分子动力学模拟表明,新设计的 α/β 蛋白中存在稳定突变。

IF 2.6 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Matthew Gill, Michelle E McCully
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引用次数: 0

摘要

设计能够耐受极端高温的功能性蛋白质有利于工业和蛋白质治疗应用。因此,阐明热稳定性的原子级决定因素是合理设计蛋白质的主要兴趣所在。为此,我们以人类原羧肽酶 A2(AYEwt)的激活结构域为基础,比较了一组先前设计的耐热蛋白质的结构和动力学。这些设计蛋白质中的突变旨在增加疏水核心包装和二级结构间的相互作用。为了评估这些设计策略是否成功,我们在 25 和 100°C 温度下对 AYEwt 和三种设计变体进行了全原子、显式溶剂分子动力学(MD)模拟。根据二级结构含量、Cα 均方根偏差/波动和埋藏残基溶剂可及表面积,我们的 MD 模拟结果与设计变体的相对实验稳定性一致。通过接触分析,我们发现这些设计能够稳定二级结构间的相互作用和埋藏的疏水表面积。根据分析结果,我们又设计了三个变体,以测试螺旋稳定、核心包装和 Phe → Met 突变对耐热性的作用。我们对这些变体进行了额外的 MD 模拟和分析,这些数据支持了我们的预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Molecular dynamics simulations suggest stabilizing mutations in a de novo designed α/β protein.

Molecular dynamics simulations suggest stabilizing mutations in a de novo designed α/β protein.

Molecular dynamics simulations suggest stabilizing mutations in a de novo designed α/β protein.

Molecular dynamics simulations suggest stabilizing mutations in a de novo designed α/β protein.

Designing functional proteins that can withstand extreme heat is beneficial for industrial and protein therapeutic applications. Thus, elucidating the atomic-level determinants of thermostability is a major interest for rational protein design. To that end, we compared the structure and dynamics of a set of previously designed, thermostable proteins based on the activation domain of human procarboxypeptidase A2 (AYEwt). The mutations in these designed proteins were intended to increase hydrophobic core packing and inter-secondary-structure interactions. To evaluate whether these design strategies were successfully deployed, we performed all-atom, explicit-solvent molecular dynamics (MD) simulations of AYEwt and three designed variants at both 25 and 100°C. Our MD simulations agreed with the relative experimental stabilities of the designs based on their secondary structure content, Cα root-mean-square deviation/fluctuation, and buried-residue solvent accessible surface area. Using a contact analysis, we found that the designs stabilize inter-secondary structure interactions and buried hydrophobic surface area, as intended. Based on our analysis, we designed three additional variants to test the role of helix stabilization, core packing, and a Phe → Met mutation on thermostability. We performed the additional MD simulations and analysis on these variants, and these data supported our predictions.

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来源期刊
Protein Engineering Design & Selection
Protein Engineering Design & Selection 生物-生化与分子生物学
CiteScore
3.30
自引率
4.20%
发文量
14
审稿时长
6-12 weeks
期刊介绍: Protein Engineering, Design and Selection (PEDS) publishes high-quality research papers and review articles relevant to the engineering, design and selection of proteins for use in biotechnology and therapy, and for understanding the fundamental link between protein sequence, structure, dynamics, function, and evolution.
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