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Pankratova, Y.

Publications and source records attributed to Pankratova, Y..

2 recordsLinked to original sources

Electron microscopy reveals water networks inside hydrated cellulose fibers

Cellulose is a highly abundant linear glucose polymer that exists in amorphous and fibrillar forms1-3. Primarily produced by vascular plants but also microbes and tunicates, cellulose predominantly performs architectural functions by stabilizing cell walls, tissues, and multicellular communities4-9. Owing to its association with other cell surface materials, physiological higher-order structures of cellulose have been difficult to obtain. Here, we describe a never-dried tunicate cellulose fibril structure by cryogenic electron microscopy, which resolves a fiber of more than 360 cellulose strands. Our data reveals linear and severely twisted fiber segments that are interspersed with solvent channels. Solid-state NMR analyses and molecular dynamics simulations indicate the presence of structural water molecules that form a network connecting neighboring cellulose chains. Confocal and super-resolution MINFLUX fluorescence imaging using cellulose-specific probes as well as biochemical analyses demonstrate shared surface and material properties of plant and tunicate cellulose fibers. Combined, our data suggest that architectural water molecules may be common features of cellulose fibers and likely other polysaccharide assemblies in their hydrated physiological states.

molecular biology↗

Altering the substitution and crosslinking of glucuronoarabinoxylans affects cell wall porosity and assembly in Brachypodium distachyon.

O_LIThe Poaceae family of plants provides cereal crops that are critical for human and animal nutrition and also they are an important source of biomass. Interacting plant cell wall components give rise to recalcitrance to digestion, thus understanding the wall molecular architecture is important to improve biomass properties. Xylan is the main hemicellulose in grass cell walls. Recently, we reported structural variation in grass xylans, suggesting functional specialisation and distinct interactions with cellulose and lignin. Here, we investigated the functions of these xylans by perturbing the biosynthesis of specific xylan types. C_LIO_LIWe generated CRISPR/Cas9 knockout mutants in Brachypodium distachyon XAX1 and GUX2 genes involved in xylan biosynthesis. Using carbohydrate gel electrophoresis we identified biochemical changes in different xylan types. Saccharification, cryo-SEM, subcritical water extraction and ssNMR were used to study wall architecture. C_LIO_LIBdXAX1A and BdGUX2 enzymes modify different types of grass xylan. Brachypodium mutant walls are more porous, suggesting the xylan substitutions directed by both BdXAX1A andGUX2 enzymes influence xylan-xylan and/or xylan-lignin interactions. C_LIO_LISince xylan substitutions influence wall architecture and digestibility, our findings open new avenues to improve cereals for food and to use grass biomass for feed and the production of bioenergy and biomaterials. C_LI

biochemistry↗