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通过 Fe-S 结合受体结构域对双组分信号系统的反馈控制。

Feedback Control of a Two-Component Signaling System by an Fe-S-Binding Receiver Domain.

机构信息

Department of Microbiology and Molecular Genetics, Michigan State University, East Lansing, Michigan, USA.

Department of Microbiology and Molecular Genetics, Michigan State University, East Lansing, Michigan, USA

出版信息

mBio. 2020 Mar 17;11(2):e03383-19. doi: 10.1128/mBio.03383-19.

Abstract

Two-component signaling systems (TCSs) function to detect environmental cues and transduce this information into a change in transcription. In its simplest form, TCS-dependent regulation of transcription entails phosphoryl-transfer from a sensory histidine kinase to its cognate DNA-binding receiver protein. However, in certain cases, auxiliary proteins may modulate TCSs in response to secondary environmental cues. FixT is one such auxiliary regulator. FixT is composed of a single receiver domain and functions as a feedback inhibitor of the FixL-FixJ (FixLJ) TCS, which regulates the transcription of genes involved in adaptation to microaerobiosis. We sought to define the impact of on cell physiology and to understand the molecular mechanism by which FixT represses FixLJ signaling. deletion results in excess production of porphyrins and premature entry into stationary phase, demonstrating the importance of feedback inhibition of the FixLJ signaling system. Although FixT is a receiver domain, it does not affect dephosphorylation of the oxygen sensor kinase FixL or phosphoryl-transfer from FixL to its cognate receiver FixJ. Rather, FixT represses FixLJ signaling by inhibiting the FixL autophosphorylation reaction. We have further identified a 4-cysteine motif in FixT that binds an Fe-S cluster and protects the protein from degradation by the Lon protease. Our data support a model in which the oxidation of this Fe-S cluster promotes the degradation of FixT This proteolytic mechanism facilitates clearance of the FixT feedback inhibitor from the cell under normoxia and resets the FixLJ system for a future microaerobic signaling event. Two-component signal transduction systems (TCSs) are broadly conserved in the bacterial kingdom and generally contain two molecular components, a sensor histidine kinase and a receiver protein. Sensor histidine kinases alter their phosphorylation state in direct response to a physical or chemical cue, whereas receiver proteins "receive" the phosphoryl group from the kinase to regulate a change in cell physiology. We have discovered that a single-domain receiver protein, FixT, binds an Fe-S cluster and controls heme homeostasis though its function as a negative-feedback regulator of the oxygen sensor kinase FixL. We provide evidence that the Fe-S cluster protects FixT from Lon-dependent proteolysis in the cell and endows FixT with the ability to function as a second, autonomous oxygen/redox sensor in the FixL-FixJ signaling pathway. This study introduces a novel mechanism of regulated TCS feedback control by an Fe-S-binding receiver domain.

摘要

双组分信号转导系统(TCSs)的功能是检测环境线索,并将此信息转导为转录的变化。在最简单的形式中,TCS 依赖的转录调控需要从感应组氨酸激酶到其同源 DNA 结合受体蛋白的磷酸转移。然而,在某些情况下,辅助蛋白可以响应二次环境线索来调节 TCS。FixT 就是这样一种辅助调节剂。FixT 由单个受体结构域组成,作为 FixL-FixJ(FixLJ)TCS 的反馈抑制剂发挥作用,该 TCS 调节与微需氧适应相关的基因转录。我们试图确定对细胞生理学的影响,并理解 FixT 抑制 FixLJ 信号的分子机制。缺失导致卟啉过度产生和过早进入静止期,这表明 FixLJ 信号系统的反馈抑制至关重要。尽管 FixT 是一个受体结构域,但它不影响氧传感器激酶 FixL 的去磷酸化或 FixL 向其同源受体 FixJ 的磷酸转移。相反,FixT 通过抑制 FixL 自身磷酸化反应来抑制 FixLJ 信号。我们进一步鉴定了 FixT 中的一个 4-半胱氨酸基序,该基序结合一个 Fe-S 簇并保护该蛋白免受 Lon 蛋白酶的降解。我们的数据支持这样一种模型,即该 Fe-S 簇的氧化促进了 FixT 的降解。这种蛋白水解机制有助于在常氧条件下从细胞中清除 FixT 反馈抑制剂,并为未来的微需氧信号事件重置 FixLJ 系统。双组分信号转导系统(TCSs)在细菌王国中广泛保守,通常包含两个分子成分,一个传感器组氨酸激酶和一个受体蛋白。传感器组氨酸激酶直接响应物理或化学线索改变其磷酸化状态,而受体蛋白从激酶“接收”磷酸基团以调节细胞生理学的变化。我们发现,单个结构域受体蛋白 FixT 通过作为氧传感器激酶 FixL 的负反馈调节剂,结合一个 Fe-S 簇并控制血红素稳态。我们提供的证据表明,Fe-S 簇保护 FixT 免受细胞中 Lon 依赖性蛋白水解,并赋予 FixT 作为 FixL-FixJ 信号通路中第二个自主氧/氧化还原传感器的功能。这项研究介绍了一种通过 Fe-S 结合受体结构域调节 TCS 反馈控制的新机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef3c/7078487/01fd2e878959/mBio.03383-19-f0001.jpg

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