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Network-Based Methods for Identifying Key Active Proteins in the Extracellular Electron Transfer Process in Shewanella oneidensis MR-1

机译:基于网络的基于网络,用于鉴定雪南onidensis MR-1中的细胞外电子转移过程中的关键活性蛋白

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Shewanella oneidensis MR-1 can transfer electrons from the intracellular environment to the extracellular space of the cells to reduce the extracellular insoluble electron acceptors (Extracellular Electron Transfer, EET). Benefiting from this EET capability, Shewanella has been widely used in different areas, such as energy production, wastewater treatment, and bioremediation. Genome-wide proteomics data was used to determine the active proteins involved in activating the EET process. We identified 1012 proteins with decreased expression and 811 proteins with increased expression when the EET process changed from inactivation to activation. We then networked these proteins to construct the active protein networks, and identified the top 20 key active proteins by network centralization analysis, including metabolism- and energy-related proteins, signal and transcriptional regulatory proteins, translation-related proteins, and the EET-related proteins. We also constructed the integrated protein interaction and transcriptional regulatory networks for the active proteins, then found three exclusive active network motifs involved in activating the EET process—Bi-feedforward Loop, Regulatory Cascade with a Feedback, and Feedback with a Protein–Protein Interaction (PPI)—and identified the active proteins involved in these motifs. Both enrichment analysis and comparative analysis to the whole-genome data implicated the multiheme c -type cytochromes and multiple signal processing proteins involved in the process. Furthermore, the interactions of these motif-guided active proteins and the involved functional modules were discussed. Collectively, by using network-based methods, this work reported a proteome-wide search for the key active proteins that potentially activate the EET process.
机译:Shechella onidensis MR-1可以将来自细胞内环境的电子转移到细胞的细胞外空间以减少细胞外不溶性电子受体(细胞外电子转移,EET)。从这种EET能力受益,沉肠已被广泛应用于不同领域,如能源生产,废水处理和生物修复。基因组型蛋白质组学数据用于确定活性蛋白质激活EET过程的活性蛋白质。当EET过程从失活变化以激活时,我们鉴定了1012个蛋白质,表达下降和811个蛋白质,表达增加。然后,我们将这些蛋白质联系起来构建活性蛋白质网络,并通过网络集中分析确定前20个关键的活性蛋白质,包括代谢和能量相关的蛋白质,信号和转录调节蛋白,平移相关蛋白质和与EET相关的蛋白质蛋白质。我们还构建了活性蛋白的综合蛋白质相互作用和转录调节网络,然后发现了三个独家有源网络图案,参与激活EET过程 - 双向前馈回路,具有反馈的调节级联,以及用蛋白质 - 蛋白质相互作用的反馈( ppi) - 确定了这些基序参与的活性蛋白质。富集分析和对全基因组数据的比较分析涉及多血液C型细胞学和涉及该过程的多个信号处理蛋白。此外,讨论了这些基序引导的活性蛋白和所涉及的功能模块的相互作用。统称,通过使用基于网络的方法,这项工作报告了蛋白质组中的临床活性蛋白,可能激活EET过程。

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