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用二硫键连接突变型T1脂肪酶的末端可提高其结构的刚性和稳定性。

Knotting terminal ends of mutant T1 lipase with disulfide bond improved structure rigidity and stability.

作者信息

Hamdan Siti Hajar, Maiangwa Jonathan, Nezhad Nima Ghahremani, Ali Mohd Shukuri Mohamad, Normi Yahaya M, Shariff Fairolniza Mohd, Rahman Raja Noor Zaliha Raja Abd, Leow Thean Chor

机构信息

Department of Cell and Molecular Biology, Faculty of Biotechnology and Biomolecular Science, Universiti Putra Malaysia Serdang, UPM Serdang, 43400, Selangor, Malaysia.

Enzyme Microbial Technology Research Centre, Faculty of Biotechnology and Biomolecular Science, Universiti Putra Malaysia Serdang, UPM Serdang, 43400, Selangor, Malaysia.

出版信息

Appl Microbiol Biotechnol. 2023 Mar;107(5-6):1673-1686. doi: 10.1007/s00253-023-12396-5. Epub 2023 Feb 8.

Abstract

Lipase biocatalysts offer unique properties which are often impaired by low thermal and methanol stability. In this study, the rational design was employed to engineer a disulfide bond in the protein structure of Geobacillus zalihae T1 lipase in order to improve its stability. The selection of targeted disulfide bond sites was based on analysis of protein spatial configuration and change of Gibbs free energy. Two mutation points (S2C and A384C) were generated to rigidify the N-terminal and C-terminal regions of T1 lipase. The results showed the mutant 2DC lipase improved methanol stability from 35 to 40% (v/v) after 30 min of pre-incubation. Enhancement in thermostability for the mutant 2DC lipase at 70 °C and 75 °C showed higher half-life at 70 °C and 75 °C for 30 min and 52 min, respectively. The mutant 2DC lipase maintained the same optimum temperature (70 °C) as T1 lipase, while thermally induced unfolding showed the mutant maintained higher rigidity. The kcat/Km values demonstrated a relatively small difference between the T1 lipase (WT) and 2DC lipase (mutant). The kcat/Km (s mM) of the T1 and 2DC showed values of 13,043 ± 224 and 13,047 ± 312, respectively. X-ray diffraction of 2DC lipase crystal structure with a resolution of 2.04 Å revealed that the introduced single disulfide bond did not lower initial structural interactions within the residues. Enhanced methanol and thermal stability are suggested to be strongly related to the newly disulfide bridge formation and the enhanced compactness and rigidity of the mutant structure. KEY POINTS: • Protein engineering via rational design revealed relative improved enzymatic performance. • The presence of disulfide bond impacts on the rigidity and structural function of proteins. • X-ray crystallography reveals structural changes accompanying protein modification.

摘要

脂肪酶生物催化剂具有独特的性质,但这些性质常常会因热稳定性和甲醇稳定性低而受到影响。在本研究中,采用合理设计的方法在嗜热栖热放线菌T1脂肪酶的蛋白质结构中构建二硫键,以提高其稳定性。靶向二硫键位点的选择基于蛋白质空间构型分析和吉布斯自由能变化。产生了两个突变点(S2C和A384C),以强化T1脂肪酶的N端和C端区域。结果表明,突变型2DC脂肪酶在预孵育30分钟后,甲醇稳定性从35%(v/v)提高到40%(v/v)。突变型2DC脂肪酶在70℃和75℃下热稳定性的增强表明,在70℃和75℃下的半衰期分别延长至30分钟和52分钟。突变型2DC脂肪酶与T1脂肪酶保持相同的最适温度(70℃),而热诱导的去折叠显示突变体保持更高的刚性。kcat/Km值表明T1脂肪酶(野生型)和2DC脂肪酶(突变体)之间的差异相对较小。T1和2DC的kcat/Km(s mM)值分别为13,043±224和13,047±312。分辨率为2.04 Å的2DC脂肪酶晶体结构的X射线衍射表明,引入的单个二硫键并未降低残基内的初始结构相互作用。甲醇和热稳定性的增强被认为与新形成的二硫键以及突变体结构的紧凑性和刚性增强密切相关。要点:• 通过合理设计进行蛋白质工程显示出相对改善的酶性能。• 二硫键的存在影响蛋白质的刚性和结构功能。• X射线晶体学揭示了蛋白质修饰伴随发生的结构变化。

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