嗜极脯氨酰寡肽酶热适应性比较分析

IF 3.2 3区 生物学 Q2 BIOPHYSICS Biophysical journal Pub Date : 2024-09-17 Epub Date: 2024-07-15 DOI:10.1016/j.bpj.2024.07.013
Elizabeth M Diessner, Gemma R Takahashi, Carter T Butts, Rachel W Martin
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引用次数: 0

摘要

我们采用蛋白质结构预测、原子分子动力学和轨迹分析相结合的方法,研究了在各种自然环境中发现的嗜心理、嗜中和嗜热生物的脯氨酰寡肽酶(POPs),以确定 S9 蛋白酶家族如何适应极端的热条件。我们将研究结果与文献中有关蛋白质在极端温度下保持结构和功能的结构适应性的假设进行了比较,发现在持久性有机污染物的情况下,只有一部分建议的适应性被用于保持稳定性。催化结构域和螺旋桨结构域是高度结构化的,这就限制了为增强疏水性或形成二硫键而不破坏必要二级结构的形成而进行突变的范围。相反,我们观察到一种模式,即随着温度的升高,结合相互作用(盐桥和氢键)的总体流行率通过使用数量越来越多、寿命越来越短的相互作用而得到保持。这表明在这个蛋白质家族中,热适应的作用是熵而不是能量策略。
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Comparative analysis of thermal adaptations of extremophilic prolyl oligopeptidases.

Prolyl oligopeptidases from psychrophilic, mesophilic, and thermophilic organisms found in a range of natural environments are studied using a combination of protein structure prediction, atomistic molecular dynamics, and trajectory analysis to determine how the S9 protease family adapts to extreme thermal conditions. We compare our results with hypotheses from the literature regarding structural adaptations that allow proteins to maintain structure and function at extreme temperatures, and we find that, in the case of prolyl oligopeptidases, only a subset of proposed adaptations are employed for maintaining stability. The catalytic and propeller domains are highly structured, limiting the range of mutations that can be made to enhance hydrophobicity or form disulfide bonds without disrupting the formation of necessary secondary structure. Rather, we observe a pattern in which overall prevalence of bound interactions (salt bridges and hydrogen bonds) is conserved by using increasing numbers of increasingly short-lived interactions as temperature increases. This suggests a role for an entropic rather than energetic strategy for thermal adaptation in this protein family.

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来源期刊
Biophysical journal
Biophysical journal 生物-生物物理
CiteScore
6.10
自引率
5.90%
发文量
3090
审稿时长
2 months
期刊介绍: BJ publishes original articles, letters, and perspectives on important problems in modern biophysics. The papers should be written so as to be of interest to a broad community of biophysicists. BJ welcomes experimental studies that employ quantitative physical approaches for the study of biological systems, including or spanning scales from molecule to whole organism. Experimental studies of a purely descriptive or phenomenological nature, with no theoretical or mechanistic underpinning, are not appropriate for publication in BJ. Theoretical studies should offer new insights into the understanding ofexperimental results or suggest new experimentally testable hypotheses. Articles reporting significant methodological or technological advances, which have potential to open new areas of biophysical investigation, are also suitable for publication in BJ. Papers describing improvements in accuracy or speed of existing methods or extra detail within methods described previously are not suitable for BJ.
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