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Differences in thermal structural changes and melting between mesophilic and thermophilic dihydrofolate reductase enzymes

机译:热结构变化的差异和嗜热性二氢酚酸盐还原酶酶之间的熔化

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摘要

A key aspect of life's evolution on Earth is the adaptation of proteins to be stable and work in a very wide range of temperature conditions. A detailed understanding of the associated molecular mechanisms would also help to design enzymes optimized for biotechnological processes. Despite important advances, a comprehensive picture of how thermophilic enzymes succeed in functioning under extreme temperatures remains incomplete. Here, we examine the temperature dependence of stability and of flexibility in the mesophilic monomericEscherichia coli(Ec) and thermophilic dimericThermotoga maritima(Tm) homologs of the paradigm dihydrofolate reductase (DHFR) enzyme. We use all-atom molecular dynamics simulations and a replica-exchange scheme that allows to enhance the conformational sampling while providing at the same time a detailed understanding of the enzymes' behavior at increasing temperatures. We show that this approach reproduces the stability shift between the two homologs, and provides a molecular description of the denaturation mechanism by identifying the sequence of secondary structure elements melting as temperature increases, which is not straightforwardly obtained in the experiments. By repeating our approach on the hypothetical TmDHFR monomer, we further determine the respective effects of sequence and oligomerization in the exceptional stability of TmDFHR. We show that the intuitive expectation that protein flexibility and thermal stability are correlated is not verified. Finally, our simulations reveal that significant conformational fluctuations already take place much below the melting temperature. While the difference between the TmDHFR and EcDHFR catalytic activities is often interpretedviaa simplified two-state picture involving the open and closed conformations of the key M20 loop, our simulations suggest that the two homologs' markedly different activity temperature dependences are caused by changes in the ligand-cofactor distance distributions in response to these conformational changes.
机译:生活中的一个关键方面在地球上的进化是蛋白质的适应稳定,在非常广泛的温度条件下工作。详细了解相关分子机制也有助于设计针对生物技术过程优化的酶。尽管重要进展,但嗜热酶在极端温度下如何运作的全面形式仍然不完整。在这里,我们研究嗜苯胺的单体粒子COLI(EC)和嗜热二聚体溶解酶(DHFR)酶的嗜热性单体晶体(EC)和嗜热二聚体热疗法疗法(TM)同源物中的温度依赖性和灵活性。我们使用全原子分子动力学模拟和复制交换方案,允许增强构象采样,同时提供对酶在升高温度下的酶行为的详细了解。我们表明这种方法再现两个同源物之间的稳定性偏移,并通过鉴定作为温度升高的次级结构元素的序列来提供变性机制的分子描述,这在实验中并不直接地获得。通过在假设的TMDHFR单体上重复我们的方法,我们进一步确定了序列和低聚的各自效果在TMDFHR的特殊稳定性中。我们表明,不验证蛋白质柔性和热稳定性的直观期望。最后,我们的模拟表明,显着的构象波动已经在低于熔化温度下进行。虽然TMDHFR和ECDHFR催化活动之间的差异通常是解释viaa简化的两个状态图片,其涉及关键M20环路的开放和封闭构象,但我们的模拟表明,两个同源物的显着不同的活动温度依赖性是由配体的变化引起的-Cofactor距离分布响应这些构象变化。

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    PSL Univ Sorbonne Paris Cite Inst Biol Physicochim CNRS Lab Biochim Theor 13 Rue Pierre &

    Marie Curie F-75005 Paris France;

    Sorbonne Univ PSL Univ Ecole Normale Super Dept Chim PASTEUR CNRS 24 Rue Lhomond F-75005 Paris France;

    PSL Univ Sorbonne Paris Cite Inst Biol Physicochim CNRS Lab Biochim Theor 13 Rue Pierre &

    Marie Curie F-75005 Paris France;

    PSL Univ Sorbonne Paris Cite Inst Biol Physicochim CNRS Lab Biochim Theor 13 Rue Pierre &

    Marie Curie F-75005 Paris France;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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