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Showing posts with label complex. Show all posts
Showing posts with label complex. Show all posts

Thursday, July 11, 2013

Study Shows Protein Complex May Play Role In Preventing Many Forms Of Cancer

Main Category: Cancer / Oncology
Also Included In: Genetics
Article Date: 08 May 2013 - 0:00 PDT Current ratings for:
Study Shows Protein Complex May Play Role In Preventing Many Forms Of Cancer
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Researchers at the Stanford University School of Medicine have identified a group of proteins that are mutated in about one-fifth of all human cancers. The finding suggests that the proteins, which are members of a protein complex that affects how DNA is packaged in cells, work to suppress the development of tumors in many types of tissues.

The broad reach of the effect of mutations in the complex, called BAF, rivals that of another well-known tumor suppressor called p53. It also furthers a growing notion that these so-called chromatin-regulatory complexes may function as much more than mere cellular housekeepers.

"Although we knew that this complex was likely to play a role in preventing cancer, we didn't realize how extensive it would be," said postdoctoral scholar Cigall Kadoch, PhD. "It's often been thought that these complexes play supportive, maintenance-like roles in the cell. But this is really changing now."

Kadoch shares lead authorship of the study with postdoctoral scholar Diana Hargreaves, PhD. Gerald Crabtree, MD, professor of developmental biology and of pathology, is the senior author of the study, which was published online in Nature Genetics.

Chromatin-regulatory complexes work to keep DNA tightly condensed, while also granting temporary access to certain portions for replication or to allow the expression of genes necessary for the growth or function of the cell.

Members of Crabtree's laboratory have been interested in BAF complexes and their function for many years. Recently, they reported in the journal Nature that switching subunits within these complexes can convert human fibroblasts to neurons, which points to their instructive role in development and, possibly, cancer.

"Somehow these chromatin-regulatory complexes manage to compress nearly two yards of DNA into a nucleus about one one-thousandth the size of a pinhead," said Crabtree, who is also a member of the Stanford Cancer Institute and a Howard Hughes Medical Institute investigator. "And they do this without compromising the ability of the DNA to be replicated and selectively expressed in different tissues - all without tangling. In 1994 we reported that complexes of this type were likely to be tumor suppressors. Here we show that they are mutated in nearly 20 percent of all human malignancies thus far examined."

The researchers combined biochemical experiments with the data mining of 44 pre-existing studies to come to their conclusions, which would not have been possible without the advent of highly accurate, genome-wide DNA sequencing of individual human tumor samples. Interestingly, mutations to certain subunits, or particular combinations of mutations in the complex's many subunits, seem to herald the development of specific types of cancer - favoring the development of ovarian versus colon cancer, for example.

The importance of the BAF complex as a tumor suppressor is further emphasized by the fact that, in some cases, a mutation in one subunit is sufficient to initiate cancer development.

"For example," said Kadoch, "a type of mutation called a chromosomal translocation in the gene encoding one of these newly identified subunits, SS18, is known to be the hallmark of a cancer called synovial sarcoma. It is clearly the driving oncogenic event and very often the sole genomic abnormality in these cancers." Kadoch and Crabtree published a study in March in Cell uncovering the mechanism and functional consequences of BAF complex perturbation in synovial sarcoma.

The startling prevalence of mutations in the BAF complex was discovered when Kadoch conducted a series of experiments to determine exactly which proteins in the cell were true subunits of the complex. (The exact protein composition of the large complex varies among cell types and species.) Kadoch used an antibody that recognized one core component to purify intact BAF complexes in various cell types, including embryonic stem cells and skin, nerve and other cells. She then analyzed the various proteins isolated by the technique.

Using this method, Kadoch identified seven proteins previously unknown to be BAF components. She and Hargreaves then turned to previously published studies in which the DNA from a variety of human tumors had been sequenced to determine how frequently any of the members of the complex were mutated.

The results, once the newly discovered members were included, were surprising: 19.6 percent of all human tumors displayed a mutation in at least one of the complex's subunits. In addition, for some types of cancers (such as synovial sarcoma), every individual tumor sample examined had a mutation in a BAF subunit. The results suggest that the BAF complex, when unmutated, plays an important protective role against the development of cancer in many different tissues.

The researchers are now focused on learning how the mutations affect the tumor-suppressing activity of the BAF complex.

"We certainly want to further our understanding of the mechanism behind these findings," said Hargreaves. "Do they promote cancer development by inhibiting the proper progression of the cell cycle? Or perhaps they affect how the complex is positioned on the DNA. We'd like to determine how to recapitulate some of these mutations experimentally to see what types of defects they introduce into the complex."

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. Other Stanford authors of the study include postdoctoral scholar Courtney Hodges, PhD, and former lab members Laura Elias, PhD, and Lena Ho, PhD.

The research was funded by the National Institutes of Health (grants NS046789, CA163915 and F32HD072627), the National Science Foundation, the Howard Hughes Medical Institute and the Helen Hay Whitney Foundation.

Stanford University Medical Center

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Saturday, June 29, 2013

Understanding of complex diseases likely to improve following the unexpected discovery of the ways Cells Move

Main category: Cancer / Oncology
Also included in: respiratory / asthma;??Biology / biochemistry
Article Date: June 25, 2013 - 1:00 PDT current ratings for:
Understanding of complex diseases likely to improve following the unexpected discovery of the ways Cells Move
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A new discovery about how cells move within the organization can provide scientists with crucial information about the mechanisms of diseases such as the spreading of the cancer or constriction of the Airways caused by asthma. Led by researchers from the Harvard School of Public Health (HSPH) and the Institute for bioengineering of Catalonia (IBEC), investigators found that the epithelial cells - the type that form a barrier between the inside and the outside of the body, such as skin cells - move group, powered by forces both of in and from neighbouring cells - to fill the empty spaces that they encounter.

The study appears in Nature Materials advanced online edition.

"We have tried to understand the fundamental relationship between cellular movements collective and collective forces of cell phones, which may occur during the invasion of the cancer cells, for example. But, in so doing, we are fallen on a phenomenon that was totally unexpected, "said lead author Jeffrey Fredberg, Professor of Bioengineering and physiology to the investigator HSPH Department of Environmental Health and co-Minister of HSPH molecular laboratory and integrative cellular dynamics.

Biologists, engineers and physicists at HSPH and IBEC worked together to shed light on the collective cell movement because it plays a key role in functions such as the healing of wounds, organ development and tumor growth. Using a technique called stress monolayer microscopy--which they invented themselves - they have measured the forces affecting a single layer of epithelial cells in motion. They examined cells speed and direction as traction - how certain cells either pull or push themselves and thus force the collective movement.

As they expected, the researchers found that when an obstacle was placed in the path of a layer of advanced cell - in this case, a gel that provided no traction - cells settled around him, closely hugging the sides of the gel as they passed. However, the researchers also found something amazing - cells, in addition to moving forward, continued to collectively back to frost, as if the desire to fill the space empty. Researchers have dubbed this movement "kenotaxis", Greek words "keno" (empty) and "taxi" (arrangement), because it seemed that cells are trying to fill a void.

This new discovery could help researchers to better understand the behaviour of the cell - and evaluate the potential influence that behavior - in a variety of complex diseases, such as cancer, asthma, cardiovascular diseases, developmental anomalies and glaucoma. The findings could also help with regenerative medicine and tissue engineering, which rely on cell migration.

In carcinomas, for example - who represent 90% of all cancers and involve epithelial cells - new information on cell movement could improve understanding of how cancer cells migrate through the body. Research on asthma could also get a boost, because scientists believe the migration of epithelial cells damaged in the lungs are involved in narrowing of the Airways caused by the disease.

"Kenotaxis is a property of the cell collective, not the individual cell," said Jae Hun Kim, first author of the study. "It was amazing to us that the collective cell can organize itself draw systematically in one direction while moving consistently in a quite different direction. ''

Article adapted by Medical News Today press release original. Click on "references" tab above for the source.
Visit our cancer / Oncology section for the latest news on this subject. Other authors HSPH included James Butler, senior lecturer on physiology in the Department of health environmental and investigator co-Minister of the laboratory; and researchers Dhananjay Tambe, Enhua Zhou Chan Young Park, Monirosadat Sadati, Park Jin-Ah, Bomi Gweon and Emil Millet.

Support for the study came from the Spanish Ministry of Science and Innovation (BFU2012-38146 FPU fellowship XS) and the Swiss National Science Foundation (PBEZP2-140047), the National Research Foundation of Korea (2012R1A6A3A03040450), the European Research Council (Grant Agreement 242993) Parker B. Francis (RK Fellowship), American Heart Association (13SDG14320004) and the National Institutes of Health (R01HL102373, R01HL107561).

"Propulsion and navigation within the advanced single layer sheet," Jae Hun Kim, Xavier Serra-Picamal, Dhananjay T. Tambe, Enhua H. Zhou, Chan Young Park, Monirosadat Sadati, Park Jin-Ah, Krishnan Ramaswamy, Bomi Gweon, Emil Millet, James P. Butler, Xavier Trepat, Jeffrey J. Fredberg, Nature of materials, online, June 23, 2013

Harvard School of Public Health

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Harvard School of Public Health. "Understanding of complex diseases likely to improve following the unexpected discovery of the ways Cells Move." Medical news today. MediLexicon, international airport, 25 June 2013. Web.
June 25, 2013. APA

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?Understanding of complex diseases likely to improve following the unexpected discovery of the ways cells Move?

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View the original article here