Broad Specific Xyloglucan:Xyloglucosyl Transferases Are Formidable Players in the Re-Modelling of Plant Cell Wall Structures.

Int J Mol Sci

Institute of Chemistry, Centre for Glycomics, Slovak Academy of Sciences, SK-84538 Bratislava, Slovakia.

Published: January 2022

AI Article Synopsis

  • Xyloglucan endo-transglycosylases (XETs) are essential enzymes in plants that facilitate cell wall dynamics, influencing growth and adaptation to environmental stress.
  • XETs have a unique structure that allows them to catalyze transglycosylation reactions with various xyloglucan-derived donors and acceptors, showcasing their evolutionary diversity.
  • The expression of XET genes varies in different plant organs and tissues depending on environmental conditions, highlighting their role in ongoing cell wall restructuring.

Article Abstract

Plant xyloglucan:xyloglucosyl transferases, known as xyloglucan endo-transglycosylases (XETs) are the key players that underlie plant cell wall dynamics and mechanics. These fundamental roles are central for the assembly and modifications of cell walls during embryogenesis, vegetative and reproductive growth, and adaptations to living environments under biotic and abiotic (environmental) stresses. XET enzymes (EC 2.4.1.207) have the β-sandwich architecture and the β-jelly-roll topology, and are classified in the glycoside hydrolase family 16 based on their evolutionary history. XET enzymes catalyse transglycosylation reactions with xyloglucan (XG)-derived and other than XG-derived donors and acceptors, and this poly-specificity originates from the structural plasticity and evolutionary diversification that has evolved through expansion and duplication. In phyletic groups, XETs form the gene families that are differentially expressed in organs and tissues in time- and space-dependent manners, and in response to environmental conditions. Here, we examine higher plant XET enzymes and dissect how their exclusively carbohydrate-linked transglycosylation catalytic function inter-connects complex plant cell wall components. Further, we discuss progress in technologies that advance the knowledge of plant cell walls and how this knowledge defines the roles of XETs. We construe that the broad specificity of the plant XETs underscores their roles in continuous cell wall restructuring and re-modelling.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8836008PMC
http://dx.doi.org/10.3390/ijms23031656DOI Listing

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