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Alsanad, A. K. A.

Publications and source records attributed to Alsanad, A. K. A..

2 recordsLinked to original sources

A Glucan Synthase-Remodeler Module Organizes Branched Glucan Assembly in the Fungal Cell Wall

The fungal cell wall is an essential extracellular matrix that underpins growth, morphogenesis, and pathogenesis. Cell wall construction requires numerous enzymes that synthesize and remodel extracellular polymers, yet the principles governing their spatial and functional organization remain unclear. In the fission yeast Schizosaccharomyces pombe, we identify Ghs2, a predicted glycoside hydrolase 16 (GH16) domain-containing transmembrane protein, as an obligate binding partner of the {beta}-1,3-glucan synthase Bgs3. Ghs2 and Bgs3 co-localize at sites of polarized growth and physically associate in vivo. Structure-guided modeling positions the Ghs2 GH16 domain proximal to the predicted Bgs3 glucan extrusion pore, suggesting coordinated polymer synthesis and remodeling. Solid-state NMR analyses demonstrate that both Ghs2 and Bgs3 are required for the proper accumulation of branched {beta}-1,3-glucan. Together with genetic and cell biological evidence, these findings support a model in which Bgs3 synthesizes linear {beta}-1,3-glucan and Ghs2 subsequently introduces {beta}-1,6-linked branch points onto the nascent polymer. More broadly, we propose that synthase-modifier pairs may act together to shape polymer architecture during cell wall assembly.

cell biology↗

Solid-State NMR Analysis of Schizosaccharomyces pombe Reveals Role of α-Amylase Family Enzymes in Cell Wall Structure and Function

The fission yeast Schizosaccharomyces pombe is a widely employed model organism for studying the eukaryotic cell cycle. Like plants and bacteria, S. pombe must build a cell wall in concert with its cell cycle, but how cell wall-synthesizing and remodeling enzymes mediate this process remains unclear. Here we characterize the functions of Aah1 and Aah3, two related S. pombe -amylases that are putative members of this evolutionarily conserved family of cell wall-modifying proteins. We found that unlike rod-shaped wildtype S. pombe cells, aah1{Delta} aah3{Delta} cells are nearly spherical, grow slowly, have thickened cell walls, and have severe defects in cell separation following cytokinesis. Solid-state NMR spectroscopy analyses of intact wildtype and aah1{Delta} aah3{Delta} cells revealed that aah1{Delta} aah3{Delta} cell walls are rigidified with a significant reduction in the -glucan matrix, characterized by reduced amounts of the major -1,3-glucan and the minor -1,4-glucan within the rigid and mobile phases; this reduction was compensated for by a two-fold increase in {beta}-glucan content. Indeed, viability of aah1{Delta} aah3{Delta} cells depended on {beta}-glucan upregulation and the cell wall integrity pathway that mediates it. While aah1{Delta} aah3{Delta} cells resemble cells with impaired function of the transglycosylation domain of -glucan synthase 1 (Ags1), increased expression of Aah3 does not compensate for impaired Ags1 function or vice-versa. Overall, our data suggest that Aah1 and Aah3 are required in addition to Ags1, likely downstream, for the transglycosylation of -glucan chains to generate fibers of appropriate dimensions to support proper cell morphology, growth, and division. Significance StatementThis study utilized a range of imaging techniques and high-resolution solid-state NMR spectroscopy of intact S. pombe cells to refine our understanding of S. pombe cell wall composition. This study also determined that two related GPI-anchored -amylase family proteins, Aah1 and Aah3, likely act as transglycosylases non-redundantly with an -glucan synthase in the synthesis of -glucan chains of appropriate content and size to support polarized growth and cell division. Our results also highlight the anti-fungal therapeutic potential of GPI-anchored enzymes acting in concert with glucan synthases.

microbiology↗