Thursday, 6 November 2008

Scientists Decode Cancer Patient's Complete Genome

Scientists Decode Cancer Patient's Complete Genome Wednesday, 05 November 2008 For the first time, scientists have decoded the complete DNA of a cancer patient and traced her disease - acute myelogenous leukaemia - to its genetic roots. A large research team at the Genome Sequencing Center and the Siteman Cancer Center at Washington University School of Medicine in St. Louis sequenced the genome of the patient - a woman in her 50s who ultimately died of her disease - and the genome of her leukaemia cells, to identify genetic changes unique to her cancer. The study is reported in the Nov. 6 issue of the journal Nature. The pioneering work sets the stage for using a more comprehensive, genome-wide approach to unravel the genetic basis of cancer. "Our work demonstrates the power of sequencing entire genomes to discover novel cancer-related mutations," says senior author Richard K. Wilson, Ph.D., director of Washington University's Genome Sequencing Center. "A genome-wide understanding of cancer, which is now possible with faster, less expensive DNA sequencing technology, is the foundation for developing more effective ways to diagnose and treat cancer." The researchers discovered just 10 genetic mutations in the patient's tumour DNA that appeared to be relevant to her disease; eight of the mutations were rare and occurred in genes that had never been linked to AML. They also showed that virtually every cell in the tumour sample had nine of the mutations, and that the single genetic alteration that occurred less frequently was likely the last to be acquired. The scientists suspect that all the mutations were important to the patient's cancer. Like most cancers, AML – a cancer of blood-forming cells in the bone marrow – arises from mutations that accumulate in people's DNA over the course of their lives. However, little is known about the precise nature of those changes and how they disrupt biological pathways to cause the uncontrolled cell growth that is the hallmark of cancer. Previous efforts to decode individual human genomes have looked at common points of DNA variation that may be relevant for disease risk. What is striking about the new research is that the scientists were able to sift through the 3 billion pairs of chemical bases that make up the human genome to pull out the mutations that contributed to the patient's cancer. "Until now, no one has sequenced a patient's genome to find all the mutations that are unique to that person's disease," says lead author Timothy Ley, M.D., a haematologist and the Alan A. and Edith L. Wolff Professor of Medicine. "We didn't know what we would find, but we felt that the answers to why this patient had AML had to be embedded in her DNA." To date, scientists involved in large-scale genetic studies of cancer have not gone so far as to do a full side-by-side comparison of the genomes of normal cells and tumour cells from the same patient. Rather, most earlier studies have involved the sequencing of genes with known or suspected relationships to cancer, a method that likely misses key mutations. "The determination of the first complete DNA sequence of a human cancer genome, and its comparison to normal tissues of the same individual, is a true landmark in cancer research," says geneticist Francis Collins, M.D., Ph.D., former director of the National Human Genome Research Institute. "In the past, cancer researchers have been 'looking under the lamppost' to find the causes of malignancy – but now the team from Washington University has lit up the whole street. This achievement ushers in a new era of comprehensive understanding of the fundamental nature of cancer, and offers great promise for the development of powerful new approaches to diagnosis, prevention and treatment." An estimated 13,000 cases of AML will be diagnosed in the United States this year, and some 8,800 will die of the disease. It occurs most often among those age 60 or older and becomes more difficult to treat as patients age. According to the American Cancer Society, the five-year survival rate for AML is 21 percent.


AML cells Acute myelogenous leukaemia cells. Credit: Washington University.


Despite advances in the genetic understanding of many cancers, scientists have learned very little about the genetic basis of AML. "After years of genetic studies of AML looking at genes of interest, we were getting no closer to uncovering the molecular underpinnings of the disease," Ley says. "We felt that with new genome sequencing technology, now was the time to take a whole-genome approach." Based on genetic testing with traditional methods at the study's outset, the patient was known to have two mutations that are common among AML patients, an indicator she had a typical subtype of the disease, and one of the many reasons why her genome was selected for sequencing. The researchers sequenced the patient's full genome, meaning DNA from both sets of chromosomes, using genetic material obtained from a skin sample. This gave the scientists a reference DNA sequence to which they could compare genetic alterations in the patient's tumour cells, taken from a bone marrow sample that was comprised only of tumour cells. Both samples were obtained before the patient received cancer treatment, which can further damage DNA. The scientists then looked for genetic differences – points of single base changes in the DNA – in the patient's tumour genome compared with her normal genome. Of the nearly 2.7 million single nucleotide variants in the patient's tumour genome, almost 98 percent also were detected in DNA from the patient's skin sample, thus narrowing the number of variants that required further study to about 60,000. Using sophisticated software and analytical tools, some of which the researchers developed specifically for this project, they identified the 10 mutations (including the two previously known genetic mutations that are common to her leukaemia subtype but do not directly cause the disease) by looking for single base DNA changes that altered the instructions for making proteins. Of the eight novel mutations discovered, three were found in genes that normally act to suppress tumour growth. One of these mutations is in the PTPRT tyrosine phosphatase gene, which is frequently altered in colon cancer. Four other mutated genes appear to be involved in molecular pathways that promote cancer growth. In particular, one mutation was found in a gene family that also is expressed in embryonic stem cells and may be involved with cell self-renewal. Interestingly, the researchers note, self-renewal is thought to be an essential feature of leukaemia cells. Another gene alteration appears to affect the transport of drugs into the cell, and may have contributed to the patient's chemotherapy resistance. "We're still analyzing the patient's non-coding DNA and expect to find a number of additional relevant mutations in this portion of the genome," says Elaine Mardis, Ph.D., co-lead author of the study and co-director of the Genome Sequencing Center. "But the role of these non-coding mutations will be more of a challenge to elucidate because we do not yet fully understand the function of this part of the genome." The team also looked to see if the eight novel mutations in the patient's tumour genome also occurred in the DNA of tumour samples from 187 additional AML patients. None of those tumours had any of the eight mutations. "This suggests that there is a tremendous amount of genetic diversity in cancer, even in this one disease," Wilson says. "There are probably many, many ways to mutate a small number of genes to get the same result, and we're only looking at the tip of the iceberg in terms of identifying the combinations of genetic mutations that can lead to AML." Based on their current understanding of cancer, the researchers suspect that the mutations occurred sequentially. The first mutation gave the cell a slight tendency toward cancer, and then one by one, the other genetic alterations were acquired, with each contributing something to the cancer. One mutation, in the FLT3 gene, was not present in all of the tumour cells, and they suspect that it was the last one to occur. "The final mutation may represent a tipping point that causes the cancer cells to become more dangerous," Ley says. The team is now sequencing the genomes of additional patients with AML, and they are also planning to expand the whole-genome approach to breast and lung cancers. This type of approach is exactly what is needed to understand the genetic basis of cancer, an essential first step to developing targeted therapies, says Brian Druker, M.D., whose research helped identify the targeted drug Gleevec as a promising therapy for chronic myelogenous leukaemia. Druker, the director of the Oregon Health & Science University Cancer Institute and a Howard Hughes Medical Institute investigator, was not involved in the current study. "This tour-de-force effort identified a small number of mutations in genes that no one predicted, and their uniqueness for this patient begins to give us a glimmer of the genetic complexity and diversity of this disease," he says. "Although this information doesn't yet tell us how to treat patients, it is a critical first step along that path. It sets the stage for large scale sequencing of cancer genomes and unravelling the mystery of cancer." Reference: DNA sequencing of a cytogenetically normal acute myeloid leukaemia genome Timothy J. Ley, Elaine R. Mardis, Li Ding, Bob Fulton, Michael D. McLellan, Ken Chen, David Dooling, Brian H. Dunford-Shore, Sean McGrath, Matthew Hickenbotham, Lisa Cook, Rachel Abbott, David E. Larson, Dan C. Koboldt, Craig Pohl, Scott Smith, Amy Hawkins, Scott Abbott, Devin Locke, LaDeana W. Hillier, Tracie Miner, Lucinda Fulton, Vincent Magrini, Todd Wylie, Jarret Glasscock, Joshua Conyers, Nathan Sander, Xiaoqi Shi, John R. Osborne, Patrick Minx, David Gordon, Asif Chinwalla, Yu Zhao, Rhonda E. Ries, Jacqueline E. Payton, Peter Westervelt, Michael H. Tomasson, Mark Watson, Jack Baty, Jennifer Ivanovich, Sharon Heath, William D. Shannon, Rakesh Nagarajan, Matthew J. Walter, Daniel C. Link, Timothy A. Graubert, John F. DiPersio & Richard K. Wilson Nature 456, 66-72, 6 November 2008, doi:10.1038/nature07485 ......... ZenMaster


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Wednesday, 5 November 2008

More 'Junk' DNA Proves Functional

Helps explain human differences from other species Tuesday, 04 November 2008 In a paper published in Genome Research on Nov. 4, scientists at the Genome Institute of Singapore (GIS) report that what was previously believed to be "junk" DNA is one of the important ingredients distinguishing humans from other species. More than 50 percent of human DNA has been referred to as "junk" because it consists of copies of nearly identical sequences. A major source of these repeats is internal viruses that have inserted themselves throughout the genome at various times during mammalian evolution. Using the latest sequencing technologies, GIS researchers showed that many transcription factors, the master proteins that control the expression of other genes, bind specific repeat elements. The researchers showed that from 18 to 33% of the binding sites of five key transcription factors with important roles in cancer and stem cell biology are embedded in distinctive repeat families. Over evolutionary time, these repeats were dispersed within different species, creating new regulatory sites throughout these genomes. Thus, the set of genes controlled by these transcription factors is likely to significantly differ from species to species and may be a major driver for evolution. This research also shows that these repeats are anything but "junk DNA," since they provide a great source of evolutionary variability and might hold the key to some of the important physical differences that distinguish humans from all other species. The GIS study also highlighted the functional importance of portions of the genome that are rich in repetitive sequences. "Because a lot of the biomedical research use model organisms such as mice and primates, it is important to have a detailed understanding of the differences between these model organisms and humans in order to explain our findings," said Guillaume Bourque, Ph.D., GIS Senior Group Leader and lead author of the Genome Research paper. "Our research findings imply that these surveys must also include repeats, as they are likely to be the source of important differences between model organisms and humans," added Dr. Bourque. "The better our understanding of the particularities of the human genome, the better our understanding will be of diseases and their treatments." "The findings by Dr. Bourque and his colleagues at the GIS are very exciting and represent what may be one of the major discoveries in the biology of evolution and gene regulation of the decade," said Raymond White, Ph.D., Rudi Schmid Distinguished Professor at the Department of Neurology at the University of California, San Francisco, and chair of the GIS Scientific Advisory Board. "We have suspected for some time that one of the major ways species differ from one another – for instance, why rats differ from monkeys – is in the regulation of the expression of their genes: where are the genes expressed in the body, when during development, and how much do they respond to environmental stimuli," he added. "What the researchers have demonstrated is that DNA segments carrying binding sites for regulatory proteins can, at times, be explosively distributed to new sites around the genome, possibly altering the activities of genes near where they locate. The means of distribution seem to be a class of genetic components called 'transposable elements' that are able to jump from one site to another at certain times in the history of the organism. The families of these transposable elements vary from species to species, as do the distributed DNA segments which bind the regulatory proteins." Dr. White also added: "This hypothesis for formation of new species through episodic distributions of families of gene regulatory DNA sequences is a powerful one that will now guide a wealth of experiments to determine the functional relationships of these regulatory DNA sequences to the genes that are near their landing sites. I anticipate that as our knowledge of these events grows, we will begin to understand much more how and why the rat differs so dramatically from the monkey, even though they share essentially the same complement of genes and proteins." Genome Institute of Singapore: The Genome Institute of Singapore (GIS) is a member of the Agency for Science, Technology and Research (A*STAR). It is a national initiative with a global vision that seeks to use genomic sciences to improve public health and public prosperity. Established in 2001 as a centre for genomic discovery, the GIS will pursue the integration of technology, genetics and biology towards the goal of individualized medicine. The key research areas at the GIS include Systems Biology, Stem Cell & Developmental Biology, Cancer Biology & Pharmacology, Human Genetics, Infectious Diseases, Genomic Technologies, and Computational & Mathematical Biology. The genomics infrastructure at the GIS is utilized to train new scientific talent, to function as a bridge for academic and industrial research, and to explore scientific questions of high impact. Agency for Science, Technology and Research (A*STAR): A*STAR is Singapore's lead agency for fostering world-class scientific research and talent for a vibrant knowledge-based Singapore. A*STAR actively nurtures public sector research and development in Biomedical Sciences, Physical Sciences and Engineering, with a particular focus on fields essential to Singapore's manufacturing industry and new growth industries. It oversees 22 research institutes, consortia and centres, and supports extramural research with the universities, hospital research centres and other local and international partners. At the heart of this knowledge intensive work is human capital. Top local and international scientific talent drive knowledge creation at A*STAR research institutes. The agency also sends scholars for undergraduate, graduate and post-doctoral training in the best universities, a reflection of the high priority A*STAR places on nurturing the next generation of scientific talent. Reference: Evolution of the mammalian transcription factor binding repertoire via transposable elements Guillaume Bourque, Bernard Leong, Vinsensius B. Vega, Xi Chen, Yen Ling Lee, Kandhadayar G. Srinivasan, Joon-Lin Chew, Yijun Ruan, Chia-Lin Wei, Huck Hui Ng, and Edison T. Liu Genome Research, Nov. 4, 2008 See also: Study Finds Value in 'Junk' DNA CellNEWS - Friday, 17 October 2008 ......... ZenMaster


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Tuesday, 4 November 2008

Effective HPV Vaccine Needed for Both Men and Women

Effective HPV Vaccine Needed for Both Men and Women Monday, 03 November 2008 A call to explore a broader use of HPV (human papillomavirus) vaccines and the validation of a simple oral screening test for HPV-caused oral cancers are reported in two studies by a Johns Hopkins Kimmel Cancer Center investigator. Leading HPV expert Maura Gillison, M.D., Ph.D., reports her latest work in the November 3, 2008, journal Clinical Cancer Research and in a Centers for Disease Control and Prevention (CDC) monograph. The CDC report on HPV-associated cancers appears on line November 3 and in the November 15, 2008, supplement edition of Cancer. She was the first to identify HPV infection as the cause of certain oral cancers and who identified multiple sex partners as the most important risk factor for these cancers. In the CDC report, believed to be the first and most comprehensive assessment of HPV-associated cancer data in the United States, investigators analyzed cancer registry data from 1998-2003 and found 25,000 cancer cases each year occurred at cancer sites associated with HPV infection. In additional analysis, Gillison and colleagues at the National Cancer Institute identified HPV infection as the underlying cause of approximately 20,000 of these cancers. Gillison and team found approximately 20,000 cases of cancer in the United States each year are caused by HPV infection. Oral cancers are the second most common type of HPV-associated cancers and are increasing in incidence in the U.S., particularly among men. Add to that anal, penile, vaginal, and vulvar cancers that are also linked to HPV infection, and Gillison says these cancers, when combined, equal the number of cervical cancers, the most common and well known of the cancers caused by HPV. While about one-quarter of HPV-linked cancers occur in men, vaccines are currently approved only for use in girls and young women for cervical cancer prevention. "We need to have a more comprehensive discussion of the potential impact the HPV vaccine could have on cancer rates among men and women in this country," says Gillison, associate professor of oncology. "Currently available HPV vaccines have the potential to reduce the rates of HPV-associated cancers, like oral and anal cancers, that are currently on the rise and for which there no effective or widely-applied screening programs." Gillison notes, however, that studies are needed to confirm that the vaccine effectively prevents HPV infections that lead to oral and anal cancers. Gillison's findings were part of a project known as ABHACUS (Assessing the Burden of Human Papillomavirus-Associated Cancers). The data studied came from the CDC's National Program of Cancer Registries and the National Cancer Institute's Surveillance, Epidemiology, and End Results program. More than 80 investigators from across the country participated in the project, which addressed a variety of HPV-cancer associated issues, including racial disparity, economic impact, behavioural risk factors, and cancer mortality. Other than prevention, early detection is held by cancer experts as the best way to control cancer. In the Clinical Cancer Research study, the first to track the disease and related oral infections over an extended period, Gillison found that simple "swish and spit" oral rinses can successfully track oral HPV infection over time. These findings open the door to a potential, non-invasive screening test to detect the disease and monitor for tumour recurrence. Head and neck cancer is the broad term for a variety of cancers of the oral cavity, including the tonsils, base of the tongue, and the side and back wall of the throat. The study found that oral rinses successfully detected high-risk HPV infections in patients with HPV 16-positive head and neck cancers for up to five years after treatment for their cancer. Gillison says the findings indicate a high rate of persistent infection and reaffirms the connection between high-risk types of HPV and HPV-positive head and neck cancers. In the study, the researchers used oral rinses to collect cells shed from inside the mouths of 135 head and neck cancer patients. The researchers genetically sequenced the DNA obtained from the rinses and tumour samples to identify those with HPV-positive cancers and determine the HPV type. There are approximately 120 types of HPV, but HPV 16 is one of the two most common associated with cancer. The analysis revealed 44 patients with HPV 16-positive tumours and found that these patients were more likely to have continuing oral HPV 16 infections both before and after cancer treatment. While this study did not link the continued post-treatment infections to tumour recurrence, it was noted that patients with high-risk oral HPV infections prior to therapy, maintained high rates of infection after completing therapy. The team plans further, long-term research to determine if this continued infection leads to cancer recurrence. In 2000, Gillison identified HPV-positive head and neck cancer as a distinct subtype of the disease and linked it to improved survival. "There is no question of cause," says Gillison. "It has now become a question of tracking the infection over time to identify those at risk of developing cancer or cancer recurrence." See also: CDC Releases First Estimate of Human Papillomavirus-Associated Cancer Data CDC News - November 3, 2008 ......... ZenMaster


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