Co-Innovation Center for Efficient Processing and Utilization of Forest Resources, College of Chemical Engineering, Nanjing Forestry University, Nanjing 210037, China.
Co-Innovation Center for Efficient Processing and Utilization of Forest Resources, College of Chemical Engineering, Nanjing Forestry University, Nanjing 210037, China.
Bioresour Technol. 2022 May;351:127042. doi: 10.1016/j.biortech.2022.127042. Epub 2022 Mar 19.
To elucidate the structure-activity relationship between lignin and various cellulase domains, four lignin fractions with specific structures and molecular weight were prepared from bamboo kraft lignin (BKL) and used to investigate the adsorption mechanism between different cellulase domains by fluorescence spectroscopy and SDS-PAGE. Endo-cellulase 6B exhibited a higher affinity to BKL fractions than the carbohydrate-binding module (CBM4A) of cellulase, which is positively correlated to molecular weight. The thermodynamic mechanism showed that the adsorption between BKL fractions and endo-cellulase 6B was dominated by van der Waals and electrostatic forces, while hydrophobic force is the driver for BKL fractions to adsorb CBM4A. Structure-activity relationship between lignin fractions and cellulase domain revealed that thermodynamics and interaction forces were more easily affected by the structure of BKL, including S/G ratio, molecular weight and hydrophobicity. The aforementioned results demonstrated that lignin's structure plays a critical role in its adsorption with various cellulase domains.
为了阐明木质素与各种纤维素酶结构域之间的构效关系,从竹制硫酸盐木质素(BKL)中制备了具有特定结构和分子量的 4 种木质素级分,并通过荧光光谱法和 SDS-PAGE 研究了不同纤维素酶结构域之间的吸附机制。内切纤维素酶 6B 对 BKL 级分的亲和力高于纤维素的碳水化合物结合模块(CBM4A),这与分子量呈正相关。热力学机制表明,BKL 级分与内切纤维素酶 6B 之间的吸附主要由范德华力和静电力主导,而疏水力是 BKL 级分吸附 CBM4A 的驱动力。木质素级分与纤维素酶结构域之间的构效关系表明,热力学和相互作用力更容易受到 BKL 结构的影响,包括 S/G 比、分子量和疏水性。上述结果表明,木质素的结构在其与各种纤维素酶结构域的吸附中起着关键作用。