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本文引用的文献

1
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2
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3
SWISS-MODEL: homology modelling of protein structures and complexes.SWISS-MODEL:蛋白质结构和复合物的同源建模。
Nucleic Acids Res. 2018 Jul 2;46(W1):W296-W303. doi: 10.1093/nar/gky427.
4
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5
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MifS,一种 DctB 家族组氨酸激酶,是 PAO1 中 α-酮戊二酸反应的特异性调节因子。

MifS, a DctB family histidine kinase, is a specific regulator of α-ketoglutarate response in PAO1.

机构信息

Department of Biology, The College of New Jersey, Ewing, New Jersey, USA.

Present address: Biomedical Sciences Graduate Program, University of California, San Diego, California, USA.

出版信息

Microbiology (Reading). 2020 Sep;166(9):867-879. doi: 10.1099/mic.0.000943.

DOI:10.1099/mic.0.000943
PMID:32553056
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7654738/
Abstract

The C5-dicarboxylate α-ketoglutarate (α-KG) is a preferred nutrient source for the opportunistic pathogen . However, very little is known about how detects and responds to α-KG in the environment. Our laboratory has previously shown that the MifS/MifR two-component signal transduction system regulates α-KG assimilation in PAO1. In an effort to better understand how this bacterium detects α-KG, we characterized the MifS sensor histidine kinase. In this study we show that although MifS is a homologue of the C4-dicarboxylate sensor DctB, it specifically responds to the C5-dicarboxylate α-KG. MifS activity increased >10-fold in the presence of α-KG, while the related C5-dicarboxylate glutarate caused only a 2-fold increase in activity. All other dicarboxylates tested did not show any significant effect on MifS activity. Homology modelling of the MifS sensor domain revealed a substrate binding pocket for α-KG. Using protein modelling and mutational analysis, we identified nine residues that are important for α-KG response, including one residue that determines the substrate specificity of MifS. Further, we found that MifS has a novel cytoplasmic linker domain that is required for α-KG response and is probably involved in signal transduction from the sensor domain to the cytoplasmic transmitter domain. Until this study, DctB family histidine kinases were known to only respond to C4-dicarboxylates. Our work shows that MifS is a novel member of the DctB family histidine kinase that specifically responds to α-KG.

摘要

C5-二羧酸-α-酮戊二酸(α-KG)是机会性病原体的首选营养源。然而,人们对如何在环境中检测和响应α-KG知之甚少。我们实验室之前已经表明,MifS/MifR 双组分信号转导系统调节PAO1 中的α-KG 同化。为了更好地了解这种细菌如何检测α-KG,我们对 MifS 传感器组氨酸激酶进行了特征描述。在这项研究中,我们表明,尽管 MifS 是 C4-二羧酸传感器 DctB 的同源物,但它专门响应 C5-二羧酸α-KG。MifS 的活性在α-KG 的存在下增加了>10 倍,而相关的 C5-二羧酸戊二酸仅使活性增加了 2 倍。测试的所有其他二羧酸均未对 MifS 活性产生任何显著影响。MifS 传感器结构域的同源建模揭示了α-KG 的底物结合口袋。使用蛋白质建模和突变分析,我们确定了对α-KG 响应很重要的九个残基,包括一个决定 MifS 底物特异性的残基。此外,我们发现 MifS 具有一个新颖的细胞质连接域,该域对于α-KG 响应是必需的,并且可能涉及从传感器域到细胞质传递域的信号转导。在这项研究之前,DctB 家族组氨酸激酶仅响应 C4-二羧酸。我们的工作表明,MifS 是 DctB 家族组氨酸激酶的一个新成员,专门响应α-KG。