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Showing posts with label Identified. Show all posts
Showing posts with label Identified. Show all posts

Monday, July 8, 2013

Genetic signature of fatal Cancer identified

Main Category: Cancer / Oncology
Also Included In: Neurology / Neuroscience;??Genetics
Article Date: 05 Jun 2013 - 1:00 PDT Current ratings for:
Genetic Signature Of Deadly Brain Cancer Identified
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A multi-institutional team of researchers have pinpointed the genetic traits of the cells that give rise to gliomas - the most common form of malignant brain cancer. The findings, which appear in the journal Cell Reports, provide scientists with rich new potential set of targets to treat the disease.

"This study identifies a core set of genes and pathways that are dysregulated during both the early and late stages of tumor progression," said University of Rochester Medical Center (URMC) neurologist Steven Goldman, M.D., Ph.D., the senior author of the study and co-director of the Center for Translational Neuromedicine. "By virtue of their marked difference from normal cells, these genes appear to comprise a promising set of targets for therapeutic intervention."

As its name implies, gliomas arise from a cell type found in the central nervous system called the glial cell. Gliomas progress in severity over time and ultimately become highly invasive tumors known as glioblastomas, which are difficult to treat and almost invariably fatal. Current treatments, which include surgery, radiation therapy, and chemotherapy, can delay disease progression, but ultimately prove ineffective.

Cancer research has been transformed over the past several years by new concepts arising from stem cell biology. Scientists now appreciate that many cancers are the result of rogue stem cells or their offspring, known as progenitor cells. Traditional cancer therapies often do not prevent a recurrence of the disease since they may not effectively target and destroy the cancer-causing stem cells that lie at the heart of the tumors.

Gliomas are one such example. The source of the cancer is a cell found in the brain called the glial progenitor cell. The cells, which arise from and maintain characteristics of stem cells, comprise about three percent of the cell population of the human brain. When these cells become cancerous they are transformed into glioma stem cells, essentially glial progenitor cells whose molecular machinery has gone awry, resulting in uncontrolled cell division.

Goldman and his team have long studied normal glial progenitor cells. These cells produce glia, a category that includes both astrocytes - cells that support the function of neurons - and oligodendrocytes - cells that produces myelin, the fatty insulation that allows the long-distance conduction of neural impulses.

While Goldman's group's work has primarily focused on ways to use glial progenitor cells to treat neurological disorders such as multiple sclerosis, their understanding of the biology of these cells and mastery of the techniques required to sort, identify, and isolate these cells has also enabled them to explore the molecular and genetic changes that transform these cells into cancers.

Using human tissue samples representing the three principal stages of the cancer, the researchers were able to identify and isolate the cancer-inducing stem cells. Working with Goldman, lead authors Romane Auvergne, Ph.D. and Fraser Sim, Ph.D. then compared the gene expression profiles of these cancer stem cells to those of normal glial progenitor cells. The objective was to both pinpoint the earliest genetic changes associated with cancer formation and identify those genes that were unique to the cancer stem cells and were expressed at every stage of disease progression.

Out of a pool over 44,000 tested genes and sequences, the scientists identified a small set of genes in the cancerous glioma progenitor cells that were over-expressed at all stages of malignancy. These genes formed a unique "signature" that identified the tumor progenitor cells and enabled the scientists to define a corresponding set of potential therapeutic targets present throughout all stages of the cancer.

"One of the key things you are looking for in drug development in cancer is a protein or gene that is over-expressed, so that you can attempt to achieve therapeutic benefit by inhibiting it," said Goldman.

The researchers chose to test this hypothesis by targeting one such gene, called SIX1, which was highly overexpressed in the glioma progenitor cells. While this particular gene is active in the early development of the nervous system, it had not been observed in the adult brain before. However, SIX1 signaling has been associated with breast and ovarian cancer, raising the possibility of its contribution to brain cancer as well. This turned out to indeed be the case. When the researchers blocked - or knocked down - the expression of this gene, the tumor cells ceased growing, and implanted tumors shrank.

"This study gives us a blueprint to develop new therapies," said Goldman. "We can now devise a strategy to systematically and rationally analyze - and eliminate - glioma stem and progenitor cells using compounds that may selectively target these cells, relative to the normal glial progenitors from which they derive. By targeting genes like SIX1 that are expressed at all stages of glioma progression, we hope to be able to effectively treat gliomas regardless of their stage of malignancy. And by targeting the glioma-initiating cells in particular, we hope to lessen the likelihood of recurrence of these tumors, regardless of the stage at which we initiate treatment."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our cancer / oncology section for the latest news on this subject. Additional authors include Su Wang, Devin Chandler-Militello, Jaclyn Burch, Yazan Al Fanek, Danielle Davis, Abdellatif Benraiss, Mahlon Johnson, and Kevin Walter with URMC, Pragathi Achanta and Alfredo Quinones-Hinojosa with the Johns Hopkins University School of Medicine, Heidi Ford with the University of Colorado Denver, and Sridaran Natesan with Sanofi-Aventis Pharmaceuticals. Sim is now at the University at Buffalo School of Medicine and Biomedical Sciences. The study was supported with grants from the National Institute of Neurological Disorders and Stroke, the Dr. Miriam and Sheldon G. Adelson Medical Research Foundation, the New York Stem Cell Research Board, the James S. McDonnell Science Foundation, and Sanofi-Aventis Pharmaceuticals.
University of Rochester Medical Center Please use one of the following formats to cite this article in your essay, paper or report:

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Sunday, July 7, 2013

Pathways Identified That Lead To Creation Of Myofibroblasts, That Cause Destructive Runaway Scarring

Main Category: Cancer / Oncology
Also Included In: Pancreatic Cancer
Article Date: 03 Jul 2013 - 1:00 PDT Current ratings for:
Pathways Identified That Lead To Creation Of Myofibroblasts, That Cause Destructive Runaway Scarring
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Scientists have tracked down and quantified the diverse origins of cells that drive fibrosis, the incurable, runaway wound-healing that scars and ultimately destroys organs such as the lungs, liver and kidneys.

Findings from research conducted at Beth Israel Deaconess Medical Center, Harvard Medical School and Massachusetts Institute of Technology in Boston and continued at The University of Texas MD Anderson Cancer Center are reported in an advance online publication at Nature Medicine.

"Answering a fundamental question about the origin of these cells by identifying four separate pathways involved in their formation allows us to look at ways to block those pathways to treat fibrosis," said senior author Raghu Kalluri, Ph.D., M.D., MD Anderson chair and professor of Cancer Biology. "It's highly unlikely that a single drug will work."

"In addition to being lethal in its own right, fibrosis is a precursor for the development of cancer and plays a role in progression, metastasis and treatment resistance," Kalluri said. "In some cancers, such as pancreatic cancer, up to 95 percent of tumors consist of fibrotic stroma."

Working in genetic mouse models of kidney fibrosis, Kalluri and colleagues identified four sources of cells called myofibroblasts, the dominant producers of collagen. Collagen normally connects damaged tissue and serves as scaffolding for wound-healing. As healing occurs, myofibroblasts and collagen usually diminish or disappear.

In fibrosis, collagen production marches on. While inflammation-inhibiting drugs can sometimes slow its progress, fibrosis now is treatable only by organ transplant.

Myofibroblasts have four types of parents

The researchers employed a fate-mapping strategy to track cells on their way to becoming myofibroblasts. In fate mapping, the promoter of a protein expresses a color inside a cell that remains with the cell no matter what happens to it until it dies, Kalluri said.

This was particularly important because two of the four sources of myofibroblasts start out as another cell type and differentiate into the collagen-producing cells.

Their experiments showed: Half of all myofibroblasts are produced by the proliferation of pre-existing resting fibroblasts. Another 35 percent are produced by mesenchymal stem cells that originate in the bone marrow, migrate to the "wound" site, and then differentiate into myofibroblasts. An additional 10 percent are the products of endothelial to mesenchymal transition (EndMT), in which blood vessel cells change into mesenchymal cells, then become myofibroblasts. The final 5 percent come from epithelial to mesenchymal transition (EMT), in which functional cells of an organ sometimes behave like mesenchymal cells and myofibroblasts. "These differentiation pathways provide leads for drug targets," Kalluri said.

"Combining an antiproliferation drug with therapies that block one or more differentiation pathways could provide a double hit to control fibrosis. We hope to synergize these pathways for the most effective therapeutic response."

Recruitment from the bone marrow, EMT and EndMT appear to rely on transforming growth factor beta 1 (TGF-B1) to differentiate into myofibroblasts.

Pericytes are not involved

Some earlier descriptive studies implicated pericytes - connective, contractile cells that surround blood vessels - in the creation of myofibroblasts. The researchers tested pericytes via fate-mapping and found that they're not involved in myofibroblast generation.

Deleting pericytes did not improve kidney fibrosis or change the recruitment of myofibroblasts.

While their research focused on kidney fibrosis, the scientists believe their findings will be applicable to other types of fibrosis.

"Recruitment of fibroblasts is heterogonous. The sources are likely to be the same for lung or liver fibrosis, but the ratios may be different," Kalluri said. "Now we need to go into those other organs and establish a baseline of what we're facing like we did in kidney fibrosis."

Kalluri holds the Rebecca Meyer Brown and Joseph Mellinger Brown Chair in Basic Science Research and also and directs MD Anderson's Metastasis Research Center.

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our cancer / oncology section for the latest news on this subject. Co-authors with Kalluri are lead author Valeria LeBleu, Ph.D., and Hikaru Sugimoto, Ph.D., of MD Anderson's Department of Cancer Biology and Metastasis Research Center and formerly of the Department of Matrix Biology at Beth Israel Deaconess Medical Center, the home of co-authors Gangadhar Taduri, M.D., Joyce O'Connell, Ph.D.,Vesselina Cooke, Ph.D., and Craig Woda, M.D.

This research was funded by grants from the National Institutes of Health (DK55001, DK81976, CA125550, CA155370 and CA151925, 2T32DK007760-11, (5T32HL007374-30), the U.S. National Research Service Award F32 Ruth Kirschstein Postdoctoral Fellowship ((5F32DK082119-02) and the U.S. Department of Defense Breast Cancer Predoctoral Traineeship Award.

University of Texas M. D. Anderson Cancer Center

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5 Jul. 2013. APA
University of Texas M. D. Anderson Cancer Center. (2013, July 3). "Pathways Identified That Lead To Creation Of Myofibroblasts, That Cause Destructive Runaway Scarring." Medical News Today. Retrieved from
http://www.medicalnewstoday.com/releases/262779.php.

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Wednesday, June 19, 2013

4 New Genetic Risk Factors Identified For Testicular Cancer

Main Category: Cancer / Oncology
Also Included In: Men's Health;??Genetics
Article Date: 14 May 2013 - 1:00 PDT Current ratings for:
4 New Genetic Risk Factors Identified For Testicular Cancer
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A new study looking at the genomes of more than 13,000 men identified four new genetic variants associated with an increased risk of testicular cancer, the most commonly diagnosed type in young men today. The findings from this first-of-its-kind meta-analysis were reported online in Nature Genetics by researchers at the Perelman School of Medicine at the University of Pennsylvania.

The discovery of these genetic variations - chromosomal "typos," so to speak - could ultimately help researchers better understand which men are at high risk and allow for early detection or prevention of the disease.

"As we continue to cast a wider net, we identify additional genetic risk factors, which point to new mechanisms for disease," said Katherine L. Nathanson, MD, associate professor in the division of Translational Medicine and Human Genetics within the department of Medicine. "Certain chromosomal regions, what we call loci, are tied into testicular cancer susceptibility, and represent a promising path to stratifying patients into risk groups - for a disease we know is highly heritable."

Tapping into three genome-wide association studies (GWAS), the researchers, including Peter A. Kanetsky, PhD, MPH, an associate professor in the department of Biostatistics and Epidemiology, analyzed 931 affected individuals and 1,975 controls and confirmed the results in an additional 3,211 men with cancer and 7,591 controls. The meta-analysis revealed that testicular germ cell tumor (TGCT) risk was significantly associated with markers at four loci - 4q22, 7q22, 16q22.3, and 17q22, none of which have been identified in other cancers. Additionally, these loci pose a higher risk than the vast majority of other loci identified for some common cancers, such as breast and prostate.

This brings the number of genomic regions associated with testicular cancer up to 17 - including eight new ones reported in another study in this issue of Nature Genetics.

Testicular cancer is relatively rare; however, incidence rates have doubled in the past 40 years. It is also highly heritable. If a man has a father or son with testicular cancer, he has a four-to six-fold higher risk of developing it compared to a man with no family history. That increases to an eight-to 10-fold higher risk if the man has a brother with testicular cancer.

Given this, researchers continue to investigate genetic variants and their association with cancer.

In 2009, Dr. Nathanson and colleagues uncovered variation around two genes - KITLG and SPRY4 - found to be associated with an increased risk of testicular cancer. The two variants were the first striking genetic risk factors found for this disease at the time. Since then, several more variants have been discovered, but only through single GWAS studies.

"This analysis is the first to bring several groups of data together to identify loci associated with disease," said Dr. Nathanson, "and represent the power of combining multiple GWAS to better identify genetic risk factors that failed to reach genome-wide significance in single studies."

The team also explains how the variants associated with increased cancer risk are the same genes associated with chromosomal segregation. The variants are also found near genes important for germ cell development. These data strongly supports the notion that testicular cancer is a disorder of germ cell development and maturation.

"TGCT is unique in that many of the loci are very good biological candidates due to their role in male germ cell development," said Dr. Nathanson. "Disruptions in male germ cell development lead to tumorigenesis, and presumably also to infertility. These conditions have been linked before, epidemiologically, and genes implicated in both of our prior studies, but this study reinforces that connection."

Article adapted by Medical News Today from original press release. Click 'references' tab above for source.
Visit our cancer / oncology section for the latest news on this subject. This study was supported in part by Intramural Research Program of the National Cancer Institute and the National Institutes of Health grant (R01CA114478).
University of Pennsylvania School of Medicine Please use one of the following formats to cite this article in your essay, paper or report:

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University of Pennsylvania School of Medicine. "4 New Genetic Risk Factors Identified For Testicular Cancer." Medical News Today. MediLexicon, Intl., 14 May. 2013. Web.
20 May. 2013. APA

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'4 New Genetic Risk Factors Identified For Testicular Cancer'

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Note: Any medical information published on this website is not intended as a substitute for informed medical advice and you should not take any action before consulting with a health care professional. For more information, please read our terms and conditions.



View the original article here