Mass distribution profiling of cell wall matrix polysaccharide biosynthesis mutants reveals alterations in non-targeted matrix polysaccharides

Plant cell walls contain multiple matrix polysaccharides whose interactions help determine wall mechanics, growth, and integrity, but it remains unclear how disruption of one biosynthetic or modification pathway reshapes other, non-target polymers. We used gel permeation chromatography coupled with enzyme-linked immunosorbent assay (GPC-ELISA) to compare mass distributions of major matrix polysaccharides in Arabidopsis thaliana mutants affecting xylan biosynthesis and decoration ( irx14L, irx15, gux1-1, and gux2-2 ), glucomannan synthesis ( csla2-1 ), pectin homogalacturonan (HG) biosynthesis ( gaut10-2 and gaut11-2 ), and wall esterification ( axy4-4, tbl31, tbl2, tbl3, and tbr ). Three biological replicates per genotype, each from independent cell wall extractions, were profiled. Disruption of a single pathway frequently altered the distribution of non-target polymers. Xylan-related mutants altered not only glucuronoxylan but also HG and, in some cases, xyloglucan, with gux1-1 and gux2-2 producing particularly contrasting GX and HG profiles. By contrast, csla2-1 showed relatively limited secondary effects, whereas gaut10-2 and gaut11-2 showed increased low-molecular-size unesterified HG together with localised redistribution of several hemicellulose epitopes. Esterification mutants separated into distinct redistribution patterns rather than a single shared phenotype. Together, these findings support a directional and asymmetric model of cross-polymer coupling within extractable wall fractions, in which perturbation of HG or GX pathways has broader effects on the wall matrix than disruption of mannan biosynthesis.

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Publication Details

Journal
The Cell Surface
Published
2026-09-05
DOI
https://doi.org/10.1016/j.tcsw.2026.100181
Primary Topic
Polysaccharides and Plant Cell Walls
Type
article
Field-Weighted Citation Impact
0.00

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article

Mass distribution profiling of cell wall matrix polysaccharide biosynthesis mutants reveals alterations in non-targeted matrix polysaccharides

Passorn Wonnapinij, Anongpat Suttangkakul, Supanut Utthiya, Sukhita Sathitnaitham et al.
The Cell Surface
Polysaccharides and Plant Cell Walls
article

Mass distribution profiling of cell wall matrix polysaccharide biosynthesis mutants reveals alterations in non-targeted matrix polysaccharides

Passorn Wonnapinij, Anongpat Suttangkakul, Supanut Utthiya, Sukhita Sathitnaitham, Supachai Vuttipongchaikij, Leonardo D. Gómez, Seth J. Davis
article en

Abstract

Plant cell walls contain multiple matrix polysaccharides whose interactions help determine wall mechanics, growth, and integrity, but it remains unclear how disruption of one biosynthetic or modification pathway reshapes other, non-target polymers. We used gel permeation chromatography coupled with enzyme-linked immunosorbent assay (GPC-ELISA) to compare mass distributions of major matrix polysaccharides in Arabidopsis thaliana mutants affecting xylan biosynthesis and decoration ( irx14L, irx15, gux1-1, and gux2-2 ), glucomannan synthesis ( csla2-1 ), pectin homogalacturonan (HG) biosynthesis ( gaut10-2 and gaut11-2 ), and wall esterification ( axy4-4, tbl31, tbl2, tbl3, and tbr ). Three biological replicates per genotype, each from independent cell wall extractions, were profiled. Disruption of a single pathway frequently altered the distribution of non-target polymers. Xylan-related mutants altered not only glucuronoxylan but also HG and, in some cases, xyloglucan, with gux1-1 and gux2-2 producing particularly contrasting GX and HG profiles. By contrast, csla2-1 showed relatively limited secondary effects, whereas gaut10-2 and gaut11-2 showed increased low-molecular-size unesterified HG together with localised redistribution of several hemicellulose epitopes. Esterification mutants separated into distinct redistribution patterns rather than a single shared phenotype. Together, these findings support a directional and asymmetric model of cross-polymer coupling within extractable wall fractions, in which perturbation of HG or GX pathways has broader effects on the wall matrix than disruption of mannan biosynthesis.

The Cell SurfaceVol. 16
Kasetsart University (TH), University of York (GB)
Royal Society, Kasetsart University, National Research Council of Thailand, Thailand Science Research and Innovation, Directorate for Biological Sciences, Biotechnology and Biological Sciences Research Council
Life in Land
Openalex Percentile: Top 13%
Polysaccharides and Plant Cell Walls
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