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Outstanding questions on xylan biosynthesis

期刊

PLANT SCIENCE
卷 325, 期 -, 页码 -

出版社

ELSEVIER IRELAND LTD
DOI: 10.1016/j.plantsci.2022.111476

关键词

Arabinosyltransferase; Ferulic acid; Glycosyltransferase; Glucuronyltransferase; Grass; Hydroxycinnamate; Secondary wall; Xylan; Xylosyltransferase

资金

  1. U.S. Department of Energy, Office of Science, Basic Energy Sciences [DEFG02-03ER15415]

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Xylan is a crucial component of cell wall structure and is the second most abundant polysaccharide in plant biomass. The biosynthesis of xylan is still not fully understood and further research in this area will not only provide insights into cell wall biology but also contribute to genetic modification of biomass composition.
Xylan is the second most abundant polysaccharide in plant biomass. It is a crucial component of cell wall structure as well as a significant factor contributing to biomass recalcitrance. Xylan consists of a linear chain of beta-1,4-linked xylosyl residues that are often substituted with glycosyl side chains, such as glucuronosyl/methyl-glucuronosyl and arabinofuranosyl residues, and acetylated at O-2 and/or O-3. Xylan from gymnosperms and dicots contains a unique reducing end tetrasaccharide sequence that is not detected in xylan from grasses, bryophytes and seedless vascular plants. Grass xylan is heavily decorated at O-3 with arabinofuranosyl residues that are frequently esterified with hydroxycinnamates. Genetic and biochemical studies have uncovered a number of genes involved in xylan backbone elongation and acetylation, xylan glycosyl substitutions and their modifications, and the synthesis of the unique xylan reducing end tetrasaccharide sequence, but some outstanding issues on the biosynthesis of xylan still remain unanswered. Here, we provide a brief overview of xylan structure and focus on discussion of the current understanding and open questions on xylan biosynthesis. Further elucidation of the biochemical mechanisms underlying xylan biosynthesis will not only shed new insights into cell wall biology but also provide molecular tools for genetic modification of biomass composition tailored for diverse end uses.

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