耐有机溶剂的α-L-鼠李糖酶在甲醇共溶剂体系中高效合成梅花苷

IF 3.4 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Enzyme and Microbial Technology Pub Date : 2024-02-06 DOI:10.1016/j.enzmictec.2024.110410
Chen-Mu Luo , Li-Fan Ke , Xiang-Yu Huang , Xiao-Yan Zhuang , Ze-Wang Guo , Qiong Xiao , Jun Chen , Fu-Quan Chen , Qiu-Ming Yang , Yi Ru , Hui-Fen Weng , An-Feng Xiao , Yong-Hui Zhang
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引用次数: 0

摘要

具有理想生物活性和生物利用率的柚皮苷可通过关键酶 α-L 鼠李糖酶从植物提取的柚皮苷转化而来。然而,α-L-鼠李糖苷酶的热稳定性和有机溶剂耐受性等性能不尽人意,限制了其生产。本研究调查了一种新型α-L-鼠李糖酶(St-Rha)的生化特征和水解能力,这是首次对嗜热螺虫属的α-L-鼠李糖酶进行表征。St-Rha 对柚皮苷具有较高的底物特异性,并表现出良好的热稳定性和甲醇耐受性。与水相体系相比,St-Rha 在甲醇共溶剂体系中的 Km 值降低了 7.2 倍,而 kcat/Km 值则提高了 9.3 倍。同时,通过比较分子动力学模拟分析,对 St-Rha 的构象进行了初步研究,首次探索了 St-Rha 耐甲醇的机理。此外,研究还探讨了 St-Rha 在 20% 甲醇共溶剂体系中制备杨梅苷的催化能力,结果表明 200 g/L 柚皮苷在 24 h 反应中转化为 125.5 g/L 杨梅苷,相应的时空产率为 5.2 g/L/h。这些结果表明,St-Rha 是一种新型的 α-L 鼠李糖苷酶,适合在甲醇共溶剂体系中水解柚皮苷,为提高杨梅苷的高效生产率提供了更好的选择。
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Efficient biosynthesis of prunin in methanol cosolvent system by an organic solvent-tolerant α-L-rhamnosidase from Spirochaeta thermophila

Prunin of desirable bioactivity and bioavailability can be transformed from plant-derived naringin by the key enzyme α-L-rhamnosidase. However, the production was limited by unsatisfactory properties of α-L-rhamnosidase such as thermostability and organic solvent tolerance. In this study, biochemical characteristics, and hydrolysis capacity of a novel α-L-rhamnosidase from Spirochaeta thermophila (St-Rha) were investigated, which was the first characterized α-L-rhamnosidase for Spirochaeta genus. St-Rha showed a higher substrate specificity towards naringin and exhibited excellent thermostability and methanol tolerance. The Km of St-Rha in the methanol cosolvent system was decreased 7.2-fold comparing that in the aqueous phase system, while kcat/Km value of St-Rha was enhanced 9.3-fold. Meanwhile, a preliminary conformational study was implemented through comparative molecular dynamics simulation analysis to explore the mechanism underlying the methanol tolerance of St-Rha for the first time. Furthermore, the catalytic ability of St-Rha for prunin preparation in the 20% methanol cosolvent system was explored, and 200 g/L naringin was transformed into 125.5 g/L prunin for 24 h reaction with a corresponding space-time yield of 5.2 g/L/h. These results indicated that St-Rha was a novel α-L-rhamnosidase suitable for hydrolyzing naringin in the methanol cosolvent system and provided a better alternative for improving the efficient production yield of prunin.

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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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