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首页> 外文期刊>Proteins: Structure, Function, and Genetics >Transcriptional regulatory module analysis reveals that bridge proteins reconcile multiple signals in extracellular electron transfer pathways
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Transcriptional regulatory module analysis reveals that bridge proteins reconcile multiple signals in extracellular electron transfer pathways

机译:转录调节模块分析显示,桥梁蛋白在细胞外电子转移途径中调和多个信号

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摘要

Abstract Shewanella oneidensis MR‐1 shows remarkable respiratory versatility with a large variety of extracellular electron acceptors (termed extracellular electron transfer, EET). To utilize the various electron acceptors, the bacterium must employ complex regulatory mechanisms to elicit the relevant EET pathways. To investigate the relevant mechanisms, we integrated EET genes and related transcriptional factors (TFs) into transcriptional regulatory modules (TRMs) and showed that many bridge proteins in these modules were signal proteins, which generally contained one or more signal processing domains (eg, GGDEF, EAL, PAS, etc.). Since Shewanella has to respond to diverse environmental conditions despite encoding few EET‐relevant TFs, the overabundant signal proteins involved in the TRMs can help decipher the mechanism by which these microbes elicit a wide range of condition‐specific responses. By combining proteomic data and protein bioinformatic analysis, we demonstrated that diverse signal proteins reconciled the different EET pathways, and we discussed the functional roles of signal proteins involved in the well‐known MtrCAB pathway. Additionally, we showed that the signal proteins SO_2145 and SO_1417 played central roles in triggering EET pathways in anaerobic environments. Taken together, our results suggest that signal proteins have a profound impact on the transcriptional regulation of EET genes and thus have potential applications in microbial fuel cells.
机译:摘要雪松onidensis MR-1显示出具有很大种类的细胞外电子受体(称为细胞外电子转移,EET)的显着呼吸道多功能性。为了利用各种电子受体,细菌必须采用复杂的调节机制来引发相关的EET途径。为了研究相关机制,我们将EET基因和相关转录因子(TFS)集成为转录调节模块(TRMS),并显示这些模块中的许多桥蛋白是信号蛋白,其通常含有一个或多个信号处理域(例如,GGDEF ,eal,pas等)。由于Shewanella尽管编码少数EET相关的TFS,但仍然可以响应各种环境条件,因此TRMS中涉及的过遍的信号蛋白可以帮助破译这些微生物引发广泛的特异性响应的机制。通过组合蛋白质组学数据和蛋白质生物信息分析,我们证明了不同的信号蛋白质和解不同的EET途径,我们讨论了涉及众所周知的MTRCAB途径的信号蛋白的功能作用。此外,我们表明,信号蛋白SO_2145和SO_1417在触发Anaerobic环境中触发EET途径的中央作用。我们的结果表明,信号蛋白对EET基因的转录调节产生了深远的影响,因此在微生物燃料电池中具有潜在的应用。

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