Laboratory of Biotransformation, Institute of Microbiology of the Czech Academy of Sciences, Vídeňská 1083, CZ-14220 Praha, Czech Republic.
Department of Genetics and Microbiology, Faculty of Science, Charles University, Viničná 5, CZ-12843 Praha, Czech Republic.
Int J Mol Sci. 2022 Apr 7;23(8):4106. doi: 10.3390/ijms23084106.
Enzymatic synthesis is an elegant biocompatible approach to complex compounds such as human milk oligosaccharides (HMOs). These compounds are vital for healthy neonatal development with a positive impact on the immune system. Although HMOs may be prepared by glycosyltransferases, this pathway is often complicated by the high price of sugar nucleotides, stringent substrate specificity, and low enzyme stability. Engineered glycosidases (EC 3.2.1) represent a good synthetic alternative, especially if variations in the substrate structure are desired. Site-directed mutagenesis can improve the synthetic process with higher yields and/or increased reaction selectivity. So far, the synthesis of human milk oligosaccharides by glycosidases has mostly been limited to analytical reactions with mass spectrometry detection. The present work reveals the potential of a library of engineered glycosidases in the preparative synthesis of three tetrasaccharides derived from lacto--tetraose (Galβ4GlcNAcβ3Galβ4Glc), employing sequential cascade reactions catalyzed by β3--acetylhexosaminidase BbhI from , β4-galactosidase BgaD-B from , β4--acetylgalactosaminidase from , and β3-galactosynthase BgaC from . The reaction products were isolated and structurally characterized. This work expands the insight into the multi-step catalysis by glycosidases and shows the path to modified derivatives of complex carbohydrates that cannot be prepared by standard glycosyltransferase methods.
酶法合成是一种优雅的生物相容性方法,可用于合成复杂化合物,如人乳寡糖(HMOs)。这些化合物对新生儿的健康发育至关重要,对免疫系统有积极影响。虽然 HMOs 可以通过糖基转移酶制备,但该途径通常受到糖核苷酸价格高、底物特异性严格和酶稳定性低的限制。经过工程改造的糖苷酶(EC 3.2.1)代表了一种很好的合成替代方法,特别是如果需要改变底物结构。定点突变可以通过提高产率和/或增加反应选择性来改善合成过程。到目前为止,糖苷酶对 HMOs 的合成主要局限于使用质谱检测的分析反应。本工作揭示了一系列经过工程改造的糖苷酶在利用β3--乙酰己糖胺酶 BbhI 来自,β4-半乳糖苷酶 BgaD-B 来自,β4--乙酰半乳糖胺酶来自,和β3-半乳糖合酶 BgaC 来自 ,通过顺序级联反应,在三种源自乳糖四糖(Galβ4GlcNAcβ3Galβ4Glc)的四糖的制备性合成中的应用潜力。分离并对反应产物进行了结构表征。这项工作扩展了对糖苷酶多步催化的认识,并展示了制备无法通过标准糖基转移酶方法制备的复杂碳水化合物修饰衍生物的途径。