expertise is synthetic DNA. We have developed a proprietary semiconductor-based synthetic DNA manufacturing process featuring a 10,000-well silicon platform capable of producing synthetic biology tools, such as oligonucleotides, genes, pathways, chassis and genomes. By synthesizing DNA on silicon instead of on traditional 96-well plastic plates, our platform overcomes the current inefficiencies of synthetic DNA production, and enables cost-effective, rapid, high-quality and high throughput synthetic gene production. The Twist Bioscience platform has the potential to greatly accelerate the development of personalized medicine, sustainable chemical production, improved agriculture production as well as new applications such as in vivo diagnostics, biodetection and data storage. For more information, please visit www.twistbioscience.com. Twist Bioscience is on Twitter. Sign up to follow our Twitter feed @TwistBioscience at https://twitter.com/TwistBioscience.






1. Glatman-Freedman, Casadeval. Serum Therapy for Tuburculosis Revisited: Reappraisal for the Role of Antibody-Mediated Immunity Against Mycobacterium Tuburculosis. Clin Microb Rev. 1998.

2. Perez et al. Trastuzumab Plus Adjuvant Chemotherapy for Human Epidermal Growth Factor Receptor 2–Positive Breast Cancer: Planned Joint Analysis of Overall Survival From NSABP B-31 and NCCTG N9831. J. Clin. Oncol. 2014.


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Tuesday, September 22, 2015

Cell-based immunotherapy: Will the new “magic bullets” against cancer reach the patients?

By Fabio D'Agostino

Over the last four years we have witnessed an increasing number of promising studies and clinical trials aimed to harness the innate potential of T-cells to fight cancer. These cells can be engineered to get around the natural protection mechanisms and target tumour cells either via a chimeric antigen receptor (CAR) or by affinity-enhanced T-cell receptor (TCR).The former have proven to be more effective for haematological malignancies as they can mainly target antigen on the cell surface. The latter have the potential to target also intracellular antigens and this makes them, potentially, a more suitable candidate for solid tumours. Other than Novartis, which is developing a CAR-T cell therapy (known as CTL019) with an exclusive agreement with the University of Pennsylvania, successful companies in this field include Bluebird Bio, Juno Therapeutics and Kite Pharma. Adaptimmune, which partnered with GSK last year, is, on the other hand, more focused on TCR based therapies for a number of solid tumours. Unfortunately, as target antigens are also expressed by heathy cells in vital organs, the risk of potentially lethal side effects is not negligible. While research groups try to create low-affinity CAR-T cells or other approach to reduce side effects, developers and investors wonder:

Will the industry be able to deliver and cope with the manufacturing demand?

Although one might argue that promising clinical data are the real drive, these new “living drugs” might not even reach the patients on large scale if they come with an astronomical price tag and investors might walk away from a technology that requires huge investment to be made commercially viable. Moreover, in the optimistic scenario where all the T-cell based immunotherapies currently in development will prove clinical effective, only who managed to engineer down costs, while maintain safety and effectiveness, will win the race. As T-based immunotherapies are mainly patient-specific drugs, where 1 batch is equal to 1 patient, manufacturing costs are currently very high. Other than cost-effectiveness, there are also a number of challenges which still need to be overcome, as shown in the following diagram.

An increasing number of companies worldwide are betting on closed and automated system to tackle many of these challenges. Dr Andrew Kaiser shared his vision in a recent paper1. He explains how a “device-based manufacturing” could enable to scale out production of patient specific cellular products while considerably reducing costs in terms of labour and facility. Devices like the CliniMACS Prodigy (Miltenyi Biotec), which are capable of performing automatically all steps of a conventional manufacturing process for gene-modified T-cell product, could be run in a room where an operator could oversee several units at the same time. Another interesting platform is the one developed by Octane (Canada). Octane’s automation platform consists of Cocoon, which acts as the control system, and a disposable pre-sterilized cassette, where the cell manipulations occur. Each cassette can be easily customized to the unit operations of the manufacturing process. As the process parameters are monitored and controlled, each Cocoon is able to react accordingly to sensors’ feedback to accommodate natural variation in starting cellular material from each patient. Lonza recently announced an exclusive technology evaluation of the Octane Cocoon™ cell production platform with the goal of a global deployment of this groundbreaking innovation. Dr Nuala Trainor (Director of Biological Programs at Octane Medical Group) explained how their “GMP-in-a-box” production system could solve many of the issues linked to the manufacturing of patient-specific cell-products by enabling production within the clinical facility. She even envisions a “franchising model” where the manufacturer of the automation system would be responsible for providing all elements of support required for routine implementation and all operational supplies2.

                Will automated manufacturing directly in the clinical facility be really the answer?

According to Dr Robert Preti (President of PCT and CSO at Neostem), the only way to successfully achieve scalability and sustainability for patient specific cell therapies at commercial scale is an industry-wide effort of innovation and engineering to rebuilt unit operations and move processes from a cleanroom focus towards production spaces more suited to “high-volume” production3. Perhaps this will drive the development of the new system for commercial-scale manufacturing that Neostem aims to develop with Invetech.  The push towards new facility design for cell therapy products at commercial stage is also echoed by GE Healthcare which is working towards a closed, digitally integrated, automated ecosystem capable of manufacturing patient-specific cell therapy products and distribute them worldwide in a regulatory complainant manner. New generation GMP facilities will have to be designed.

                How will a Future Factory for commercial cell-based products manufacturing look like?

In the meantime, CDMOs worldwide continue to increase their capacity to cope with the increasing manufacturing demand. Examples are Wuxi App Tec (US), MEDINET (Japan), Nikon (Japan), PharmaBIO (Japan). While automated platforms might be developed by customizing and importing technology already available; more knowledge of the “living” drug product is needed to develop analytics, potency assays and release testing for T-cell based therapies.  There is also who, to the troubles that come with patient-specific products, prefers striving to develop a universal “off-the-shelf” T-cells therapy where the cells are modified to avoid immune rejection in the recipient patient. It is the French company Cellectis which announced a strategic alliance with MD Anderson Cancer Center on clinical development of their allogeneic CART cell therapies.

After the clinical wave, a manufacturing wave of promising enabling technologies might be on its way for cell-based immunotherapy.

Fabio D’Agostino is a passionate life sciences professional with experience in both the medical device and biopharmaceutical industry. An active member of the PDA Cell and Gene Task Force, he has contributed to a number of conferences in the cell and gene therapy industries. He was also instrumental in the launch of the new journal: Cell and Gene Therapy Insights.
After graduating with Honours from the Polytechnic University of Turin (Italy) with a BSc and a Master’s in Biomedical Engineering, he started his career at LivaNova (formerly Sorin Group) before moving to Newcastle University to take an Engineering Doctorate in Biopharmaceutical Process Development. He currently holds a research position at the Institute of Genetic Medicine (Newcastle University) where he is responsible for the development of an innovative platform for modular tissue engineering.


References


[1] “Towards a commercial process for the manufacture of genetically modified T cells for therapy”, A D Kaiser, M Assenmacher, B Schröder, M Meyer, R Orentas, U Bethke and B Dropulic. Cancer Gene Therapy (2015) 22, 72–78

[2] “Rethinking clinical delivery of adult stem cell therapies”, Nuala Trainor, Alexis Pietak, Tim Smith, Nature Biotechnology 32, 729–735 (2014)            

[3] “Guest Commentary: Building a problem or a solution?”,Robert Preti, DDNews , September 2015, VOL. 11, NO. 9



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Wednesday, September 16, 2015

Top 10 Reasons to Attend BioProcess International 2015 This Fall

BioProcess International Conference & Exposition is the largest bioprocessing event bringing you new ideas, demystifying technology, and fostering partnerships in highly engaging formats to move drug candidates closer to approval. Register today to attend this year’s meeting, held October 26-29, 2015 at the Hynes Convention Center in Boston, MA.

At the conference, formal and informal networking experiences will connect you to peers, prospects, and customers; parallel tracks give you the option to dive deep or take a big picture approach to learn about industry trends, challenges, and benchmark against the latest research developments and; big pharma and large, mid-size and emerging biotechs collaborating with solution providers will feature proven and next generation technologies – making BPI a one-of-a-kind meeting place.

Above all, here are the top 10 reasons we think BPI is the right bioprocessing event for you:

1.       More than 150+ comprehensive solution providers, next generation technologies, and start-ups – all in one place inside the exposition hall.
2.       6 tracks for one fee. Go specialized or expand your horizons across disciplines for a personalized, curated content experience.
3.       Back by Popular Demand! BPI Theater, a curated showcase of the best innovations.
4.       NEW! Town Hall Forums for highly focused industry best practice sharing.
5.       New and Improved! BPI Connect Partnering App to help jump start your next partnership or collaboration.
6.       NEW! Exposition Hall Tour for focused exhibit viewing led by an industry insider.
7.       NEW! Ask the Regulators Open Forum that will answer your critical questions about regulatory expectations.
8.       NEW! 15 Bioprocessing Problem-Solving Moderated Discussions to help you move drug candidates closer to approval.
9.       The Right Partners for You. Form collaborations and alliances with innovators, suppliers, academia and associations to reach new heights of clinical and commercial success
10.   The Most Comprehensive Science. Capitalize on the latest data-driven research and moderated discussions to move towards commercialization and streamlined development and production from upstream to drug product/fill-finish.

Download the brochure for more information about BPI 2015: http://bit.ly/1NBdz3I

As a valued member of our LinkedIn community, you get $100 off the current rate when you register using code XB15171LINK: http://bit.ly/1NBdz3I

We hope to see you in Boston next month!

Best,
The BPI 2015 Team
@IBCUSA
#BPIConf




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Monday, July 27, 2015

How to successfully integrate continuous capture with perfusion bioreactors


In a previous post I described the drivers for, and, benefits from, the trend towards the continuousproduction of biopharmaceutical drugs in which I referenced the article of Veena Warikoo from Genzyme, a Sanofi company, and co-workers published in 2012 on the “Integrated Continuous Production of RecombinantTherapeutic Proteins” (Biotech Bioeng, 2012;109: 3018-3029). Amongst Veena’s contributing authors is Konstantin Konstantinov a key contributor to the literature on continuous bioprocessing and Keynote speaker at the Bioprocess International 2015 Conference with a presentation entitled “What is the Future of Continuous Processing  – What is the Time Frame for Implementing Fully Continuous Processing in Commercial Production?"
Extending continuous processing downstream to include the capture step

A key concept that the team from Genzyme developed is the integration of continuous chromatography with a perfusion bioreactor for the production of both high volume and stable monoclonal antibodies and low volume, less stable recombinant human enzymes. A 12 L bioreactor was operated for up to 70 days by utilizing the Alternating Tangential Flow (ATF) cell retention technology. The ATF permeate that was harvest was loaded directly onto a periodic counter current (PCC) chromatography system. Systems such as these are now available from a variety of suppliers including GE Healthcare, Pall, Semba and NovaSep. Genzyme were able to operate the PCC system in a fully closed and sterile state for a prolonged period of time.


The benefits of integrating continuous culture with continuous capture
Adopting this approach can lead to significant benefits because of the high cell densities and volumetric productivities that can be achieved. This allows significantly smaller bioreactors to be used thereby reducing facility size and capital costs. The ATF system eliminated the need for a more complex harvesting system, however, integration with PCC eliminated the need for large hold tanks, a non-value adding operation, and allowed the capture column to be reduced by a minimum of two-fold.

Improved product quality of less stable proteins

Integration of upstream and downstream operations in this way allows for the continuous flow of product from the bioreactor, through the capture step and into the chromatography eluate and mitigates the risk of product degradation of less stable proteins.

Though the issue of stability may be less of a concern for monoclonal antibodies, the team have created a platform capable of delivering a range of biopharmaceuticals from within a single facility.

What is the Time Frame for Implementing Fully Continuous Processing in Commercial Production?

How would you answer this question? Do you think the industry will see this within 5 years? 10 years? 20 years? Or more?

Dr Nick Hutchinson

Join me at #BPIconf

Dr Nick Hutchinson has a Masters and Doctorate in Biochemical Engineering from University College London, UK where he focused on laboratory tools for rapid bioprocess development and characterization. He then worked at Lonza Biologics in an R&D function investigating novel methods for large-scale antibody purification before moving to an operational role scaling-up and transferring manufacturing processes between Lonza sites in the UK, Spain and USA. Nick now works in Market Development at Parker domnick hunter where his focus is in bringing Parker's strengths in Motion & Control to Bioprocessing. This will enable customers to improve the quality and deliverability of existing and future biopharmaceuticals.


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Wednesday, July 15, 2015

Unlock the Key to Advancing Immuno-Oncology

As innovations and discoveries in cancer immunotherapies progress at lightning speed, it is critical to understand the successes and challenges with current immunotherapies to separate the hype from the real opportunities. IBC's Immuno-Oncology event develops tactics for improving the efficacy and response rates with first generation immunotherapies and builds a strategy for utilizing combination therapies, t-cell therapies, and checkpoint inhibitors to propel the next wave of cancer immunotherapies.

Download the Immuno-Oncology brochure now to create your pathway for an answer to cancer: http://bit.ly/1O6tbIZ

Immuno-Oncology
Advancing the Next Generation of Cancer Immunotherapies
September 30 – October 1, 2015
Hilton Alexandria Mark Center, Alexandria, VA

Register today and explore the latest advances in Immuno-Oncology to:

Develop next generation immunotherapies by understanding recent advances made with CAR-T and T-Cell therapies, checkpoint inhibitors, cancer vaccines, and agnostic antibodies
Create a successful combination therapy strategy by gaining insights from global leaders on effective combinations
Optimize the discovery and development of your promising immunotherapies by hearing best practices and lessons learned from the first wave of cancer immunotherapies

Download the brochure for full program details: http://bit.ly/1O6tbIZ

Reserve your seat now. Use code IMMUNO15BL to get $100 off the current rate. Register today: http://bit.ly/1O6tbIZ

Best,
The Immuno-Oncology Team 2015
@ibcusa

#Immuno15


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Thursday, May 28, 2015

Create Your Own Pathway for an Answer to Cancer

As innovations and discoveries in cancer immunotherapies progress at lightning speed, it is critical to understand the successes and challenges with current immunotherapies to separate the hype from the real opportunities.

IBC's Immuno-Oncology event develops tactics for improving the efficacy and response rates with first generation immunotherapies and builds a strategy for utilizing combination therapies, t-cell therapies, and checkpoint inhibitors to propel the next wave of cancer immunotherapies.

Immuno-Oncology
Advancing the Next Generation of Cancer Immunotherapies
September 31-October 1, 2015
Hilton Alexandria Marks Center
Alexandria, Virginia

Download the Immuno-Oncology brochure now to create your pathway for an answer to cancer: http://bit.ly/1KB4Nkg

Register today and explore the latest advances in Immuno-Oncology to:
  • Develop next generation immunotherapies by understanding recent advances made with CAR-T and T-Cell therapies, checkpoint inhibitors, cancer vaccines, and agnostic antibodies
  • Create a successful combination therapy strategy by gaining insights from global leaders on effective combinations
Optimize the discovery and development of your promising immunotherapies by hearing best practices and lessons learned from the first wave of cancer immunotherapies.

We hope to see you this fall!

Register by June 19th and save up to $400: http://bit.ly/1KB4Nkg

Best,
The Immuno-Oncology Team
@ibcusa

Futurebiopharma.blogspot.com


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Friday, May 15, 2015

Last Chance to Save Up To $550 off Immuno-Oncology

As research in cancer immunotherapies continues to rapidly evolve, it is critical to separate the real opportunities from the hype. There has been great progress with checkpoint inhibitors, CAR-T and T-Cell therapies, cancer vaccines, agnostic antibodies, and combination therapies.

IBC's Immuno-Oncology provides the critical insights and strategies you need to improve response rates, efficacy, and get closer to a cure!

Download the full agenda for complete session and speaker information here:

Immuno-Oncology
Advancing the Next Generation of Cancer Immunotherapies
September 30 – October 1, 2015
Hilton Alexandria Mark Center, Alexandria, VA

Visit the website for more details: http://bit.ly/1A4NPY2

Don't miss out on maximum savings for IBC's Immuno-Oncology!

Register by May 15 to Save up to $550 off the standard rates: http://bit.ly/1A4NPY2

Register today and explore the latest advances in Immuno-Oncology to:
-          Design next generation immunotherapies by understanding recent advances made with CAR-T and T-Cell therapies, checkpoint inhibitors, cancer vaccines, and agnostic antibodies
-          Develop a successful combination therapy strategy by gaining insights from global leaders on effective combinations
-          Improve the discovery and development of your promising immunotherapies by hearing best practices and lessons learned from the first wave of cancer immunotherapies

Best,
The Immuno-Oncology Team 2015
@ibcusa
facebook.com/ibclifesciences

www.ibclifesciences.com/ImmunoOncology


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Thursday, June 4, 2009

Vaccine Shrinks Tumors and Slows Recurrence in Skin Cancer

According to this article in ABC News researchers have created a vaccine that shrinks tumors and cuts the chances of the disease ever returning again. In a recent clinical trial, more than half of the patients who got the vaccine saw their tumors minimize in size compared to those you didn't receive it. This is one of the first "promising" cancer vaccines. Take a look at the full article here.


To connect with more professionals in the Vaccines field, join our Vaccines Development Forum Group on LinkedIn or join us in Boston September 23-25 for the Vaccines Development Forum.


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