Organically-bound silicon enhances resistance to enzymatic degradation and nanomechanical properties of rice plant cell walls

Carbohydr Polym. 2021 Aug 15:266:118057. doi: 10.1016/j.carbpol.2021.118057. Epub 2021 Apr 30.

Abstract

Plant cell walls exhibit excellent mechanical properties, which form the structural basis for sustainable bioresources and multifunctional nanocelluloses. The wall nanomechanical properties of living cells through covalent modifications of hybrid inorganic elements, such as silicon, may confer significant influence on local mechano-response and enzymatic degradation. Here, we present a combination of ex situ measurements of enzyme-released oligosaccharide fragments using MALDI-TOF MS and in situ atomic force microscopy (AFM) imaging through PeakForce quantitative nanomechanical mapping of tip-functionalized single-molecule enzyme-polysaccharide substrate recognition and the nanoscale dissolution kinetics of individual cellulose microfibrils of living rice (Oryza sativa) cells following silicate cross-linking of cell wall xyloglucan. We find that xyloglucan-bound silicon enhances the resistance to degradation by cellulase and improves the wall nanomechanical properties in the elastic modulus at the single-cell level. The findings establish a direct link between an inorganic element of silicon and the nanoscale architecture of plant cell wall materials for sustainable utilization.

Keywords: Cell wall; Living cells; Nanomechanical properties; Silicon; Single-molecule enzyme-substrate recognition; Xyloglucan.

MeSH terms

  • Cell Wall / chemistry
  • Cell Wall / metabolism*
  • Cells, Cultured
  • Cellulase / metabolism
  • Elastic Modulus / drug effects
  • Glucans / chemistry
  • Glucans / metabolism
  • Hydrolysis / drug effects
  • Oligosaccharides / analysis
  • Oligosaccharides / chemistry
  • Oryza / metabolism
  • Plant Cells / metabolism
  • Silicates / chemistry
  • Silicates / metabolism*
  • Silicon / analysis
  • Silicon / chemistry*
  • Xylans / analysis
  • Xylans / chemistry
  • Xylans / metabolism

Substances

  • Glucans
  • Oligosaccharides
  • Silicates
  • Xylans
  • xyloglucan
  • Cellulase
  • Silicon