Insights Into The Effects of Amino Acid Substitutions on The Stability of Reteplase Structure: A Molecular Dynamics Simulation Study.

IF 1.6 4区 生物学 Q4 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Iranian Journal of Biotechnology Pub Date : 2023-01-01 DOI:10.30498/ijb.2022.308798.3175
Kaveh Haji-Allahverdipoor, Mokhtar Jalali Javaran, Sajad Rashidi Monfared, Mohamad Bagher Khadem-Erfan, Bahram Nikkhoo, Zhila Bahrami Rad, Habib Eslami, Sherko Nasseri
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Abstract

Background: Reteplase (recombinant plasminogen activator, r-PA) is a recombinant protein designed to imitate the endogenous tissue plasminogen activator and catalyze the plasmin production. It is known that the application of reteplase is limited by the complex production processes and protein's stability challenges. Computational redesign of proteins has gained momentum in recent years, particularly as a powerful tool for improving protein stability and consequently its production efficiency. Hence, in the current study, we implemented computational approaches to improve r-PA conformational stability, which fairly correlates with protein's resistance to proteolysis.

Objectives: The current study was developed in order to evaluate the effect of amino acid substitutions on the stability of reteplase structure using molecular dynamic simulations and computational predictions.

Materials and methods: Several web servers designed for mutation analysis were utilized to select appropriate mutations. Additionally, the experimentally reported mutation, R103S, converting wild type r-PA into non-cleavable form, was also employed. Firstly, mutant collection, consisting of 15 structures, was constructed based on the combinations of four designated mutations. Then, 3D structures were generated using MODELLER. Finally, 17 independent 20-ns molecular dynamics (MD) simulations were conducted and different analysis were performed like root-mean-square deviation (RMSD), root-mean-square fluctuations (RMSF), secondary structure analysis, number of hydrogen bonds, principal components analysis (PCA), eigenvector projection, and density analysis.

Results: Predicted mutations successfully compensated the more flexible conformation caused by R103S substitution, so, improved conformational stability was analyzed from MD simulations. In particular, R103S/A286I/G322I indicated the best results and remarkably enhanced the protein stability.

Conclusion: The conformational stability conferred by these mutations will probably lead to more protection of r-PA in protease-rich environments in various recombinant systems and potentially enhance its production and expression level.

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氨基酸取代对Reteplase结构稳定性的影响:分子动力学模拟研究。
Reteplase(重组纤溶酶原激活物,r-PA)是一种重组蛋白,旨在模仿内源性组织纤溶酶原激活物并催化纤溶酶的产生。众所周知,reteplase的应用受到复杂的生产过程和蛋白质稳定性挑战的限制。近年来,计算重新设计蛋白质的势头越来越大,特别是作为提高蛋白质稳定性和生产效率的有力工具。因此,在当前的研究中,我们采用计算方法来提高r-PA构象稳定性,这与蛋白质对蛋白质水解的抗性相当相关。目的:利用分子动力学模拟和计算预测的方法,评价氨基酸取代对酶结构稳定性的影响。材料和方法:利用几个专为突变分析设计的web服务器选择合适的突变。此外,还采用了实验报道的突变R103S,将野生型r-PA转化为不可切割的形式。首先,以4个指定突变组合为基础,构建了由15个结构组成的突变集合;然后,使用modeler生成三维结构。最后进行了17个独立的20-ns分子动力学(MD)模拟,并进行了如均方根偏差(RMSD)、均方根波动(RMSF)、二级结构分析、氢键数、主成分分析(PCA)、特征向量投影和密度分析等不同的分析。结果:预测突变成功地补偿了R103S取代引起的更灵活的构象,因此,从MD模拟中分析了改善的构象稳定性。其中,R103S/A286I/G322I效果最好,显著提高了蛋白稳定性。结论:这些突变所赋予的构象稳定性可能会导致r-PA在各种重组系统中富含蛋白酶的环境中得到更多的保护,并可能提高其生产和表达水平。
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来源期刊
Iranian Journal of Biotechnology
Iranian Journal of Biotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
2.60
自引率
7.70%
发文量
20
期刊介绍: Iranian Journal of Biotechnology (IJB) is published quarterly by the National Institute of Genetic Engineering and Biotechnology. IJB publishes original scientific research papers in the broad area of Biotechnology such as, Agriculture, Animal and Marine Sciences, Basic Sciences, Bioinformatics, Biosafety and Bioethics, Environment, Industry and Mining and Medical Sciences.
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