通过跨区域组合诱变提高 3α- 羟类固醇脱氢酶的特异性活性。

IF 8.5 1区 化学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Siqi Ma , Musen Li , Shengheng Yan , Yi Wang , Binju Wang , Wei Luo
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引用次数: 0

摘要

来自 Comamonas testosteroni 的 3α-羟类固醇脱氢酶(3α-HSD)被广泛用于临床测量血清总胆汁酸水平。然而,其酶活性低导致操作成本高。在这项研究中,我们采用了组合诱变方法来系统地确定酶内潜在的关键突变位点。我们将酶分子分割成不同的区域,并采用了一种整合底物口袋工程、结合能计算和深度学习技术的综合策略。通过实验验证,从突变库中确定了单点突变体,其酶活性至少增强了 1.5 倍。通过对它们进行迭代组合突变,获得了最佳突变体 H119A/R201G/R216L。该突变体对脱氧胆酸的特异活性为 34.18 U/mg ,比野生型(WT)酶提高了 6.85 倍。此外,突变体的最适温度从 35 ℃ 升至 40 ℃,其周转次数和催化效率分别提高了 6.4 倍和 9.4 倍。量子力学/分子力学(QM/MM)计算表明,与 WT 酶相比,H119A/R201G/R216L 突变体脱氢酶反应的能垒降低了。具体来说,R201G 突变显著降低了沿 3α- 羟基的电场强度,促进了其去质子化。这项研究为通过策略性诱变提高酶的效率提供了见解,并阐明了可优化酶的性能以用于临床和生物技术应用的机理变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the specific activity of 3α-hydroxysteroid dehydrogenase through cross-regional combinatorial mutagenesis
3α-Hydroxysteroid dehydrogenase (3α-HSD) from Comamonas testosteroni is widely used in clinical settings to measure serum total bile acid levels. However, its low enzymatic activity leads to high operational costs. In this study, we employed a combinatorial mutagenesis approach to systematically identify potential key mutation sites within the enzyme. The enzyme molecule was segmented into distinct regions, and a comprehensive strategy integrating substrate pocket engineering, binding energy calculations, and deep learning techniques was used. Through experimental verification, single-point mutants from the mutation library with enhanced enzymatic activity by at least 1.5-fold were identified. Through iterative combinatorial mutations of them, the optimal mutant H119A/R201G/R216L was obtained. This mutant exhibited a specific activity of 34.18 U/mg towards deoxycholic acid, representing a 6.85-fold increase over the wild-type (WT) enzyme. Additionally, the optimal temperature of the mutant increased from 35 °C to 40 °C, and its turnover number and catalytic efficiency increased by 6.4-fold and 9.4-fold, respectively. Quantum mechanics/molecular mechanics (QM/MM) calculations indicated that the energy barrier of the dehydrogenase reaction was reduced in the H119A/R201G/R216L mutant compared to that of the WT enzyme. Specifically, the R201G mutation significantly reduced the electric field strength along the 3α-hydroxyl group, facilitating its deprotonation. This study provides insights into enhancing enzymatic efficiency through strategic mutagenesis and elucidates mechanistic changes that optimize enzyme performance for clinical and biotechnological applications.
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来源期刊
International Journal of Biological Macromolecules
International Journal of Biological Macromolecules 生物-生化与分子生物学
CiteScore
13.70
自引率
9.80%
发文量
2728
审稿时长
64 days
期刊介绍: The International Journal of Biological Macromolecules is a well-established international journal dedicated to research on the chemical and biological aspects of natural macromolecules. Focusing on proteins, macromolecular carbohydrates, glycoproteins, proteoglycans, lignins, biological poly-acids, and nucleic acids, the journal presents the latest findings in molecular structure, properties, biological activities, interactions, modifications, and functional properties. Papers must offer new and novel insights, encompassing related model systems, structural conformational studies, theoretical developments, and analytical techniques. Each paper is required to primarily focus on at least one named biological macromolecule, reflected in the title, abstract, and text.
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