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Motouchi, S.

Publications and source records attributed to Motouchi, S..

5 recordsLinked to original sources

Discovery of a wide variety of α-1,6-cyclized β-1,2-glucan synthases: a new entrance for host-microbe interactions.

-1,6-Cyclized {beta}-1,2-glucans (C{beta}G) are established virulence factors in Xanthomonas, yet functional breadth and distribution of C{beta}Gs in nature have remained unclear. Here, we biochemically identified enzymes synthesizing C{beta}Gs with specific chain lengths, exhibiting potential natural occurrence of various C{beta}Gs. Structural analyses identify subtle variations in a loop, named Loop X, as a key determinant of product size, leading to understanding of the whole picture of the mechanism that controls the sizes. We further demonstrated that C{beta}G composed of 13 glucose units contributes to plant-virulence in Ralstonia pseudosolanacearum, expanding the functional scope of virulence-associated cyclic glucans. Overall, it provides the potential targets for regulating various plant-microbe interactions and also serves as a vital lead to discovering unknown host-microbe interactions with significant potential for agricultural applications.

biochemistry↗

A beta-Galactosidase acting on unique galactosides: the structure and function of a beta-1,2-galactosidase from Bacteroides xylanisolvens, an intestinal bacterium

Galactosides are major carbohydrates that are found in plant cell walls and various prebiotic oligosaccharides. Studying the detailed biochemical functions of {beta}-galactosidases in degrading these carbohydrates is important. In particular, identifying {beta}-galactosidases with new substrate specificities could help in the production of potentially beneficial oligosaccharides. In this study, we identified a {beta}-galactosidase with novel substrate specificity from Bacteroides xylanisolvens, an intestinal bacterium. The enzyme did not show hydrolytic activity toward natural {beta}-galactosides during the first screening. However, when -D-galactosyl fluoride (-GalF) as a donor substrate and galactose or D-fucose as an acceptor substrate were incubated with a nucleophile mutant, reaction products were detected. The galactobiose produced from the -GalF and galactose was identified as {beta}-1,2-galactobiose using NMR. Kinetic analysis revealed that this enzyme effectively hydrolyzed {beta}-1,2-galactobiose and {beta}-1,2-galactotriose. In the complex structure with methyl {beta}-galactopyranose as a ligand, the ligand is only located at subsite +1. The 2-hydroxy group and the anomeric methyl group of methyl {beta}-galactopyranose faces in the direction of subsite -1 and the solvent, respectively. This observation is consistent with the substrate specificity of the enzyme regarding linkage position and chain length. Overall, we concluded that the enzyme is a {beta}-galactosidase acting on {beta}-1,2-galactooligosaccharides. SynopsisThe structural and functional analysis of {beta}-galactosidase from an intestinal bacterium led to the discovery of a new {beta}-galactosidase hydrolyzing unique {beta}-1,2-galactooligosaccharides.

biochemistry↗

Beta-Glucanase superfamily identified by sequential, functional, and structural analyses

{beta}-1,2-Glucans are natural glucose polymers that play important physiological roles, including as symbiotic or pathogenic factors and in osmoregulation. Phylogenetically new glycoside hydrolase (GH) families have recently been identified from {beta}-1,2-glucanase (SGL) sequences from bacteria (GH144) and a fungus (GH162). In this study, we identified four phylogenetically new groups (Groups 1-4), and determined that these families, together with GH144, GH162, and GH189, a family of transglycosylase domains in cyclic {beta}-1,2-glucan synthases, form a superfamily. Biochemical analysis of six proteins in these groups revealed that the proteins in Groups 1-3 showed hydrolytic activity specific to {beta}-1,2-glucan. The kinetic parameters of the enzymes of Groups 1-3 were similar to GH144 and GH162 SGLs, indicating that these enzymes were SGLs. Optical rotation analysis revealed that the SGLs followed an anomer-inverting mechanism. Structural analysis and prediction of the proteins in Groups 1-4, GH144, GH162, and GH189 suggested that Groups 1-3 and GH144 had the same reaction mechanism. Nevertheless, Groups 1-3 were dispersed irregularly in the superfamily. Overall, we determined that Groups 1-3 were new GH families, GHxxx, GHyyy, and GHzzz, respectively, and proposed that this superfamily be called an SGL superfamily because of the phylogenetical, functional, and structural relationships within the superfamily. HighlightsWide variety of glycoside hydrolases is far beyond our understanding. Functional and structural analysis identified three new glycoside hydrolase families. Molecular evolution with irregular changes in reaction mechanism was revealed.

biochemistry↗

Phytopathogenic cyclic glucohexadecaose from an inverting transglycosylase

Xanthomonas species contain numerous notoriously well-known plant pathogens. Among various pathogenic factors, the role of -1,6-cyclized {beta}-1,2-glucohexadecaose (C{beta}G16) produced by Xanthomonas campestris pv. campestris was shown previously to be vital for infecting model organisms Arabidopsis thaliana and Nicotiana benthamiana. However, enzymes responsible for biosynthesising C{beta}G16 are essentially unknown, which limits the generation of agrichemicals that inhibit C{beta}G16 synthesis. In this study, we discovered that OpgD from X. campestris pv. campestris converts linear {beta}-1,2-glucan to C{beta}G16. Structural and functional analyses revealed that OpgD from X. campestris pv. campestris possesses an anomer-inverting transglycosylation mechanism, which is unprecedented among carbohydrate-active enzymes. The discovery of this unprecedented glucan-generating mechanism reveals a new foundation for the enzymatic synthesis of carbohydrates. Furthermore, identifying C{beta}G16 synthase highly conserved in Xanthomonas provides a broadly adaptable drug target for new-genre agrichemicals that overcome antimicrobial-resistant bacterial issues.

biochemistry↗

Novel glycoside hydrolase family enzymes from Escherichia coli are associated with osmo-regulated periplasmic glucan synthesis

Most Gram-negative bacteria synthesize osmo-regulated periplasmic glucans (OPG) in the periplasm or extracellular space. Many pathogens lose their pathogenicity by knocking out opgG, an OPG-related gene indispensable for OPG synthesis. However, the biochemical functions of OpgG and OpgD, a paralog of OpgG, have not been elucidated. In this report, structural and functional analyses of OpgG and OpgD from Escherichia coli revealed that these proteins are {beta}-1,2-glucanases with remarkably different activity, establishing a new glycoside hydrolase family. Furthermore, a reaction mechanism with an unprecedentedly long proton transfer pathway is proposed for OpgD. The conformation of the region that forms the reaction pathway differs noticeably between OpgG and OpgD, which explains the observed low activity of OpgG. The findings enhance our understanding of OPG biosynthesis and provide insights into functional diversity for this novel enzyme family.

biochemistry↗