Insights Into the Conformational Dynamics of the Cytoplasmic Domain of Metal-Sensing Sensor Histidine Kinase ZraS.

IF 3.2 4区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Nilima Mahapatra, Pranjal Mahanta, Shubhant Pandey, Rudresh Acharya
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Abstract

ZraS is a metal sensor integral to ZraPSR, a two-component signaling system found in enterobacters. It belongs to a family of bifunctional sensor histidine kinases (SHKs) and is speculated to sense zinc-induced stress on the bacterial envelope. Information on the structure-function relationship of sensor kinases is elusive due to the lack of full-length structures, intrinsically dynamic behavior, and difficulty trapping them in active state conformations. While the kinase domains (KDs) of a few SHKs are well characterized, they exhibit significant functional diversity attributed to their modular multi-domain arrangement in the cytoplasmic region, combined with other signal transducing elements such as simple helices, HAMP, and PAS domains. We report the crystal structure of the entire cytoplasmic region of Escherichia coli ZraS (EcZraS-CD) resolved at a resolution of 2.49 Å, comprising a unique helical linker and the KD. In the asymmetric unit, four molecules of ZraS assemble as homodimers trapped as two ligand-bound occluded conformers. Our analysis using these conformers shows that modulation of the dimer bundle through segmental helical bending, sliding, and rotation leads to the reorganization of the dimerization interface during kinase activation. Further, our analysis reveals the significance of aromatic amino acid interactions and loop residues at the dimer base in regulating the directionality of rotation during autophosphorylation. We also performed an in vitro coupled assay to determine ATPase activity. Overall, our findings provide structure-based mechanistic insights into the process of autophosphorylation in trans-acting SHKs.

金属传感组氨酸激酶ZraS细胞质结构域的构象动力学研究。
ZraS是肠杆菌中发现的双组分信号系统ZraPSR不可或缺的金属传感器。它属于双功能传感器组氨酸激酶(SHKs)家族,据推测可以感知锌诱导的细菌包膜上的应激。关于传感器激酶的结构-功能关系的信息是难以捉摸的,因为缺乏全长结构,内在的动态行为,以及难以将它们捕获在活性状态构象中。虽然一些SHKs的激酶结构域(KDs)已经被很好地表征,但由于它们在细胞质区域的模块化多结构域排列,并与其他信号转导元件(如简单螺旋、HAMP和PAS结构域)结合,它们表现出显著的功能多样性。我们报道了大肠杆菌ZraS (EcZraS-CD)整个细胞质区域的晶体结构,分辨率为2.49 Å,包括一个独特的螺旋连接体和KD。在不对称单元中,4个ZraS分子组装成同型二聚体,被困在两个配体结合的封闭构象中。我们使用这些构象的分析表明,通过片段螺旋弯曲、滑动和旋转对二聚体束的调节导致了激酶激活过程中二聚化界面的重组。此外,我们的分析揭示了芳香氨基酸相互作用和二聚体碱基环残基在调节自磷酸化过程中旋转方向的重要性。我们还进行了体外偶联试验以确定atp酶活性。总的来说,我们的研究结果为反式作用SHKs的自磷酸化过程提供了基于结构的机制见解。
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来源期刊
Proteins-Structure Function and Bioinformatics
Proteins-Structure Function and Bioinformatics 生物-生化与分子生物学
CiteScore
5.90
自引率
3.40%
发文量
172
审稿时长
3 months
期刊介绍: PROTEINS : Structure, Function, and Bioinformatics publishes original reports of significant experimental and analytic research in all areas of protein research: structure, function, computation, genetics, and design. The journal encourages reports that present new experimental or computational approaches for interpreting and understanding data from biophysical chemistry, structural studies of proteins and macromolecular assemblies, alterations of protein structure and function engineered through techniques of molecular biology and genetics, functional analyses under physiologic conditions, as well as the interactions of proteins with receptors, nucleic acids, or other specific ligands or substrates. Research in protein and peptide biochemistry directed toward synthesizing or characterizing molecules that simulate aspects of the activity of proteins, or that act as inhibitors of protein function, is also within the scope of PROTEINS. In addition to full-length reports, short communications (usually not more than 4 printed pages) and prediction reports are welcome. Reviews are typically by invitation; authors are encouraged to submit proposed topics for consideration.
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