In silico mining and identification of a novel lipase from Paenibacillus larvae: Rational protein design for improving catalytic performance

IF 3.4 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Enzyme and Microbial Technology Pub Date : 2024-06-13 DOI:10.1016/j.enzmictec.2024.110472
Mengyao Lu , Jiaqi Xu , Ziyuan Wang , Yong Wang , Jianping Wu , Lirong Yang
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Abstract

Lipases play a vital role in various biological processes, from lipid metabolism to industrial applications. However, the ever-evolving challenges and diverse substrates necessitate the continual exploration of novel high-performance lipases. In this study, we employed an in silico mining approach to search for lipases with potential high sn-1,3 selectivity and catalytic activity. The identified novel lipase, PLL, from Paenibacillus larvae subsp. larvae B-3650 exhibited a specific activity of 111.2 ± 5.5 U/mg towards the substrate p-nitrophenyl palmitate (pNPP) and 6.9 ± 0.8 U/mg towards the substrate olive oil when expressed in Escherichia coli (E. coli). Computational design of cysteine mutations was employed to enhance the catalytic performance of PLL. Superior stability was achieved with the mutant K7C/A386C/H159C/K108C (2M3/2M4), showing an increase in melting temperature (Tm) by 1.9°C, a 2.05-fold prolonged half-life at 45°C, and no decrease in enzyme activity. Another mutant, K7C/A386C/A174C/A243C (2M1/2M3), showed a 4.9-fold enhancement in specific activity without compromising stability. Molecular dynamics simulations were conducted to explore the mechanisms of these two mutants. Mutant 2M3/2M4 forms putative disulfide bonds in the loop region, connecting the N- and C-termini of PLL, thus enhancing overall structural rigidity without impacting catalytic activity. The cysteines introduced in mutant 2M1/2M3 not only form new intramolecular hydrogen bonds but also alter the polarity and volume of the substrate-binding pocket, facilitating the entry of large substrate pNPP. These results highlight an efficient in silico exploration approach for novel lipases, offering a rapid and efficient method for enhancing catalytic performance through rational protein design.

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从幼虫拟杆菌中挖掘和鉴定新型脂肪酶:提高催化性能的合理蛋白质设计
从脂质代谢到工业应用,脂肪酶在各种生物过程中发挥着至关重要的作用。然而,不断变化的挑战和多样化的底物要求我们不断探索新型高性能脂肪酶。在这项研究中,我们采用了一种硅学挖掘方法来寻找具有潜在高 Sn-1,3选择性和催化活性的脂肪酶。在大肠杆菌(E. coli)中表达的新型脂肪酶 PLL 对底物对硝基苯棕榈酸酯(pNPP)的特异性活性为 111.2 ± 5.5 U/mg ,对底物橄榄油的特异性活性为 6.9 ± 0.8 U/mg 。为了提高 PLL 的催化性能,对半胱氨酸突变进行了计算设计。突变体 K7C/A386C/H159C/K108C (2M3/2M4)具有极佳的稳定性,熔化温度(Tm)提高了 1.9°C,45°C 时的半衰期延长了 2.05 倍,而且酶活性没有降低。另一个突变体 K7C/A386C/A174C/A243C (2M1/2M3) 的比活性提高了 4.9 倍,但稳定性没有受到影响。为了探索这两个突变体的机制,我们进行了分子动力学模拟。突变体 2M3/2M4 在连接 PLL N 端和 C 端的环区形成了假定的二硫键,从而在不影响催化活性的情况下增强了整体结构的刚性。突变体 2M1/2M3 中引入的半胱氨酸不仅形成了新的分子内氢键,还改变了底物结合袋的极性和容积,有利于大底物 pNPP 的进入。这些结果突显了一种高效的新型脂肪酶硅学探索方法,为通过合理的蛋白质设计提高催化性能提供了一种快速有效的方法。
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来源期刊
Enzyme and Microbial Technology
Enzyme and Microbial Technology 生物-生物工程与应用微生物
CiteScore
7.60
自引率
5.90%
发文量
142
审稿时长
38 days
期刊介绍: Enzyme and Microbial Technology is an international, peer-reviewed journal publishing original research and reviews, of biotechnological significance and novelty, on basic and applied aspects of the science and technology of processes involving the use of enzymes, micro-organisms, animal cells and plant cells. We especially encourage submissions on: Biocatalysis and the use of Directed Evolution in Synthetic Biology and Biotechnology Biotechnological Production of New Bioactive Molecules, Biomaterials, Biopharmaceuticals, and Biofuels New Imaging Techniques and Biosensors, especially as applicable to Healthcare and Systems Biology New Biotechnological Approaches in Genomics, Proteomics and Metabolomics Metabolic Engineering, Biomolecular Engineering and Nanobiotechnology Manuscripts which report isolation, purification, immobilization or utilization of organisms or enzymes which are already well-described in the literature are not suitable for publication in EMT, unless their primary purpose is to report significant new findings or approaches which are of broad biotechnological importance. Similarly, manuscripts which report optimization studies on well-established processes are inappropriate. EMT does not accept papers dealing with mathematical modeling unless they report significant, new experimental data.
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