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Blaschek, L.

Publications and source records attributed to Blaschek, L..

2 recordsLinked to original sources

Different combinations of laccase paralogs non-redundantly control the lignin amount and composition of specific cell types and cell wall layers in Arabidopsis

Vascular plants reinforce the cell walls of the different xylem cell types with lignin, a phenolic polymer. Specific lignin chemistries are conserved between the cell wall layers of each cell type to support their functions. Yet the mechanisms controlling the tight spatial localisation of specific lignin chemistries remain unclear. Current hypotheses focus on a control by monomer biosynthesis and/or export, while their cell wall polymerisation is viewed as random and non-limiting. Here we show that cell wall polymerisation using combinations of multiple different laccases (LACs) non-redundantly and specifically control the lignin chemistry in different cell types and their distinct cell wall layers. We dissected the roles of Arabidopsis thaliana LAC4, 5, 10, 12 and 17 by generating quadruple and quintuple loss-of-function mutants. Different combinatory loss of these LACs lead to specific changes in lignin chemistry affecting both residue ring structures and/or aliphatic tails in specific cell types and cell wall layers. We moreover showed that the LAC-mediated lignification had distinct functions in specific cell types. Altogether, we propose that the spatial control of lignin chemistry depends on different combinations of LACs with non-redundant activities immobilised in specific cell types and cell wall layers.

plant biology↗

Specific and dynamic lignification at the cell-type level controls plant physiology and adaptability

The biopolymer lignin, deposited in the cell walls of vascular cells, is essential for long-distance water conduction and structural support of plants. Independently of the species, each different vascular cell type contains a conserved lignin chemistry with specific aromatic and aliphatic substitutions. Yet, the biological role of this conserved and specific lignin chemistry for each cell type remained unclear. Herein, we investigate the role of specific lignin chemistries for cellular function by producing single cell analyses on vascular cell morphotypes, all enabling sap conduction but differing in morphology. We found that specific lignin chemistries accumulate in each morphotype. Moreover, lignin accumulates dynamically, increasing in quantity and changing composition, to alter the cell wall biomechanics of each morphotype during their maturation. For similar aromatic substitution, residues with alcohol aliphatic functions increased stiffness whereas aldehydes increased flexibility. Modifying this specific lignin chemistry impairs the cell wall biomechanics of each morphotype and consequently reduces their capacity to optimally conduct water in normal conditions, and to recover from drought. Altogether, lignin chemistry is differently controlled for each sap conducting cell types during their maturation to dynamically adjust their biomechanics and hydraulic properties to adapt to developmental and environmental constraints.

plant biology↗