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镍体系中 BigR4 和 SmtB 蛋白锌结构域的配位性质——关键供体的指定。

Coordination Properties of the Zinc Domains of BigR4 and SmtB Proteins in Nickel Systems─Designation of Key Donors.

机构信息

Faculty of Chemistry, University of Wroclaw, 14 Joliot-Curie Street, Wroclaw 50-383, Poland.

WMG, International Manufacturing Centre, University of Warwick, Coventry CV4 7AL, U.K.

出版信息

Inorg Chem. 2022 Jun 27;61(25):9454-9468. doi: 10.1021/acs.inorgchem.2c00319. Epub 2022 Jun 13.

Abstract

The increasing number of antibiotic-resistant pathogens has become one of the foremost health problems of modern times. One of the most lethal and multidrug-resistant bacteria is (Mtb), which causes tuberculosis (TB). TB continues to engulf health systems due to the significant development of bacterial multidrug-resistant strains. Mammalian immune system response to mycobacterial infection includes, but is not limited to, increasing the concentration of zinc(II) and other divalent metal ions in phagosome vesicles up to toxic levels. Metal ions are necessary for the survival and virulence of bacteria but can be highly toxic to organisms if their concentrations are not strictly controlled. Therefore, understanding the mechanisms of how bacteria use metal ions to maintain their optimum concentrations and survive under lethal environmental conditions is essential. The mycobacterial SmtB protein, one of the metal-dependent transcription regulators of the ArsR/SmtB family, dissociates from DNA in the presence of high concentrations of metals, activating the expression of metal efflux proteins. In this work, we explore the properties of α5 metal-binding domains of SmtB/BigR4 proteins (the latter being the SmtB homolog from nonpathogenic ), and two mutants of BigR4 as ligands for nickel(II) ions. The study focuses on the specificity of metal-ligand interactions and describes the effect of mutations on the coordination properties of the studied systems. The results of this research reveal that the Ni(II)-BigR4 α5 species are more stable than the Ni(II)-SmtB α5 complexes. His mutations, exchanging one of the histidines for alanine, cause a decrease in the stability of Ni(II) complexes. Surprisingly, the lack of His102 resulted also in increased involvement of acidic amino acids in the coordination. The results of this study may help to understand the role of critical mycobacterial virulence factor─SmtB in metal homeostasis. Although SmtB prefers Zn(II) binding, it may also bind metal ions that prefer other coordination modes, for example, Ni(II). We characterized the properties of such complexes in order to understand the nature of mycobacterial SmtB when acting as a ligand for metal ions, given that nickel and zinc ArsR family proteins possess analogous metal-binding motifs. This may provide an introduction to the design of a new antimicrobial strategy against the pathogenic bacterium .

摘要

抗生素耐药病原体的数量不断增加,已成为现代社会最主要的健康问题之一。其中最致命和耐药性最强的细菌之一是 (Mtb),它会导致肺结核(TB)。由于细菌耐药性菌株的大量出现,TB 继续吞噬着卫生系统。哺乳动物免疫系统对分枝杆菌感染的反应包括但不限于将吞噬体囊泡中锌(II)和其他二价金属离子的浓度增加到毒性水平。金属离子是细菌生存和毒力所必需的,但如果其浓度得不到严格控制,对生物体也可能具有高度毒性。因此,了解细菌如何利用金属离子来维持其最佳浓度并在致命的环境条件下生存的机制至关重要。分枝杆菌 SmtB 蛋白是 ArsR/SmtB 家族中依赖金属的转录调节剂之一,当存在高浓度金属时,它会与 DNA 分离,从而激活金属外排蛋白的表达。在这项工作中,我们探索了 SmtB/BigR4 蛋白的 α5 金属结合结构域(后者是来自非致病性的 SmtB 同源物)和两个 BigR4 突变体作为镍(II)离子配体的性质。研究重点是金属-配体相互作用的特异性,并描述了突变对所研究系统配位性质的影响。这项研究的结果表明,Ni(II)-BigR4 α5 物种比 Ni(II)-SmtB α5 配合物更稳定。突变一个组氨酸为丙氨酸会降低 Ni(II)配合物的稳定性。令人惊讶的是,缺乏 His102 也导致酸性氨基酸更多地参与配位。这项研究的结果可能有助于理解分枝杆菌关键毒力因子 SmtB 在金属稳态中的作用。尽管 SmtB 更喜欢结合锌(II),但它也可能结合更喜欢其他配位模式的金属离子,例如镍(II)。我们对这些配合物的性质进行了表征,以便了解分枝杆菌 SmtB 作为金属离子配体的性质,因为镍和锌 ArsR 家族蛋白具有类似的金属结合基序。这可能为针对致病性细菌的新型抗菌策略的设计提供了一个起点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/24e7/9241078/87974fd7c6d5/ic2c00319_0002.jpg

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