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Cyanide Hydratase Modification Using Computational Design and Docking Analysis for Improved Binding Affinity in Cyanide Detoxification

机译:使用计算设计和对接分析来改善氰化物排毒的结合亲和力的氰化物酶改性

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摘要

Cyanide is a hazardous and detrimental chemical that causes the inactivation of the respiration system through the inactivation of cytochrome c oxidase. Because of the limitation in the number of cyanide-degrading enzymes, there is a great demand to design and introduce new enzymes with better functionality. This study developed an integrated method of protein-homology-modelling and ligand-docking protein-design approaches that reconstructs a better active site from cyanide hydratase (CHT) structure. Designing a mutant CHT (mCHT) can improve the CHT performance. A computational design procedure that focuses on mutation for constructing a new model of cyanide hydratase with better activity was used. In fact, this study predicted the three-dimensional (3D) structure of CHT for subsequent analysis. Inducing mutation on CHT of Trichoderma harzianum was performed and molecular docking was used to compare protein interaction with cyanide as a ligand in both CHT and mCHT. By combining multiple designed mutations, a significant improvement in docking for CHT was obtained. The results demonstrate computational capabilities for enhancing and accelerating enzyme activity. The result of sequence alignment and homology modeling show that catalytic triad (Cys-Glu-Lys) was conserved in CHT of Trichoderma harzianum. By inducing mutation in CHT structure, MolDock score enhanced from −18.1752 to −23.8575, thus the nucleophilic attack can occur rapidly by adding Cys in the catalytic cavity and the total charge of protein in pH 6.5 is increased from −6.0004 to −5.0004. Also, molecular dynamic simulation shows a stable protein-ligand complex model. These changes would help in the cyanide degradation process by mCHT.
机译:氰化物是一种危险和有害的化学品,导致呼吸系统的失活通过灭活细胞色素C氧化酶。由于氰化物降解酶数的限制,有很大的要求设计和引入具有更好功能的新酶。该研究开发了一种综合的蛋白质 - 同源性建模和配体对接蛋白质设计方法,该方法从氰化物​​酶(CHT)结构中重建更好的活性位点。设计突变体CHT(MCHT)可以提高CHT性能。使用缩影突变的计算设计程序,用于构建具有更好活性的氰化氢酶的新模型。事实上,该研究预测了CHT的三维(3D)结构进行后续分析。进行诱导Trichoderma Harzianum的CHT突变,并使用分子对接将蛋白质相互作用与氰化物作为CHT和MCHT中的配体进行比较。通过组合多种设计的突变,获得了CHT对接的显着改善。结果证明了增强和加速酶活性的计算能力。序列对准和同源性建模的结果表明,催化三合会(Cys-glu-lys)在Trichoderma Harzianum的CHT中保守。通过在CHT结构中诱导突变,从-18.1752至-23.8575增强蜕变评分,因此通过在催化腔中添加Cys,亲核侵蚀可以快速发生,并且pH 6.5中的蛋白质的总电荷从-6.0004增加到-5.0004。此外,分子动态模拟显示稳定的蛋白质 - 配体复合体模型。这些变化将有助于MCHT的氰化物降解过程。

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