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Abstract

<jats:p>Dynamic remodeling of extracellular matrices underlies development, environmental adaptation, and host-pathogen interactions, yet distinguishing polymer turnover from de novo biosynthesis in intact cells remains a major challenge. Here, we combined high-resolution solid-state NMR with selective 13C-labeling strategies to distinguish pre-existing cell-wall polymers from newly synthesized polysaccharides during Aspergillus fumigatus conidial germination. Germination was accompanied by substantial remodeling of the rigid cell wall, characterized by decreased β-1,3-glucan and increased chitin and α-1,3-glucan, whereas the mobile wall fraction remained comparatively stable except for the emergence of galactosaminogalactan. Surprisingly, β-1,3-glucan turnover proceeded independently of the major β-1,3-glucanases encoded by the A. fumigatus genome and was dispensable for germination. Instead, isotope-labeling experiments revealed that newly assimilated carbon is preferentially directed toward α-1,3-glucan biosynthesis, whereas deletion of the α-1,3-glucan synthase genes triggered compensatory accumulation of chitin and β-1,3-glucan. These results reveal a compartmentalized cell-wall remodeling program that coordinates selective turnover with de novo polysaccharide synthesis during fungal germination and establish isotope-edited solid-state NMR as a general approach for distinguishing inherited from newly synthesized polymers in complex carbohydrate matrices.</jats:p>

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Keywords

germination remodeling turnover from newly

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