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Mui, J. W.- Y.

Publications and source records attributed to Mui, J. W.- Y..

2 recordsLinked to original sources

A broad-spectrum family GH13 α-glucosidase from Marinovum sp., a member of the Roseobacter clade

Glycoside hydrolases (GHs) are a diverse group of enzymes that catalyze the hydrolysis of glycosidic bonds. The Carbohydrate-Active enZymes (CAZy) classification organizes GHs into families based on sequence data and function, with fewer than 1% of the predicted proteins characterized biochemically. Consideration of genomic context can provide clues to infer possible enzyme activities for proteins of unknown function. We used the MultiGeneBLAST tool to discover a gene cluster in Marinovum sp., a member of the marine Roseobacter clade, that encodes homologues of enzymes belonging to the sulfoquinovose monooxygenase pathway for sulfosugar catabolism. This cluster lacks a gene encoding a classical family GH31 sulfoquinovosidase candidate, but which instead includes an uncharacterized family GH13 protein (MsGH13) that we hypothesized could be a non-classical sulfoquinovosidase. Surprisingly, recombinant MsGH13 lacks sulfoquinovosidase activity and is a broad spectrum -glucosidase that is active on a diverse array of -linked disaccharides, including: maltose, sucrose, nigerose, trehalose, isomaltose, and kojibiose. Using AlphaFold, a 3D model for the MsGH13 enzyme was constructed that predicted its active site shared close similarity with an -glucosidase from Halomonas sp. H11 of the same GH13 subfamily that shows narrower substrate specificity.

biochemistry↗

Remodelling of carbon metabolism during sulfoglycolysis in Escherichia coli

Sulfoquinovose (SQ) is a major metabolite in the global sulfur cycle produced by nearly all photosynthetic organisms. One of the major pathways involved in the catabolism of SQ in bacteria, such as Escherichia coli, is a variant of the glycolytic Embden-Meyerhof-Parnas (EMP) pathway termed the sulfoglycolytic EMP (sulfo-EMP) pathway, which leads to consumption of three of the six carbons of SQ and excretion of 2,3-dihydroxypropanesulfonate (DHPS). Comparative metabolite profiling of aerobically Glc-grown and SQ-grown E. coli was undertaken to identify the metabolic consequences of switching from glycolysis to sulfoglycolysis. Sulfoglycolysis was associated with the diversion of triose-phosphates to synthesize sugar phosphates (gluconeogenesis), and an unexpected accumulation of trehalose and glycogen storage carbohydrates. Sulfoglycolysis was also associated with global changes in central carbon metabolism, as indicated by changes in levels of intermediates in the tricarboxylic acid (TCA) cycle, the pentose phosphate pathway (PPP), polyamine metabolism, pyrimidine metabolism and many amino acid metabolic pathways. Upon entry into stationary phase and depletion of SQ, E. coli utilize their glycogen, indicating a reversal of metabolic fluxes to allow glycolytic metabolism. ImportanceThe sulfosugar sulfoquinovose is estimated to be produced on a scale of 10 billion tonnes per annum, making it a major organosulfur species in the biosulfur cycle. Microbial degradation of sulfoquinovose through sulfoglycolysis allows utilization of its carbon content and contributes to biomineralization of its sulfur. However, the metabolic consequences of microbial growth on sulfoquinovose are unclear. We use metabolomics to identify the metabolic adaptations that Escherichia coli undergoes when grown on sulfoquinovose versus glucose. This revealed increased flux into storage carbohydrates through gluconeogenesis, and reduced flux of carbon into the TCA cycle and downstream metabolism. These changes are relieved upon return to stationary phase growth and reversion to glycolytic metabolism. This work provides s new insights into the metabolic consequences of microbial growth on an abundant sulfosugar.

biochemistry↗