The in-silico study of the structural changes in the Arthrobacter globiformis choline oxidase induced by high temperature

IF 3.5 Q3 Biochemistry, Genetics and Molecular Biology Journal of Genetic Engineering and Biotechnology Pub Date : 2024-01-22 DOI:10.1016/j.jgeb.2023.100348
Sonia Kaushik , Rashmi Rameshwari , Shilpa S. Chapadgaonkar
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Abstract

Background

Choline oxidase, a flavoprotein, is an enzyme that catalyzes the reaction which converts choline into glycine betaine. Choline oxidase started its journey way back in 1933. However, the impact of the high temperature on its structure has not been explored despite the long history and availability of its crystal structure. Both choline oxidase and its product, glycine betaine, have enormous applications spanning across multiple industries. Understanding how the 3D structure of the enzyme will change with the temperature change can open new ways to make it more stable and useful for industry.

Process

This research paper presents the in-silico study and analysis of the structural changes of A. globiformis choline oxidase at temperatures from 25 °C to 60 °C. A step-wise process is depicted in Fig. 1.

Results

Multiple sequence alignment (MSA) of 11 choline oxidase sequences from different bacteria vs Arthrobacter globiformis choline oxidase showed that active site residues are highly conserved.

The available crystal structure of A. globiformis choline oxidase with cofactor Flavin Adenine Dinucleotide (FAD) in the dimeric state (PDB ID: 4MJW)1 was considered for molecular dynamics simulations. A simulated annealing option was used to gradually increase the temperature of the system from 25 °C to 60 °C. Analysis of the conserved residues, as well as residues involved in Flavin Adenine Dinucleotide (FAD) binding, substrate binding, substate gating, and dimer formationwas done. At high temperatures, the formation of the inter-chain salt bridge between Arg50 and Glu63 was a significant observation near the active site of choline oxidase.

Conclusion

Molecular dynamics studies suggest that an increase in temperature has a significant impact on the extended Flavin Adenine Dinucleotide (FAD) binding region. These changes interfere with the entry of substrate to the active site of the enzyme and make the enzyme inactive.

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高温诱导球形节杆菌胆碱氧化酶结构变化的分子内研究
背景胆碱氧化酶是一种黄蛋白,是催化胆碱转化为甘氨酸甜菜碱反应的酶。早在 1933 年,胆碱氧化酶就开始了它的研究历程。然而,尽管胆碱氧化酶的历史悠久,其晶体结构也已公布,但高温对其结构的影响却一直没有得到研究。胆碱氧化酶及其产物甘氨酸甜菜碱在多个行业都有广泛的应用。了解酶的三维结构如何随着温度的变化而变化,可以开辟新的途径,使其更加稳定,对工业更加有用。结果来自不同细菌的 11 个胆碱氧化酶序列与球形节杆菌胆碱氧化酶的多序列比对(MSA)显示,活性位点残基高度保守。分子动力学模拟考虑了球形节杆菌胆碱氧化酶与辅助因子黄素腺嘌呤二核苷酸(FAD)二聚体状态下的现有晶体结构(PDB ID:4MJW)1。使用模拟退火选项将系统温度从 25 °C 逐渐升高到 60 °C。对保守残基以及参与黄素腺嘌呤二核苷酸(FAD)结合、底物结合、亚态门控和二聚体形成的残基进行了分析。结论分子动力学研究表明,温度的升高对延长的黄素腺嘌呤二核苷酸(FAD)结合区有显著影响。这些变化干扰了底物进入酶的活性位点,使酶失去活性。
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来源期刊
Journal of Genetic Engineering and Biotechnology
Journal of Genetic Engineering and Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
5.70
自引率
5.70%
发文量
159
审稿时长
16 weeks
期刊介绍: Journal of genetic engineering and biotechnology is devoted to rapid publication of full-length research papers that leads to significant contribution in advancing knowledge in genetic engineering and biotechnology and provide novel perspectives in this research area. JGEB includes all major themes related to genetic engineering and recombinant DNA. The area of interest of JGEB includes but not restricted to: •Plant genetics •Animal genetics •Bacterial enzymes •Agricultural Biotechnology, •Biochemistry, •Biophysics, •Bioinformatics, •Environmental Biotechnology, •Industrial Biotechnology, •Microbial biotechnology, •Medical Biotechnology, •Bioenergy, Biosafety, •Biosecurity, •Bioethics, •GMOS, •Genomic, •Proteomic JGEB accepts
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