Exploring the sequence and structural determinants of the energy landscape from thermodynamically stable and kinetically trapped subtilisins: ISP1 and SbtE.

IF 5.2 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Protein Science Pub Date : 2025-09-01 DOI:10.1002/pro.70264
Miriam R Hood, Susan Marqusee
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引用次数: 0

Abstract

A protein's energy landscape, all accessible conformations, their populations, and dynamics of interconversion, is encoded in its primary sequence. While how this sequence encodes a protein's native state is well understood, how it encodes the dynamics, such as the kinetic barriers for unfolding and refolding, is not. Here we have looked at two subtiliase homologs from Bacillus subtilis, Intracellular Subtilisin Protease 1 (ISP1) and Subtilisin E (SbtE), that are expected to have very different dynamics. ISP1, an intracellular protein, has a small pro-domain thought to act simply as a zymogen, whereas the extracellular SbtE has a large pro-domain required for folding. The stability and kinetics of the mature proteins have been previously characterized; here we compare their energy landscapes with and without the pro-domain, examining global and local energetics of the mature proteases and the effect of each pro-domain. We find that ISP1's pro-domain has limited impact on the energy landscape of the mature protein. For SbtE, the protein is thermodynamically unstable and kinetically trapped without the pro-domain. The pro-domains' effects on the flexibility of the core of the proteins are different: in the absence of its pro-domain, ISP1's core becomes more flexible, while SbtE's core becomes more rigid. ISP1 contains a conserved insertion, which points to a potential source for these differences. These homologs show how changes in the primary sequence can dramatically alter a protein's energy landscape and highlight the need for large-scale, high-throughput studies on the relationship between primary sequence and conformational dynamics.

从热力学稳定和动力学捕获的枯草菌素ISP1和SbtE探索能量景观的序列和结构决定因素。
蛋白质的能量格局,包括所有可能的构象、它们的种群和相互转换的动态,都被编码在它的初级序列中。虽然这个序列如何编码蛋白质的天然状态已经很好理解,但它如何编码动力学,例如展开和再折叠的动力学障碍,还不清楚。在这里,我们研究了枯草芽孢杆菌的两种枯草酶同源物,细胞内枯草蛋白酶1 (ISP1)和枯草芽孢杆菌E (SbtE),预计它们具有非常不同的动力学。ISP1是一种细胞内蛋白,有一个小的前结构域,被认为只是作为酶原,而细胞外的SbtE有一个大的前结构域,需要折叠。成熟蛋白的稳定性和动力学已经被表征;在这里,我们比较了它们在有和没有前结构域的情况下的能量格局,检查了成熟蛋白酶的全局和局部能量学以及每个前结构域的影响。我们发现ISP1的前结构域对成熟蛋白的能量格局影响有限。对于SbtE,蛋白质在热力学上是不稳定的,并且在动力学上被捕获,没有前结构域。前结构域对蛋白质核心灵活性的影响是不同的:在没有前结构域的情况下,ISP1的核心变得更灵活,而SbtE的核心变得更刚性。ISP1包含一个保守插入,它指出了这些差异的潜在来源。这些同源物显示了一级序列的变化如何显著改变蛋白质的能量格局,并强调了一级序列与构象动力学之间关系的大规模、高通量研究的必要性。
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
Protein Science
Protein Science 生物-生化与分子生物学
CiteScore
12.40
自引率
1.20%
发文量
246
审稿时长
1 months
期刊介绍: Protein Science, the flagship journal of The Protein Society, is a publication that focuses on advancing fundamental knowledge in the field of protein molecules. The journal welcomes original reports and review articles that contribute to our understanding of protein function, structure, folding, design, and evolution. Additionally, Protein Science encourages papers that explore the applications of protein science in various areas such as therapeutics, protein-based biomaterials, bionanotechnology, synthetic biology, and bioelectronics. The journal accepts manuscript submissions in any suitable format for review, with the requirement of converting the manuscript to journal-style format only upon acceptance for publication. Protein Science is indexed and abstracted in numerous databases, including the Agricultural & Environmental Science Database (ProQuest), Biological Science Database (ProQuest), CAS: Chemical Abstracts Service (ACS), Embase (Elsevier), Health & Medical Collection (ProQuest), Health Research Premium Collection (ProQuest), Materials Science & Engineering Database (ProQuest), MEDLINE/PubMed (NLM), Natural Science Collection (ProQuest), and SciTech Premium Collection (ProQuest).
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