The regulation of the thermal stability and affinity of the HSPA5 (Grp78/BiP) by clients and nucleotides is modulated by domains coupling

IF 2.5 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Noeli S.M. Silva , Bruna Siebeneichler , Carlos S. Oliveira , Paulo R. Dores-Silva , Júlio C. Borges
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引用次数: 0

Abstract

The HSPA5 protein (BiP/Grp78) serves as a pivotal chaperone in maintaining cellular protein quality control. As a member of the human HSP70 family, HSPA5 comprises two distinct domains: a nucleotide-binding domain (NBD) and a peptide-binding domain (PBD). In this study, we investigated the interdomain interactions of HSPA5, aiming to elucidate how these domains regulate its function as a chaperone. Our findings revealed that HSPA5-FL, HSPA5-T, and HSPA5-N exhibit varying affinities for ATP and ADP, with a noticeable dependency on Mg2+ for optimal interactions. Interestingly, in ADP assays, the presence of the metal ion seems to enhance NBD binding only for HSPA5-FL and HSPA5-T. Moreover, while the truncation of the C-terminus does not significantly impact the thermal stability of HSPA5, experiments involving MgATP underscore its essential role in mediating interactions and nucleotide hydrolysis. Thermal stability assays further suggested that the NBD-PBD interface enhances the stability of the NBD, more pronounced for HSPA5 than for the orthologous HSPA1A, and prevents self-aggregation through interdomain coupling. Enzymatic analyses indicated that the presence of PBD enhances NBD ATPase activity and augments its nucleotide affinity. Notably, the intrinsic chaperone activity of the PBD is dependent on the presence of the NBD, potentially due to the propensity of the PBD for self-oligomerization. Collectively, our data highlight the pivotal role of allosteric mechanisms in modulating thermal stability, nucleotide interaction, and ATPase activity of HSPA5, underscoring its significance in protein quality control within cellular environments.

Abstract Image

HSPA5 (Grp78/BiP)的热稳定性和亲和性受客户和核苷酸的调节,并受结构域耦合的调控。
HSPA5 蛋白(BiP/Grp78)是维持细胞蛋白质质量控制的关键伴侣蛋白。作为人类 HSP70 家族的成员,HSPA5 由两个不同的结构域组成:核苷酸结合结构域(NBD)和肽结合结构域(PBD)。在这项研究中,我们研究了 HSPA5 的结构域间相互作用,旨在阐明这些结构域如何调节其作为伴侣的功能。我们的研究结果表明,HSPA5-FL、HSPA5-T 和 HSPA5-N 对 ATP 和 ADP 表现出不同的亲和力,要实现最佳的相互作用,对 Mg2+ 有明显的依赖性。有趣的是,在 ADP 试验中,金属离子的存在似乎只增强了 HSPA5-FL 和 HSPA5-T 与 NBD 的结合。此外,虽然 C 端截断不会对 HSPA5 的热稳定性产生重大影响,但 MgATP 的实验强调了它在介导相互作用和核苷酸水解中的重要作用。热稳定性测定进一步表明,NBD-PBD 界面增强了 NBD 的稳定性,这一点在 HSPA5 中比在同源的 HSPA1A 中更为明显,并且通过域间耦合防止了自我聚集。酶学分析表明,PBD 的存在提高了 NBD ATPase 的活性并增强了其核苷酸亲和力。值得注意的是,PBD 的内在伴侣活性依赖于 NBD 的存在,这可能是由于 PBD 有自我聚合的倾向。总之,我们的数据强调了异构机制在调节 HSPA5 的热稳定性、核苷酸相互作用和 ATPase 活性方面的关键作用,突出了它在细胞环境中蛋白质质量控制方面的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
8.00
自引率
0.00%
发文量
55
审稿时长
33 days
期刊介绍: BBA Proteins and Proteomics covers protein structure conformation and dynamics; protein folding; protein-ligand interactions; enzyme mechanisms, models and kinetics; protein physical properties and spectroscopy; and proteomics and bioinformatics analyses of protein structure, protein function, or protein regulation.
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