食品科学 ›› 2023, Vol. 44 ›› Issue (16): 169-176.doi: 10.7506/spkx1002-6630-20220815-159

• 生物工程 • 上一篇    下一篇

N端非催化结构域对微泡菌ALW1褐藻胶裂解酶AlgL7酶学性质的影响

黄小艺,李鹤宾,陈艳红,姜泽东,倪辉,李清彪,朱艳冰,   

  1. (1.集美大学海洋食品与生物工程学院,福建 厦门 361021;2.厦门医学院药学系,福建 厦门 361023;3.福建省食品微生物与酶工程重点实验室,福建 厦门 361021;4.厦门市食品生物工程技术研究中心,福建 厦门 361021)
  • 出版日期:2023-08-25 发布日期:2023-09-01
  • 基金资助:
    国家自然科学基金面上项目(22178142);福建省自然科学基金项目(2020J01679)

Effects of N-Terminal Non-catalytic Domains on Enzymatic Properties of the Alginate Lyase AlgL7 from Microbulbifer sp. ALW1

HUANG Xiaoyi, LI Hebin, CHEN Yanhong, JIANG Zedong, NI Hui, LI Qingbiao, ZHU Yanbing,   

  1. (1. College of Ocean Food and Biological Engineering, Jimei University, Xiamen 361021, China;2. Department of Pharmacy, Xiamen Medical College, Xiamen 361023, China; 3. Fujian Provincial Key Laboratory of Food Microbiology and Enzyme Engineering, Xiamen 361021, China;4. Research Center of Food Biotechnology of Xiamen City, Xiamen 361021, China)
  • Online:2023-08-25 Published:2023-09-01

摘要: 为了明确非催化结构域碳水化合物结合模块(carbohydrate-binding module,CBM)和F5/8 C型结构域对褐藻胶裂解酶AlgL7酶学性质的影响,构建并表征了全长酶AlgL7和两个截短酶CD1(催化结构域)和CD2(包含F5/8 C型结构域和催化结构域)。结果表明,与全长AlgL7相比,截短酶CD2表现出更高的比活力、热稳定性和Km值,以及更高的最大反应速率(Vmax值),表明CBM结构域在保持酶与底物的亲和力方面具有重要作用,但降低了酶的催化活性、热稳定性和Vmax值。与截短酶CD1相比,CD2表现出更高的比活力、最适反应温度、热稳定性、最大反应速率和Km值,表明F5/8 C型结构域有利于提高酶的催化活性、最适反应温度、热稳定性和最大反应速率,但降低了酶与底物的亲和力。以海藻酸钠为底物,截短酶CD2的比活力为183.9 U/mg,最适反应温度和最适反应pH值分别为40 ℃和7.0,Km值和Vmax值分别为39.80 mg/mL和2 000 U/mg,酶解产物主要为褐藻胶寡糖二糖和三糖。本研究促进了非催化结构域与褐藻胶裂解酶性质的构效关系研究,为利用非催化结构域改善褐藻胶裂解酶的催化性质提供了一定理论基础。

关键词: 褐藻胶裂解酶;碳水化合物结合模块;F5/8 C型结构域;酶学性质;酶解产物

Abstract: In order to clarify the effect of the non-catalytic carbohydrate-binding module (CBM) and F5/8 type C domains on the enzymatic properties of AlgL7, an alginate lyase from Microbulbifer sp. ALW1, the full-length enzyme AlgL7 and two truncated enzymes: CD1 (catalytic domain) and CD2 (containing F5/8 type C domain and catalytic domain) were constructed and characterized. The results showed that the truncated enzyme CD2 exhibited higher specific activity, thermostability, Michaelis constant (Km), and maximum reaction velocity (Vmax) compared to the full-length AlgL7, indicating that the CBM domain played an important role in maintaining the substrate affinity of the enzyme, but reduced the catalytic activity, thermostability, and Vmax value the enzyme. Compared to the truncated enzyme CD1, CD2 exhibited higher specific activity, optimal reaction temperature, thermostability, Vmax, and Km, indicating that the F5/8 type C domain contributed to improve the enzymatic activity, optimum reaction temperature, thermostability, and Vmax, but reduced the substrate affinity of the enzyme. Using sodium alginate as the substrate, the specific activity of CD2 was 183.9 U/mg. The optimal reaction temperature and pH were 40 ℃ and 7.0, respectively. The Km and Vmax were 39.80 mg/mL and 2 000 U/mg, respectively. The major enzymatic hydrolysates were disaccharides and trisaccharides. This study promotes the understanding of the structure-activity relationship between the non-catalytic domains and the properties of alginate lyase, and lays a theoretical basis for using the non-catalytic domains to improve the catalytic properties of alginate lysate.

Key words: alginate lyase; carbohydrate-binding module; F5/8 type C domain; enzymatic properties; enzymatic hydrolysate

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