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基于数据驱动挖掘热稳定脂肪酶并对其底物特异性机制进行分子层面洞察

Data-Driven Mining of a Thermostable Lipase with Molecular Insights into Mechanisms of Its Substrate Specificity.

作者信息

Wang Qiong, Zhao Mei, Zabed Hossain M, Tang Xinrui, Chen Jiaojiao, Wang Jiayin, Li Haoyang, Qi Xianghui

机构信息

School of Food & Biological Engineering, Jiangsu University, 301 Xuefu Road, Zhenjiang 212013, Jiangsu, China.

School of Life Sciences, Guangzhou University, 230 Wai Huan Xi Road, Guangzhou 510006, Guangdong, China.

出版信息

J Agric Food Chem. 2025 Jul 16;73(28):17739-17749. doi: 10.1021/acs.jafc.5c02801. Epub 2025 Jul 1.

Abstract

The discovery of novel heat-resistant lipases has the potential to broaden their applications in the food industry and other fields. This study identified a novel heat-resistant lipase PFHL from HK44 based on data-driven mining, which was subsequently expressed in for its molecular insights into substrate specificity. The purified PFHL demonstrated optimal activity at 60 °C and pH 7.0 with a half-life of 2.52 h and retained 48.23% of its relative activity at 90 °C. The enzyme exhibited a substrate preference for medium-chain fatty acid esters, displaying a catalytic efficiency / of 134.31 mM·min toward 4-nitrophenyl laurate (NPC), 1.45-fold higher than that for 4-nitrophenyl palmitate (NPC). Additionally, molecular docking and molecular dynamics simulations were performed to elucidate the mechanism underlying its substrate specificity and catalytic efficiency. The results revealed that NPC fit the catalytic pocket better than NPC, and the complex exhibited greater stability during the simulation. Up to seven hydrogen bonds were formed, and the substrate was able to rapidly reach and position itself within the catalytic pocket. These findings offer valuable insights into PFHL's substrate preferences, laying the groundwork for its rational design and further optimization to enhance its suitability for industrial applications in the future.

摘要

新型耐热脂肪酶的发现有可能拓宽其在食品工业和其他领域的应用。本研究基于数据驱动挖掘从HK44中鉴定出一种新型耐热脂肪酶PFHL,随后将其在[具体表达宿主未给出]中表达以深入了解其底物特异性的分子机制。纯化后的PFHL在60°C和pH 7.0时表现出最佳活性,半衰期为2.52小时,在90°C时保留其相对活性的48.23%。该酶对中链脂肪酸酯表现出底物偏好,对月桂酸对硝基苯酯(NPC)的催化效率kcat/Km为134.31 mM·min,比对棕榈酸对硝基苯酯(NPC)高1.45倍。此外,进行了分子对接和分子动力学模拟以阐明其底物特异性和催化效率的潜在机制。结果表明,NPC比NPC更适合催化口袋,并且复合物在模拟过程中表现出更高的稳定性。形成了多达七个氢键,底物能够迅速到达并定位在催化口袋内。这些发现为PFHL的底物偏好提供了有价值的见解,为其合理设计和进一步优化奠定了基础,以增强其未来在工业应用中的适用性。

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