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转录阻遏蛋白 RcnR 与 Co(II) 和 Ni(II) 的结合使其 N 端有序化,改变了螺旋动力学,并降低了 DNA 亲和力。

Co(II) and Ni(II) binding of the transcriptional repressor RcnR orders its N terminus, alters helix dynamics, and reduces DNA affinity.

机构信息

Department of Chemistry, University of Massachusetts, Amherst, Massachusetts 01003.

Carmot Therapeutics, Inc., San Francisco, California 94158.

出版信息

J Biol Chem. 2018 Jan 5;293(1):324-332. doi: 10.1074/jbc.RA117.000398. Epub 2017 Nov 17.

DOI:10.1074/jbc.RA117.000398
PMID:29150441
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5766909/
Abstract

RcnR, a transcriptional regulator in , derepresses the expression of the export proteins RcnAB upon binding Ni(II) or Co(II). Lack of structural information has precluded elucidation of the allosteric basis for the decreased DNA affinity in RcnR's metal-bound states. Here, using hydrogen-deuterium exchange coupled with MS (HDX-MS), we probed the RcnR structure in the presence of DNA, the cognate metal ions Ni(II) and Co(II), or the noncognate metal ion Zn(II). We found that cognate metal binding altered flexibility from the N terminus through helix 1 and modulated the RcnR-DNA interaction. Apo-RcnR and RcnR-DNA complexes and the Zn(II)-RcnR complex exhibited similar H uptake kinetics, with fast-exchanging segments located in the N terminus, in helix 1 (residues 14-24), and at the C terminus. The largest difference in H incorporation between apo- and Ni(II)- and Co(II)-bound RcnR was observed in helix 1, which contains the N terminus and His-3, and has been associated with cognate metal binding. H uptake in helix 1 was suppressed in the Ni(II)- and Co(II)-bound RcnR complexes, in particular in the peptide corresponding to residues 14-24, containing Arg-14 and Lys-17. Substitution of these two residues drastically affected DNA-binding affinity, resulting in expression in the absence of metal. Our results suggest that cognate metal binding to RcnR orders its N terminus, decreases helix 1 flexibility, and induces conformational changes that restrict DNA interactions with the positively charged residues Arg-14 and Lys-17. These metal-induced alterations decrease RcnR-DNA binding affinity, leading to expression.

摘要

RcnR 是一种转录调节剂,在 中,它与 Ni(II)或 Co(II)结合后可解除对输出蛋白 RcnAB 的抑制,从而促进其表达。由于缺乏结构信息,目前还无法阐明 RcnR 在金属结合状态下 DNA 亲和力降低的变构基础。在这里,我们使用氢氘交换结合 MS(HDX-MS)技术,在存在 DNA、同源金属离子 Ni(II)和 Co(II)或非同源金属离子 Zn(II)的情况下,探测 RcnR 结构。我们发现,同源金属结合改变了从 N 端到螺旋 1 的柔韧性,并调节了 RcnR-DNA 相互作用。apo-RcnR 和 RcnR-DNA 复合物以及 Zn(II)-RcnR 复合物表现出相似的 H 吸收动力学,快速交换片段位于 N 端、螺旋 1(残基 14-24)和 C 端。apo-RcnR 和 Ni(II)-和 Co(II)-RcnR 之间在 H 掺入方面的最大差异发生在螺旋 1 中,该螺旋 1 包含 N 端和 His-3,与同源金属结合有关。在 Ni(II)-和 Co(II)-RcnR 复合物中,螺旋 1 中的 H 摄取受到抑制,特别是在对应于残基 14-24 的肽段中,其中包含 Arg-14 和 Lys-17。这两个残基的取代严重影响了 DNA 结合亲和力,导致在没有金属的情况下 表达。我们的结果表明,同源金属与 RcnR 的结合使它的 N 端有序化,降低了螺旋 1 的柔韧性,并诱导构象变化,从而限制了带正电荷的残基 Arg-14 和 Lys-17 与 DNA 的相互作用。这些金属诱导的变化降低了 RcnR-DNA 结合亲和力,导致 表达。

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1
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Inorg Chem. 2017 Jun 5;56(11):6459-6476. doi: 10.1021/acs.inorgchem.7b00527. Epub 2017 May 18.
2
The mechanism of a formaldehyde-sensing transcriptional regulator.甲醛感应转录调控因子的作用机制。
Sci Rep. 2016 Dec 9;6:38879. doi: 10.1038/srep38879.
3
Nickel-responsive transcriptional regulators.镍反应性转录调节因子。
Metallomics. 2015 Sep;7(9):1305-18. doi: 10.1039/c5mt00072f.
4
Noncognate DNA damage prevents the formation of the active conformation of the Y-family DNA polymerases DinB and DNA polymerase κ.非同源DNA损伤会阻止Y家族DNA聚合酶DinB和DNA聚合酶κ活性构象的形成。
FEBS J. 2015 Jul;282(14):2646-60. doi: 10.1111/febs.13304. Epub 2015 May 11.
5
Electrostatic occlusion and quaternary structural ion pairing are key determinants of Cu(I)-mediated allostery in the copper-sensing operon repressor (CsoR).静电封闭和四级结构离子配对是铜感应操纵子阻遏物(CsoR)中铜(I)介导的变构作用的关键决定因素。
Biochemistry. 2015 Apr 21;54(15):2463-72. doi: 10.1021/acs.biochem.5b00154. Epub 2015 Apr 3.
6
Metal preferences and metallation.金属偏好与金属化作用
J Biol Chem. 2014 Oct 10;289(41):28095-103. doi: 10.1074/jbc.R114.588145. Epub 2014 Aug 26.
7
Cu(I)-mediated allosteric switching in a copper-sensing operon repressor (CsoR).铜感应操纵子阻遏物(CsoR)中铜(I)介导的变构转换。
J Biol Chem. 2014 Jul 4;289(27):19204-17. doi: 10.1074/jbc.M114.556704. Epub 2014 May 15.
8
Zinc'ing sensibly: controlling zinc homeostasis at the transcriptional level.合理补锌:在转录水平控制锌稳态
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Mass spectrometry-based methods to study protein architecture and dynamics.基于质谱的方法研究蛋白质结构与动态。
Protein Sci. 2013 May;22(5):530-44. doi: 10.1002/pro.2238. Epub 2013 Mar 26.
10
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