Changes in flexibility but not in compactness underlie the thermal adaptation of prokaryotic adenylate kinases.

IF 3.7 1区 生物学 Q2 EVOLUTIONARY BIOLOGY
Evolution Letters Pub Date : 2025-08-06 eCollection Date: 2025-10-01 DOI:10.1093/evlett/qraf026
Dimitrios-Georgios Kontopoulos, Ilias Patmanidis, Timothy G Barraclough, Samraat Pawar
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引用次数: 0

Abstract

Understanding the structural changes that enable enzymes to remain active in extreme thermal conditions is of broad scientific interest for both fundamental and applied biological research. Three key mechanisms that underlie the thermal adaptation of enzymes are modifications in structural flexibility, compactness, and the contacts formed among amino acids. However, most previous studies on these topics have been limited to small sample sizes or a narrow taxonomic focus, and the importance of these factors to thermal adaptation remains poorly understood. In this study, we combined molecular dynamics simulations and phylogenetic comparative analyses to thoroughly analyze the structural factors underlying thermal adaptation in adenylate kinase-a key enzyme involved in cellular energy balance and homeostasis-across 70 prokaryotic species. We detect systematic increases in the flexibility of the enzyme with temperature, both across and within species. In contrast, structural compactness appears to be almost completely independent of temperature. Finally, we uncover a remarkable diversity in the number and types of amino acid contacts observed in different adenylate kinases that cannot be explained solely by temperature. Our results suggest that there are multiple paths toward the adaptation of prokaryotic adenylate kinases to extreme thermal environments and that these paths are generally accessible through changes in flexibility.

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原核腺苷酸激酶热适应的基础是灵活性的变化,而不是致密性的变化。
了解使酶在极端热条件下保持活性的结构变化对基础和应用生物学研究都具有广泛的科学兴趣。酶的热适应的三个关键机制是结构灵活性的改变,紧密性和氨基酸之间形成的接触。然而,以往关于这些主题的研究大多局限于小样本量或狭窄的分类焦点,并且这些因素对热适应的重要性仍然知之甚少。在这项研究中,我们结合分子动力学模拟和系统发育比较分析,深入分析了70个原核生物物种中腺苷酸激酶(一种参与细胞能量平衡和稳态的关键酶)热适应的结构因素。我们发现,无论是跨物种还是物种内部,酶的灵活性都随着温度的升高而系统性地增加。相反,结构致密性似乎几乎完全与温度无关。最后,我们发现了在不同腺苷酸激酶中观察到的氨基酸接触数量和类型的显著差异,这不能仅仅用温度来解释。我们的研究结果表明,原核腺苷酸激酶对极端热环境的适应有多种途径,这些途径通常通过灵活性的变化来实现。
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
Evolution Letters
Evolution Letters EVOLUTIONARY BIOLOGY-
CiteScore
13.00
自引率
2.00%
发文量
35
审稿时长
10 weeks
期刊介绍: Evolution Letters publishes cutting-edge new research in all areas of Evolutionary Biology. Available exclusively online, and entirely open access, Evolution Letters consists of Letters - original pieces of research which form the bulk of papers - and Comments and Opinion - a forum for highlighting timely new research ideas for the evolutionary community.
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