State Key Laboratory of Animal Nutrition, Institute of Animal Sciences, Chinese Academy of Agricultural Sciences, Beijing, China.
Biotechnology Research Institute, Chinese Academy of Agricultural Sciences, Beijing, China.
Bioengineered. 2022 Apr;13(4):10482-10492. doi: 10.1080/21655979.2022.2061290.
Xylanases are widely used in the degradation of lignocellulose and are important industrial enzymes. Therefore, increasing the catalytic activity of xylanases can improve their efficiency and performance. In this study, we introduced the C-terminal proline-rich oligopeptide of the rumen-derived XynA into XylR, a GH10 family xylanase. The optimum temperature and pH of the fused enzyme (XylR-Fu) were consistent with those of XylR; however, its catalytic efficiency was 2.48-fold higher than that of XylR. Although the proline-rich oligopeptide did not change the enzyme hydrolysis mode, the amount of oligosaccharides released from beechwood xylan by XylR-Fu was 17% higher than that released by XylR. This increase may be due to the abundance of proline in the oligopeptide, which plays an important role in substrate binding. Furthermore, circular dichroism analysis indicated that the proline-rich oligopeptide might increase the rigidity of the overall structure, thereby enhancing the affinity to the substrate and catalytic activity of the enzyme. Our study shows that the proline-rich oligopeptide enhances the catalytic efficiency of GH10 xylanases and provides a better understanding of the C-terminal oligopeptide-function relationships. This knowledge can guide the rational design of GH10 xylanases to improve their catalytic activity and provides clues for further applications of xylanases in industry.
木聚糖酶广泛应用于木质纤维素的降解,是重要的工业酶。因此,提高木聚糖酶的催化活性可以提高其效率和性能。在本研究中,我们将来源于反刍动物的 XynA 的 C 端富含脯氨酸的寡肽引入 GH10 家族木聚糖酶 XylR 中。融合酶(XylR-Fu)的最适温度和 pH 与 XylR 一致;然而,其催化效率是 XylR 的 2.48 倍。虽然富含脯氨酸的寡肽没有改变酶的水解模式,但 XylR-Fu 从山毛榉木聚糖中释放的低聚糖量比 XylR 高 17%。这种增加可能是由于寡肽中脯氨酸的丰富,脯氨酸在底物结合中起着重要作用。此外,圆二色性分析表明,富含脯氨酸的寡肽可能会增加整体结构的刚性,从而增强酶对底物的亲和力和催化活性。我们的研究表明,富含脯氨酸的寡肽可以提高 GH10 木聚糖酶的催化效率,并为更好地理解 C 端寡肽功能关系提供了依据。这一知识可以指导 GH10 木聚糖酶的合理设计,以提高其催化活性,并为木聚糖酶在工业中的进一步应用提供线索。