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Atlas of Cancer Signalling Network: a systems biology resource for integrative analysis of cancer data with Google Maps

机译:癌症信号图集地图集:系统生物学资源可通过Google Maps对癌症数据进行综合分析

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摘要

Cancerogenesis is driven by mutations leading to aberrant functioning of a complex network of molecular interactions and simultaneously affecting multiple cellular functions. Therefore, the successful application of bioinformatics and systems biology methods for analysis of high-throughput data in cancer research heavily depends on availability of global and detailed reconstructions of signalling networks amenable for computational analysis. We present here the Atlas of Cancer Signalling Network (ACSN), an interactive and comprehensive map of molecular mechanisms implicated in cancer. The resource includes tools for map navigation, visualization and analysis of molecular data in the context of signalling network maps. Constructing and updating ACSN involves careful manual curation of molecular biology literature and participation of experts in the corresponding fields. The cancer-oriented content of ACSN is completely original and covers major mechanisms involved in cancer progression, including DNA repair, cell survival, apoptosis, cell cycle, EMT and cell motility. Cell signalling mechanisms are depicted in detail, together creating a seamless ‘geographic-like' map of molecular interactions frequently deregulated in cancer. The map is browsable using NaviCell web interface using the Google Maps engine and semantic zooming principle. The associated web-blog provides a forum for commenting and curating the ACSN content. ACSN allows uploading heterogeneous omics data from users on top of the maps for visualization and performing functional analyses. We suggest several scenarios for ACSN application in cancer research, particularly for visualizing high-throughput data, starting from small interfering RNA-based screening results or mutation frequencies to innovative ways of exploring transcriptomes and phosphoproteomes. Integration and analysis of these data in the context of ACSN may help interpret their biological significance and formulate mechanistic hypotheses. ACSN may also support patient stratification, prediction of treatment response and resistance to cancer drugs, as well as design of novel treatment strategies.
机译:致癌作用是由突变驱动的,突变导致复杂的分子相互作用网络异常发挥功能,同时影响多种细胞功能。因此,生物信息学和系统生物学方法在癌症研究中高通量数据分析的成功应用在很大程度上取决于适用于计算分析的信号网络的全局和详细重建的可用性。我们在这里展示了癌症信号网络图集(ACSN),这是一个涉及癌症的分子机制的交互式综合图。该资源包括用于在信号网络图的上下文中进行图导航​​,可视化和分子数据分析的工具。 ACSN的构建和更新涉及分子生物学文献的精心手工策划以及相应领域专家的参与。 ACSN的面向癌症的内容完全是原创的,涵盖了癌症进展中涉及的主要机制,包括DNA修复,细胞存活,细胞凋亡,细胞周期,EMT和细胞运动性。详细描述了细胞信号传导机制,共同创建了在癌症中经常被放松调节的分子相互作用的无缝的“地理样”图。使用NaviCell Web界面(使用Google Maps引擎和语义缩放原理)可以浏览该地图。相关的网络博客提供了一个评论和管理ACSN内容的论坛。 ACSN允许在地图上方从用户上传异构组学数据,以进行可视化和执行功能分析。我们建议ACSN在癌症研究中的几种应用场景,特别是可视化高通量数据,从基于RNA的小干扰筛查结果或突变频率开始,到探索转录组和磷酸化蛋白质组的创新方法。在ACSN的背景下,对这些数据进行整合和分析可能有助于解释其生物学意义并建立机制假设。 ACSN还可以支持患者分层,预测治疗反应和对癌症药物的耐药性以及设计新的治疗策略。

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