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Medical Research Updates

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Showing posts with label medical research. Show all posts
Showing posts with label medical research. Show all posts

Thursday, March 24, 2011

Medical Breakthrough in BIOMEDICINE ~ A Genomic Blueprint for Cancer * THURSDAY, MARCH 24, 2011






The largest cancer genome sequencing project yet highlights molecular pathways at the heart of an aggressive blood cancer.


By comparing the genome sequence of healthy and cancerous cells in 38 people diagnosed with multiple myeloma—an aggressive blood cancer—scientists have created a molecular map of what goes awry in this disease.


The findings, published today in Nature, point to new targets for drug development, and also suggest that some patients will respond to drugs currently being tested for other types of cancers.


The study is also the first published analysis of multiple whole genomes of the same cancer, reflecting continuing advances in sequencing technologies and the ability to analyze whole-genome data.


Thanks to a steady decline in the cost of genome sequencing, scientists have analyzed a growing number of tumors in recent years. Searching for differences between the DNA sequence of patients' healthy and cancerous cells can highlight genetic mutations that may underlie the cancer cells' ability to grow and survive. But most studies have analyzed a single cancer sample in great detail, and then sequenced relevant genes in other cancers to confirm the role of candidate mutations.


"Simply sequencing a tumor genome doesn't get you the information you need," says Todd Golub, director of the cancer program at the Broad Institute and senior author of the study. "We need the ability to look across many cancer genomes and to discover mutations that are recurring at low frequencies, so that we can see patterns emerging from the data that are biologically meaningful."


Scientists already suspected that a protein called NF-Kappa Beta, which regulates cell division and cell death, plays a role in myeloma. In the new study, researchers found mutations in 11 genes that are part of the NF-Kappa Beta pathway that were altered in at least one multiple myeloma sample. "Now we have a detailed blueprint for how those pathways were aberrantly activated in disease," says Golub. "You can only see those kinds of pattern when you look at multiple genomes."


Researchers also found that about 4 percent of patients have mutations in a gene known as BRAF. This finding could be used to help select effective drugs. BRAF mutations have previously been shown to play a major role in melanoma and other cancers, and several BRAF inhibitors are now being tested in melanoma patients, some with excellent results. "It was completely unexpected that myeloma patients might benefit from similar targeted therapies," says Kenneth Anderson, chief of the division of hematologic neoplasias at the Dana Farber Cancer Institute. "Perhaps we can take a drug off the shelf and help patients in the short term." No trials of these drugs in this subset of myeloma patients have yet been launched, but Golub says discussions are underway. The researchers also discovered novel mutations that haven't previously been linked to cancer, pointing to new avenues for research. "No one studying myeloma had even heard of these genes," says Golub. "We don't know what these mutations do or how they cause cancer, or even whether they will make good drug targets, but it tells you this is where the field should be looking in greater detail."


The project was the brainchild of the Multiple Myeloma Research Foundation, a patient advocacy group that funded the research and provided cancer samples. About 20,000 new cases of multiple myeloma are diagnosed in the U.S. each year. The disease has a five-year survival rate of less than 40 percent. Kathy Giusti, the organization's founder, says the findings are already being used to direct funding decisions. The study identified mutations in enzymes involved in the way DNA is packaged, so the foundation has invested $5 million in this area of research and funded two biotech companies working in the field.


Scientists are now sequencing additional myeloma genomes and expect to have a few hundred completed in the next two years. "The field is barreling forward such that we expect many thousands of genomes to be sequenced across different cancer types in next several years," says Golub.


The next step is to figure out what role these mutations play in cancer. "Do they activate or inactivate growth and survival, drug resistance, or signaling pathways?" says Anderson. To do this, scientists study the effect of the mutations in cancer cell lines and animal models of the disease. "That will open the potential for development of novel targeted therapeutics directed at fundamental genetic abnormalities that are hallmarks of this disease," says Anderson.
* SINGER

Thursday, January 13, 2011

Grow your own transplant’ may be possible for men with type 1 diabetes





Grow your own transplant’ may be possible for men with type 1 diabetes
December 11, 2010 by admin


Researchers turn human testes cells into insulin-producing islet cells; diabetic mice were ‘cured’ for a week


PHILADELPHIA A– Men with type 1 diabetes may be able to grow their own insulin-producing cells from their testicular tissue, say Georgetown University Medical Center (GUMC) researchers who presented their findings today at the American Society of Cell Biology 50th annual meeting in Philadelphia.


Their laboratory and animal study is a proof of principle that human spermatogonial stem cells (SSCs) extracted from testicular tissue can morph into insulin-secreting beta islet cells normally found in the pancreas. And the researchers say they accomplished this feat without use of any of the extra genes now employed in most labs to turn adult stem cells into a tissue of choice.


“No stem cells, adult or embryonic, have been induced to secrete enough insulin yet to cure diabetes in humans, but we know SSCs have the potential to do what we want them to do, and we know how to improve their yield,” says the study’s lead investigator, G. Ian Gallicano, Ph.D., an associate professor in the Department of Cell Biology and Director of the Transgenic Core Facility at GUMC.


Given continuing progress, Gallicano says his strategy could provide a unique solution to treatment of individuals with type 1 diabetes (juvenile onset diabetes). Several novel therapies have been tried for these patients, but each has drawbacks. Transplanting islet cells from deceased donors can result in rejection, plus few such donations are available. Researchers have also cured diabetes in mice using induced pluripotent stem (IPS) cells A– adult stem cells that have been reprogrammed with other genes to behave like embryonic stem cells A– but this technique can produce teratomas, or tumors, in transfected tissue, as well as problems stemming from the external genes used to create IPS cells, Gallicano says.


Instead of using IPS cells, the researchers turned to a readily available source of stem cells, the SSCs that are the early precursors to sperm cells. They retrieved these cells from deceased human organ donors.
Because SSCs already have the genes necessary to become embryonic stem cells, it is not necessary to add any new genes to coax them to morph into these progenitor cells, Gallicano says. “These are male germ cells as well as adult stem cells.”


“We found that once you take these cells out of the testes niche, they get confused, and will form all three germ layers within several weeks,” he says. “These are true, pluripotent stem cells.”


The research team took 1 gram of tissue from human testes and produced about 1 million stem cells in the laboratory. These cells showed many of the biological markers that characterize normal beta islet cells.


They then transplanted those cells into the back of immune deficient diabetic mice, and were able to decrease glucose levels in the mice for about a week A– demonstrating the cells were producing enough insulin to reduce hyperglycemia.


While the effect lasted only week, Gallicano says newer research has shown the yield can be substantially increased.


The research was funded in part by the American Diabetes Association, patient contributions to the GUMC Office of Advancement, support from GUMC diabetes specialist Stephen Clement, M.D., and a grant from GUMC.


Co-authors include Anirudh Saraswathula, a student at Thomas Jefferson High School for Science and Technology in Alexandria, Va. GUMC researchers Shenglin Chen Ph.D., Stephen Clement, M.D., Martin Dym, Ph.D., and Asif Zakaria, Ph.D., also contributed to the research. The authors report having no personal financial interests related to the study.


About Georgetown University Medical Centera€¨Georgetown University Medical Center is an internationally recognized academic medical center with a three-part mission of research, teaching and patient care (through MedStar Health). GUMC’s mission is carried out with a strong emphasis on public service and a dedication to the Catholic, Jesuit principle of cura personalis — or “care of the whole person.” The Medical Center includes the School of Medicine and the School of Nursing and Health Studies, both nationally ranked, the world-renowned Georgetown Lombardi Comprehensive Cancer Center and the Biomedical Graduate Research Organization (BGRO). In fiscal year 2009-2010, GUMC accounted for 79 percent of Georgetown University’s extramural research funding.


Contact: Karen Mallet


km463@georgetown.edu


215-514-9751


Georgetown University Medical Center

Sunday, January 2, 2011

Breakthrough in HIV Research



Researchers have made a breakthrough in HIV research that had eluded scientists for over 20 years, potentially leading to better treatments for HIV, in a study published today in the journal Nature.


The researchers, from Imperial College London and Harvard University, have grown a crystal that reveals the structure of an enzyme called integrase, which is found in retroviruses like HIV. When HIV infects someone, it uses integrase to paste a copy of its genetic information into their DNA.


Prior to the new study, which was funded by the Medical Research Council and the US National Institutes of Health, many researchers had tried and failed to work out the three-dimensional structure of integrase bound to viral DNA. New antiretroviral drugs for HIV work by blocking integrase, but scientists did not understand exactly how these drugs were working or how to improve them.


Researchers can only determine the structure of this kind of molecular machinery by obtaining high quality crystals. For the new study, researchers grew a crystal using a version of integrase borrowed from a little-known retrovirus called Prototype Foamy Virus (PFV). Based on their knowledge of PFV integrase and its function, they were confident that it was very similar to its HIV counterpart.


Over the course of four years, the researchers carried out over 40,000 trials, out of which they were able to grow just seven kinds of crystals. Only one of these was of sufficient quality to allow determination of the three-dimensional structure.


Dr Peter Cherepanov, the lead author of the study from the Department of Medicine at Imperial College London, said: "It is a truly amazing story. When we started out, we knew that the project was very difficult, and that many tricks had already been tried and given up by others long ago. Therefore, we went back to square one and started by looking for a better model of HIV integrase, which could be more amenable for crystallization. Despite initially painstakingly slow progress and very many failed attempts, we did not give up and our effort was finally rewarded."


After growing the crystals in the lab, the researchers used the giant synchrotron machine at the Diamond Light Source in South Oxfordshire to collect X-ray diffraction data from these crystals, which enabled them to determine the long-sought structure. The researchers then soaked the crystals in solutions of the integrase inhibiting drugs Raltegravir (also known as Isentress) and Elvitegravir and observed for the first time how these antiretroviral drugs bind to and inactivate integrase.


The new study shows that retroviral integrase has quite a different structure to that which had been predicted based on earlier research. Availability of the integrase structure means that researchers can begin to fully understand how existing drugs that inhibit integrase are working, how they might be improved, and how to stop HIV developing resistance to them.

For further information please contact:


Laura Gallagher
Research Media Relations Manager
Imperial College London
e-mail: l.gallagher@imperial.ac.uk
Telephone: +44 (0)207 594 8432 or ext. 48432
Out of hours duty Press Officer: +44 (0)7803 886 248


Dr Peter P Cherepanov

Department of Medicine
4th Floor, Medical School
Norfolk Place
St Mary's Campus
Tel: +44 (0)20 7594 3655