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首页> 外文期刊>Molecular BioSystems >Uncovering allosteric pathways in caspase-1 using Markov transient analysis and multiscale community detection
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Uncovering allosteric pathways in caspase-1 using Markov transient analysis and multiscale community detection

机译:使用马尔可夫瞬态分析和多尺度社区检测发现caspase-1中的变构途径

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摘要

Allosteric regulation at distant sites is central to many cellular processes. In particular, allosteric sites in proteins are major targets to increase the range and selectivity of new drugs, and there is a need for methods capable of identifying intra-molecular signalling pathways leading to allosteric effects. Here, we use an atomistic graph-theoretical approach that exploits Markov transients to extract such pathways and exemplify our results in an important allosteric protein, caspase-1. Firstly, we use Markov stability community detection to perform a multiscale analysis of the structure of caspase-1 which reveals that the active conformation has a weaker, less compartmentalised large-scale structure compared to the inactive conformation, resulting in greater intra-protein coherence and signal propagation. We also carry out a full computational point mutagenesis and identify that only a few residues are critical to such structural coherence. Secondly, we characterise explicitly the transients of random walks originating at the active site and predict the location of a known allosteric site in this protein quantifying the contribution of individual bonds to the communication pathway between the active and allosteric sites. Several of the bonds we identify have been shown experimentally to be functionally critical, but we also predict a number of as yet unidentified bonds which may contribute to the pathway. Our approach offers a computationally inexpensive method for the identification of allosteric sites and communication pathways in proteins using a fully atomistic description.
机译:在远处的变构调节是许多细胞过程的中心。特别地,蛋白质中的变构位点是增加新药的范围和选择性的主要目标,并且需要能够鉴定导致变构作用的分子内信号传导途径的方法。在这里,我们使用原子图理论方法,利用马尔可夫瞬态提取此类途径,并在重要的变构蛋白caspase-1中举例说明我们的结果。首先,我们使用马尔可夫稳定性社区检测对caspase-1的结构进行多尺度分析,结果表明,与非活性构象相比,活性构象具有较弱的,较少分隔的大规模结构,从而导致更大的蛋白内连和信号传播。我们还进行了完整的计算点诱变,并确定只有很少的残基对这种结构一致性至关重要。其次,我们明确表征源自活动位点的随机游走的瞬变,并预测该蛋白质中已知变构位点的位置,从而量化单个键对活动位点和变构位点之间的通信途径的贡献。实验中已表明,我们鉴定出的几种键在功能上至关重要,但我们还预测了许多可能仍在起作用的未知键。我们的方法提供了一种计算上便宜的方法,可以使用完全原子描述来鉴定蛋白质中的变构位点和通讯途径。

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  • 来源
    《Molecular BioSystems》 |2014年第8期|2247-2258|共12页
  • 作者单位

    Insititute of Chemical Biology, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK,Department of Chemistry, Imperial College London, South Kensington Campus,London, SW7 2A2, UK;

    Insititute of Chemical Biology, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK,Department of Chemistry, Imperial College London, South Kensington Campus,London, SW7 2A2, UK;

    Insititute of Chemical Biology, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK,Department of Chemistry, Imperial College London, South Kensington Campus,London, SW7 2A2, UK;

    Insititute of Chemical Biology, Imperial College London, South Kensington Campus, London, SW7 2AZ, UK,Department of Mathematics, Imperial College London, South Kensington Campus,London, SW7 2AZ, UK;

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