Ngo Lorna, Weimer Joshua, Sui Li, Pickens Tara, Stourman Nina V
Department of Chemical and Biological Sciences, Youngstown State University Youngstown, OH 44555, USA.
Int J Biochem Mol Biol. 2023 Aug 15;14(4):76-86. eCollection 2023.
The diverse nature of carbohydrate structures and linkages requires a variety of enzymes responsible for sugar degradation. The periplasmic protein encoded by the gene has been assigned to glycoside hydrolase family 3 and is predicted to function as a β-glucosidase.
We investigated the catalytic properties of the protein BglX and identified two functionally important amino acid residues.
The gene was cloned into a pET20b(+) vector, and three mutants, D111N, D287G, and E293Q, were generated using site-directed mutagenesis. Kinetic studies were performed on the wild-type and mutant enzymes.
Substrate specificity tests indicated that the BglX enzyme hydrolyzes β-glycosidic bonds in nitrophenyl-β-glycosides and demonstrates greater activity towards galactose-containing substrates compared to glucose derivatives. Monomeric glucose and galactose inhibit enzyme activity to a different degree in a substrate-dependent manner. In addition, BglX can hydrolyze lactose but not cellobiose, maltose, or laminarin. Subsequently, cells overexpressing active BglX have a growth advantage on minimal media supplemented with lactose as a carbon source. Mutation of D287 or D111 residues negatively affected the activity of BglX indicating their involvement in catalysis. Overexpression of BglX by cells did not increase biofilm formation.
The low activity towards glucose-containing substrates and significantly elevated activity towards galactosides suggests that β-glucosidase activity may not be the primary function of the BglX enzyme.
碳水化合物结构和连接方式的多样性需要多种负责糖类降解的酶。该基因编码的周质蛋白已被归类到糖苷水解酶家族3,预计其功能为β-葡萄糖苷酶。
我们研究了BglX蛋白的催化特性,并鉴定了两个具有重要功能的氨基酸残基。
将该基因克隆到pET20b(+)载体中,通过定点诱变产生三个突变体D111N、D287G和E293Q。对野生型和突变型酶进行动力学研究。
底物特异性测试表明,BglX酶可水解对硝基苯基-β-糖苷中的β-糖苷键,与葡萄糖衍生物相比,对含半乳糖的底物表现出更高的活性。单体葡萄糖和半乳糖以底物依赖的方式不同程度地抑制酶活性。此外,BglX可水解乳糖,但不能水解纤维二糖、麦芽糖或海带多糖。随后,过表达活性BglX的细胞在以乳糖作为碳源的基本培养基上具有生长优势。D287或D111残基的突变对BglX的活性产生负面影响,表明它们参与催化过程。细胞过表达BglX不会增加生物膜的形成。
对含葡萄糖底物的低活性以及对半乳糖苷的显著高活性表明,β-葡萄糖苷酶活性可能不是BglX酶的主要功能。