Wataru Saburi, Hirohiko Muto-Fukiya, Nongluck Jaito, Koji Kato, Jian Yu, Min Yao, Haruhide Mori
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引用次数: 0
摘要
纤维素二糖2-外聚酶(CE)能催化β-(1→4)-双糖还原端d-葡萄糖/d-甘露糖残基的C-2外聚,并能轻微催化醛糖-酮糖转化。本研究研究了海Rhodothermus marinus CE (RmCEs)的结构-功能关系。在2H2O中,2H取代了还原糖端残基的2-H,表明质子通过顺式烯二醇中间物的提取加成机制。rmce -甘露糖醇配合物的结构表明,His259适合从d-甘露糖残基中提取2-H, His390适合从d-葡萄糖残基中提取2-H。H259A和H390A突变分别破坏了Galβ1-4Man和Galβ1-4Glc从Galβ1-4Fru生成的活性,这些突变体分别催化了Galβ1-4Glc和Galβ1-4Man的外映和异构化。Ala取代残基与还原端糖残基的2-O相互作用显著降低了外异构化的速度,但没有降低异构化的速度。Trp385堆积在双糖的非还原端糖残基上,对双糖特异性很重要。
Biochemical and structural analysis of the mechanism for the catalysis and specificity of cellobiose 2-epimerase from Rhodothermus marinus.
Cellobiose 2-epimerase (CE) catalyzes C-2 epimerization of reducing end d-glucose/d-mannose residue of β-(1→4)-disaccharides, and also slightly catalyzes aldose-ketose conversion. In this study, we investigated the structure-function relationship of Rhodothermus marinus CE (RmCEs). In 2H2O, 2H replaced the 2-H of the reducing end sugar residue, suggesting a proton abstraction-addition mechanism via the cis-enediolate intermediate. The structure of the RmCE-mannobiitol complex showed that His259 was suitable for abstracting 2-H from d-mannose residue, whereas His390 was suitable for the d-glucose residue. H259A and H390A mutations abolished activity for Galβ1-4Man and Galβ1-4Glc formation from Galβ1-4Fru, respectively, and these mutants catalyzed both epimerization and isomerization to Galβ1-4Glc and Galβ1-4Man, respectively. Ala substitution of the residues interacting with the 2-O of the reducing end sugar residue significantly reduced the velocity for epimerization, but not for isomerization. Trp385, stacked onto the non-reducing-end sugar residues of disaccharides, was shown to be important for disaccharide specificity.
期刊介绍:
Bioscience, Biotechnology, and Biochemistry publishes high-quality papers providing chemical and biological analyses of vital phenomena exhibited by animals, plants, and microorganisms, the chemical structures and functions of their products, and related matters. The Journal plays a major role in communicating to a global audience outstanding basic and applied research in all fields subsumed by the Japan Society for Bioscience, Biotechnology, and Agrochemistry (JSBBA).