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Bioinformatics of cellular signalling

机译:细胞信号传导的生物信息学

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The completion of the human genome sequencing provides a unique opportunity to understand the complex functioning of cells in terms of myriad biochemical pathways. Of special significance are pathways involved in cellular signalling. Understanding how signal transduction occurs in cells is of paramount importance to medicine and pharmacology. The major steps involved in deciphering signalling pathways are: (a) identifying the molecules involved in signalling; (b) figuring out who talks to whom, i.e. deciphering molecular interactions in a context specific manner; (c) obtaining the spatiotemporal location of the signalling events; (d) reconstructing signalling modules and networks evoked in specific response to input; (e) correlating the signalling response to different cellular inputs; and (f) deciphering cross-talk between signalling modules in response to single and multiple inputs. High-throughput experimental investigations offer the promise of providing data pertaining to the above steps. A major challenge, then, is the organization of this data into knowledge in the form of hypothesis, models and context-specific understanding. The Alliance for Cellular Signaling (AfCS) is a multi-institution, multidisciplinary project and its primary objective is to utilize a multitude of high throughput approaches to obtain context-specific knowledge of cellular response to input. It is anticipated that the AfCS experimental data in combination with curated gene and protein annotations, available from public repositories, will serve as a basis for reconstruction of signalling networks. It will then be possible to model the networks mathematically to obtain quantitative measures of cellular response. In this paper we describe some of the bioinformatics strategies employed in the AfCS.
机译:人类基因组测序的完成提供了一个独特的机会,以无数的生化途径了解细胞的复杂功能。特别重要的是涉及细胞信号传导的途径。了解细胞中信号转导的发生方式对医学和药理学至关重要。破译信号传导途径的主要步骤是:(a)鉴定参与信号传导的分子; (b)弄清楚谁与谁交谈,即以上下文相关的方式解密分子相互作用; (c)获得信令事件的时空位置; (d)重建针对输入的特定响应而引发的信令模块和网络; (e)将信令响应与不同的蜂窝输入相关联; (f)响应于单个和多个输入来解密信令模块之间的串扰。高通量实验研究提供了提供与上述步骤有关的数据的希望。因此,一个主要的挑战是将这些数据以假设,模型和特定于上下文的理解的形式组织成知识。细胞信号联盟(AfCS)是一个多机构,多学科的项目,其主要目标是利用多种高通量方法来获取针对输入的细胞响应的上下文特定知识。可以预期,可从公共存储库获得的AfCS实验数据与精选的基因和蛋白质注释相结合,将作为重建信号网络的基础。然后将有可能对网络进行数学建模以获得细胞反应的定量测量。在本文中,我们描述了AfCS中采用的一些生物信息学策略。

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