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Advanced Proteome Informatics of Cancer

Advanced Proteome Informatics of Cancer
癌症高级蛋白质组信息学
批准号:
7871813
负责人:
Philip C Andrews
金额:
$17.17万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-05-01 至 2015-04-30

项目摘要

项目成果

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中文摘要
翻译
描述(由申请人提供):美国国家癌症研究所在癌症蛋白质组学的新技术平台上进行了大量投资,特别是通过人类癌症的小鼠模型和癌症的临床蛋白质组学技术。蛋白质组对于理解癌症的功能基因组学和系统生物学以及发现和验证用于治疗和预防的生物标志物候选物和分子靶点至关重要。复杂的蛋白质组分析需要先进的信息学来处理标本的复杂性,蛋白质浓度的极端动态范围,翻译后修饰,选择性剪接异构体,对各种扰动的反应,以及数据库中的差异。目前生物信息学这一分支学科训练有素的科学家的稀缺性是密歇根大学癌症高级蛋白质组信息学T32培训资助的重点。我们正在建立在我们的成功经验与生物信息学研究生课程,基于大学范围内的计算医学和生物信息学中心(CCMB)。我们现在有31个博士和6个硕士。学生,外加16名博士和14名硕士。毕业生我们的教师和学生是在人类蛋白质组组织(HUPO)倡议,开发和全球部署的Tranche分布式文件共享系统和蛋白质交换,并创建新的算法蛋白质组信息学的领导。我们有一个强大的癌症研究人员,生物信息学家,统计学家,化学家和软件工程师社区,专注于蛋白质组数据分析的主要挑战。学员将来自不同的背景,并将通过课程,研讨会,期刊俱乐部和年度务虚会接受癌症生物学,生物信息学和计算机科学的培训。我们已经取得了实质性的进展,与来自弱势少数民族背景的申请人建立了牢固的关系。在密歇根大学建立癌症高级蛋白质组信息学NCI培训计划将为该领域的独立职业提供一个新的科学家人才库,加强教师研究,并支持NCI目标。 相关性:癌症研究人员正在使用新的蛋白质组学技术生成非常大,复杂的数据集,使他们能够同时研究数千种蛋白质。这种数据雪崩需要在蛋白质组信息学的专业和多学科领域训练有素的科学家。在这一迅速发展的领域,接受培训的科学家人数不足,T32建议解决这一问题。
英文摘要
DESCRIPTION (provided by applicant): The National Cancer Institute has made a substantial investment in new technology platforms for cancer proteomics, especially through the Mouse Models of Human Cancers and the Clinical Proteomic Technologies for Cancer. The proteome is critical to understanding functional genomics and systems biology of cancers and to discovery and validation of biomarker candidates and molecular targets for therapy and prevention. Sophisticated analysis of proteomes requires advanced informatics to deal with the complexity of specimens, the extreme dynamic range of protein concentrations, post-translational modifications, alternative splice isoforms, responses to all sorts of perturbations, and differences in databases. The current scarcity of trained scientists in this subdiscipline of bioinformatics is the focus of this proposed T32 training grant in Advanced Proteome Informatics of Cancer at the University of Michigan. We are building upon our successful experience with the Bioinformatics Graduate Program, based in the university-wide Center for Computational Medicine and Bioinformatics (CCMB). We now have 31 PhD and 6 M.S. students, plus 16 PhD and 14 M.S. graduates. Our faculty and students are in the leadership of Human Proteome Organization (HUPO) initiatives, development and global deployment of the Tranche distributed file-sharing system and the ProteomExchange, and creation of new algorithms for proteome informatics. We have a robust community of cancer researchers, bioinformaticians, statisticians, chemists, and software engineers focused on major challenges in proteome data analysis. Trainees will come from diverse backgrounds and will receive training in cancer biology, bioinformatics, and computer science through courses, seminars, journal club, and annual retreats. We have made substantial progress building strong relationships with sources of applicants from disadvantaged minority backgrounds. Establishment of an NCI training program in Advanced Proteome Informatics of Cancer at the U of M will provide a new pool of scientists well-equipped for independent careers in this field, enhance faculty research, and support NCI goals. RELEVANCE: Very large, complex datasets are being generated by cancer researchers using new proteomics technologies that allow them to study thousands of proteins simultaneously. This avalanche of data requires scientists well-trained in the specialized and multidisciplinary field of Proteome Informatics. Insufficient numbers of scientists are being trained in this rapidly growing field and this T32 proposes to address this issue.
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