课题基金 / 基金详情

Personalized cancer-specific networks

Personalized cancer-specific networks
个性化癌症特异性网络
批准号:
326946590
负责人:
Professor Dr. Dmitrij Frishman
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2017
资助国家:
德国
项目状态:
已结题
起止时间:
2016-12-31 至 2021-12-31

项目摘要

项目成果

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中文摘要
翻译
该项目的主要目标是通过系统医学方法实现个性化癌症预后。基于蛋白质结构,特别是蛋白质复合物的拓扑和结构决定细胞和组织的功能能力这一公认的原则,我们将解决一个及时和迫切的需求,将遗传数据与依赖于组织特异性蛋白质复合物功能的分子和临床表型联系起来。该项目旨在确定组织特异性和肿瘤特异性计算模型,其中患者特异性遗传变异以影响健康的方式影响蛋白质相互作用。这些模型最初将通过生物信息学预测推导,然后根据蛋白质组学和遗传学实验产生的验证数据进行迭代改进。具体来说,该项目开发的预测技术将通过生成相应的蛋白质复合物并使用交联实验来确定它们在拓扑和结构上是否以及如何与野生型不同,从而受到严格的实验验证。这些模型将使用来自三阴性乳腺癌(TNBC)患者的良好注释队列样本进行验证。该项目拟产生几个重要的数据资源、分析方法、软件工具和服务:1)预测影响球形和跨膜蛋白之间蛋白-蛋白相互作用(PPIs)导致功能丧失或获得的疾病突变的方法;2)受序列变异影响的组织和肿瘤特异性相互作用网络的精选数据集;3)建立相互作用网络的方法,考虑到PPIs的异构体以及动态和浓度依赖方面;4)检测基因组病变引起的蛋白质复合物结构和组成改变的方法和软件工具;5)实体癌中与肿瘤免疫细胞相互作用相关的调控蛋白复合物和癌症特异性网络;6)通过化学交联和质谱技术对一组蛋白质复合物基因组变异引起的预测结构或组成变化进行实验验证;7)用于验证的TNBC队列免疫基因组分析的主要数据和结果。
英文摘要
The key objective of the project is to enable personalized cancer prognosis through a systems medicine approach. Based on the well-established principle that protein structure and, in particular, topology and structure of protein complexes determine the functional capabilities of cells and tissues, we will address a timely and urgent need to link genetic data to molecular and clinical phenotypes that depend on the function of protein complexes in a tissue-specific manner. The project aims at the identification of tissue-specific and tumor-specific computational models, in which patient-specific genetic variation influences protein interactions in ways that affect health. Such models will be initially derived by bioinformatics predictions, and then iteratively refined based on validation data generated by proteomics and genetics experiments. Specifically, predictive techniques developed in the project will be subjected to rigorous experimental verification by generating the corresponding protein complexes and using cross-linking experiments to determine whether and how they differ in topology and structure from the wild type. The models will be validated using samples from a well-annotated cohort of triple-negative breast cancer (TNBC) patients. The project proposes to generate several important data resources, analysis methods, software tools and services: 1) Methods for predicting disease mutations affecting protein-protein interactions (PPIs) between both globular and transmembrane proteins, leading to loss or gain of function; 2) Curated datasets of tissue- and tumor-specific interaction networks impacted by sequence variants; 3) Methods for creating interaction networks that take into account isoforms as well as dynamic and concentration-dependent aspects of PPIs; 4) Methods and software tools to detect structural and compositional alterations in protein complexes induced by genomic lesions; 5) Curated protein complexes and cancer specific networks relevant for tumor-immune cell interactions in solid cancers; 6) Experimental validation by chemical cross-linking and mass spectrometry of predicted structural or compositional alterations induced by genomic variation in a set of protein complexes; 7) Primary data and results from the immunogenomic analyses from the TNBC cohort used for validation.
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Viral mRNAs: evolution and structure-function relashionships
  • 批准号:
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  • 资助金额:
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