Research Center for Medical Glycoscience, National Institute of Advanced Industrial Science and Technology, Central-2 OSL, 1-1-1 Umezono, Tsukuba, Ibaraki 305-8568, Japan.
Glycobiology. 2011 Sep;21(9):1228-36. doi: 10.1093/glycob/cwr057. Epub 2011 Apr 22.
The biosynthesis of glycoconjugates requires the relevant glycosyltransferases and nucleotide sugars that can act as donors. Given the biological importance of posttranslational glycosylation, a facile, robust and cost-effective strategy for the synthesis of nucleotide sugars is highly desirable. In this study, we demonstrate the synthesis of nucleotide sugars from corresponding monosaccharides in a highly efficient manner via metabolic engineering, using an enzymatic approach. This method exploits l-fucokinase/guanosine 5'-diphosphate (GDP)-l-fucose (L-Fuc) pyrophosphorylase (FKP), a bifunctional enzyme isolated from Bacteroides fragilis 9343, which converts l-Fuc into GDP-L-Fuc via an L-Fuc-1-phosphate intermediate. Because L-Fuc and d-arabinose (D-Ara) are structurally similar, it is assumed that the biosynthesis of GDP-D-Ara in a recombinant Saccharomyces cerevisiae strain harboring the FKP gene can occur through a mechanism akin to that of GDP-L-Fuc via the salvage pathway. Thus, we reasoned that by exogenously supplying different monosaccharides structurally related to L-Fuc, it should be possible to produce the corresponding nucleotide sugars with this recombinant yeast strain, regardless of internal acquisition of nucleotide sugars through expression of additive enzymes in the de novo pathway.
糖缀合物的生物合成需要相关的糖基转移酶和核苷酸糖作为供体,而核苷酸糖作为供体。鉴于糖基化的重要性,因此,人们非常需要一种简便、稳健且具有成本效益的核苷酸糖合成策略。在本研究中,我们通过代谢工程,利用酶法从相应的单糖高效合成核苷酸糖。该方法利用了从脆弱拟杆菌 9343 中分离出的双功能酶 l-岩藻糖激酶/鸟苷 5′-二磷酸(GDP)-l-岩藻糖(FKP),该酶通过 l-Fuc-1-磷酸中间体将 l-Fuc 转化为 GDP-L-Fuc。因为 l-Fuc 和 d-阿拉伯糖(D-Ara)在结构上相似,因此假设在携带 FKP 基因的重组酿酒酵母菌株中,GDP-D-Ara 的生物合成可以通过类似于通过补救途径的 GDP-L-Fuc 的机制发生。因此,我们推断,通过体外添加与 l-Fuc 结构相关的不同单糖,应该可以用这种重组酵母菌株生产相应的核苷酸糖,而无需通过从头途径表达添加酶来获得内部核苷酸糖。