Enhancing the endo-activity of the thermophilic chitinase to yield chitooligosaccharides with high degrees of polymerization

IF 4.3 3区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Bioresources and Bioprocessing Pub Date : 2024-03-07 DOI:10.1186/s40643-024-00735-x
Feifei Guan, Xiaoqian Tian, Ruohan Zhang, Yan Zhang, Ningfeng Wu, Jilu Sun, Honglian Zhang, Tao Tu, Huiying Luo, Bin Yao, Jian Tian, Huoqing Huang
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Abstract

Thermophilic endo-chitinases are essential for production of highly polymerized chitooligosaccharides, which are advantageous for plant immunity, animal nutrition and health. However, thermophilic endo-chitinases are scarce and the transformation from exo- to endo-activity of chitinases is still a challenging problem. In this study, to enhance the endo-activity of the thermophilic chitinase Chi304, we proposed two approaches for rational design based on comprehensive structural and evolutionary analyses. Four effective single-point mutants were identified among 28 designed mutations. The ratio of (GlcNAc)3 to (GlcNAc)2 quantity (DP3/2) in the hydrolysates of the four single-point mutants undertaking colloidal chitin degradation were 1.89, 1.65, 1.24, and 1.38 times that of Chi304, respectively. When combining to double-point mutants, the DP3/2 proportions produced by F79A/W140R, F79A/M264L, F79A/W272R, and M264L/W272R were 2.06, 1.67, 1.82, and 1.86 times that of Chi304 and all four double-point mutants exhibited enhanced endo-activity. When applied to produce chitooligosaccharides (DP ≥ 3), F79A/W140R accumulated the most (GlcNAc)4, while M264L/W272R was the best to produce (GlcNAc)3, which was 2.28 times that of Chi304. The two mutants had exposed shallower substrate-binding pockets and stronger binding abilities to shape the substrate. Overall, this research offers a practical approach to altering the cutting pattern of a chitinase to generate functional chitooligosaccharides.

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提高嗜热几丁质酶的内切活性以产生高聚合度的壳寡糖
嗜热型内几丁质酶是生产高度聚合的几丁质的关键,而几丁质对植物免疫、动物营养和健康十分有利。然而,嗜热型内切几丁质酶数量稀少,几丁质酶从外切活性到内切活性的转化仍是一个具有挑战性的问题。在本研究中,为了提高嗜热几丁质酶 Chi304 的内切活性,我们基于全面的结构和进化分析提出了两种合理设计的方法。在 28 个设计突变中,我们发现了 4 个有效的单点突变体。这四个单点突变体承担胶体几丁质降解的水解产物中(GlcNAc)3与(GlcNAc)2的数量比(DP3/2)分别是Chi304的1.89倍、1.65倍、1.24倍和1.38倍。当结合到双点突变体时,F79A/W140R、F79A/M264L、F79A/W272R 和 M264L/W272R 产生的 DP3/2 比例分别是 Chi304 的 2.06、1.67、1.82 和 1.86 倍,所有四个双点突变体都表现出更强的内切活性。在生产壳寡糖(DP ≥ 3)时,F79A/W140R 积累的(GlcNAc)4 最多,而 M264L/W272R 产生的(GlcNAc)3 最好,是 Chi304 的 2.28 倍。这两个突变体暴露的底物结合口袋较浅,形成底物的结合能力较强。总之,这项研究为改变几丁质酶的切割模式以产生功能性壳寡糖提供了一种实用方法。
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来源期刊
Bioresources and Bioprocessing
Bioresources and Bioprocessing BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
7.20
自引率
8.70%
发文量
118
审稿时长
13 weeks
期刊介绍: Bioresources and Bioprocessing (BIOB) is a peer-reviewed open access journal published under the brand SpringerOpen. BIOB aims at providing an international academic platform for exchanging views on and promoting research to support bioresource development, processing and utilization in a sustainable manner. As an application-oriented research journal, BIOB covers not only the application and management of bioresource technology but also the design and development of bioprocesses that will lead to new and sustainable production processes. BIOB publishes original and review articles on most topics relating to bioresource and bioprocess engineering, including: -Biochemical and microbiological engineering -Biocatalysis and biotransformation -Biosynthesis and metabolic engineering -Bioprocess and biosystems engineering -Bioenergy and biorefinery -Cell culture and biomedical engineering -Food, agricultural and marine biotechnology -Bioseparation and biopurification engineering -Bioremediation and environmental biotechnology
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