解密 S100B 异源信号:多肽靶标 TRTK-12 作为组合调节剂的作用

IF 5.3 2区 化学 Q1 CHEMISTRY, MEDICINAL
Riya Samanta, Xinhao Zhuang, Kristen M. Varney, David J. Weber and Silvina Matysiak*, 
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引用次数: 0

摘要

异位是一种重要的生物现象,生物分子中一个位点的扰动会引起远端位点的功能反应。它是细胞信号传导、新陈代谢和转录调控等生物过程不可或缺的组成部分。了解异构现象对于合理发现药物也至关重要。在这项研究中,我们重点研究了属于 S100 类 EF 手 Ca2+ 结合蛋白的异构 S100B 蛋白。S100B的Ca2+结合亲和力受到距离Ca2+结合位点25埃的TRTK-12肽结合的异构调节。我们通过核磁共振(NMR)测量和微秒级分子动力学(MD)模拟,研究了不同氯化钠盐浓度下 S100B/Ca2+ 与 TRTK-12 或不与 TRTK-12 结合时 S100B 的异构性。NMR HSQC 结果表明,TRTK-12 可重组 S100B/Ca2+ 在正表位和异表位上对不同盐浓度的反应。MD 数据表明,TRTK-12 打破了同源二聚体蛋白中两个亚基的铰链/螺旋和结合 Ca2+ 的 EF 手环之间的动态芳香键和氢键相互作用(在 X 射线晶体学结构中未观察到)。这引发了蛋白质网络结构的重新排列,并导致异构通讯。最后,在不同离子强度下对 S100B 的计算研究表明,与 S100B/Ca2+ 复合物相比,与配体结合的物种对不断变化的环境更加稳健。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Deciphering S100B Allosteric Signaling: The Role of a Peptide Target, TRTK-12, as an Ensemble Modulator

Deciphering S100B Allosteric Signaling: The Role of a Peptide Target, TRTK-12, as an Ensemble Modulator

Deciphering S100B Allosteric Signaling: The Role of a Peptide Target, TRTK-12, as an Ensemble Modulator

Allostery is an essential biological phenomenon in which perturbation at one site in a biomolecule elicits a functional response at a distal location(s). It is integral to biological processes, such as cellular signaling, metabolism, and transcription regulation. Understanding allostery is also crucial for rational drug discovery. In this work, we focus on an allosteric S100B protein that belongs to the S100 class of EF-hand Ca2+-binding proteins. The Ca2+-binding affinity of S100B is modulated allosterically by TRTK-12 peptide binding 25 Å away from the Ca2+-binding site. We investigated S100B allostery by carrying out nuclear magnetic resonance (NMR) measurements along with microsecond-long molecular dynamics (MD) simulations on S100B/Ca2+ with/without TRTK-12 at different NaCl salt concentrations. NMR HSQC results show that TRTK-12 reorganizes how S100B/Ca2+ responds to different salt concentrations at both orthosteric and allosteric sites. The MD data suggest that TRTK-12 breaks the dynamic aromatic and hydrogen-bond interactions (not observed in X-ray crystallographic structures) between the hinge/helix and Ca2+-binding EF-hand loop of the two subunits in the homodimeric protein. This triggers rearrangement in the protein network architectures and leads to allosteric communication. Finally, computational studies of S100B at distinct ionic strengths suggest that ligand-bound species are more robust to the changing environment relative to the S100B/Ca2+ complex.

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来源期刊
CiteScore
9.80
自引率
10.70%
发文量
529
审稿时长
1.4 months
期刊介绍: The Journal of Chemical Information and Modeling publishes papers reporting new methodology and/or important applications in the fields of chemical informatics and molecular modeling. Specific topics include the representation and computer-based searching of chemical databases, molecular modeling, computer-aided molecular design of new materials, catalysts, or ligands, development of new computational methods or efficient algorithms for chemical software, and biopharmaceutical chemistry including analyses of biological activity and other issues related to drug discovery. Astute chemists, computer scientists, and information specialists look to this monthly’s insightful research studies, programming innovations, and software reviews to keep current with advances in this integral, multidisciplinary field. As a subscriber you’ll stay abreast of database search systems, use of graph theory in chemical problems, substructure search systems, pattern recognition and clustering, analysis of chemical and physical data, molecular modeling, graphics and natural language interfaces, bibliometric and citation analysis, and synthesis design and reactions databases.
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