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Safran, J.

Publications and source records attributed to Safran, J..

3 recordsLinked to original sources

Differences in the structure of plant polygalacturonases specify enzymes dynamics and processivities to fine-tune pectins and root development

The fine-tuning of pectins by polygalacturonases (PGs) plays a key role in modulating plant cell wall chemistry and mechanics, impacting plant development. In plants, the high number of PGs encoded in the genome questions the regulation of pectin depolymerization and the roles of distinct isozymes in the control of development. Here we report the first crystal structures of two PGs from Arabidopsis, PGLR and ADPG2 whose expression overlap in roots. Albeit having overall conserved folds and active sites, PGLR and ADPG2 differed in the structure of their binding grooves and in the amino-acids of the subsites. We determined the structural features that explain the absence of inhibition of the plant PGs by endogenous PG-Inhibiting Proteins (PGIPs). By combining molecular dynamic simulations, analysis of enzymes kinetics and hydrolysis products, we showed that subtle differences in PGLR and ADPG2 structures translated into distinct enzyme-substrate dynamics and enzymes processivities. Using the plant root as a developmental model, exogenous application of purified enzymes showed that these distinct PGLR/ADPG2 processivities ultimately translated into different impacts on development. The highly processive ADPG2 had major effects on both root cell elongation and cell adhesion. Our study suggests that, in plants, gene redundancy is unlikely to reflect redundant biochemical specificities. Isozymes of distinct specificities and processivities are likely to be of major importance for the fine spatial and temporal regulation of pectin structure. Significance StatementPlant polygalacturonases (PG) are enzymes that play a key role in the regulation of cell wall pectin chemistry by controlling the degree of polymerization of the HG chains. The high number of genes encoding PG in Arabidopsis questions the rationale for such abundance. We solved the crystal structure of two PG (PGLR and ADPG2) whose expression overlap in roots and showed, using combined computational and experimental approaches, that they differ in their enzyme-substrate dynamics, leading to distinct processivities. The highly processive ADPG2 can generate digestion products of shorter degree of polymerization, and upon exogenous application on developing roots, induced drastic developmental defects. Our study suggests that gene redundancy is unlikely to reflect redundant biochemical specificities of isozymes.

biochemistry↗

Auxin and pectin remodeling interplay during rootlet emergence in white lupin

Secondary root emergence is a crucial trait that shapes the plants underground system. Virtually every developmental step of root primordium morphogenesis is controlled by auxin. However, how the hormone controls cell separation in primordium-overlaying tissues through wall loosening is poorly understood. Here, we took advantage of white lupin and its spectacular cluster root development to assess the contribution of auxin to this process. We show that auxins positive role on rootlet emergence is associated with an upregulation of cell wall pectin modifying and degrading genes. Downregulation of a pectinolytic enzyme gene expressed in cells surrounding the primordium resulted in delayed emergence. Pectins were demethylesterified in the emergence zone and auxin treatment further enhanced this effect. Additionally, we report specific rhamnogalacturonan-I modifications during cortical cell separation. In conclusion, we propose a model in which auxin has a dual role during rootlet emergence: Firstly, through active pectin demethylesterification and secondly by regulating the expression of cell wall remodeling enzymes.

plant biology↗

The pH-dependent processivity of Arabidopsis AtPME2 can control cell wall mechanical properties

Pectin methylesterases (PMEs) modify homogalacturonans (HG) chemistry and play a key role in regulating primary cell wall mechanical properties. How PME activity can fine-tune pectin structure in the growing plant has remained elusive. Here we report on the Arabidopsis AtPME2, which we found to be highly expressed during lateral root emergence and dark-grown hypocotyl elongation. We produced the mature active enzyme using heterologous expression in Pichia pastoris and characterized it through the use of a generic plant PME antiserum suitable for detecting recombinant and native enzyme independent of species source. At neutral pH AtPME2 is preferentially active on pectins with a degree of 55-70% methylesterification and can be inhibited by PME inhibitor protein (PMEI). We show that the mode of action for AtPME2 can switch from full processivity (at pH 8), creating large blocks of unmethylated galacturonic acid, to low processivity (at pH 5) and relate these observations to the differences in electrostatic potential of the protein at acidic and alkaline pH. To assess the role of AtPME2 in development, we characterized two knock-out lines. We show that in the context of acidified apoplast, low-processive demethylesterification by AtPME2 can loosen the cell wall, with consequent increase in cell elongation and etiolated hypocotyl length. Our study brings insights into how the pH-dependent regulation by PME activity could affect pectin structure and associated cell wall mechanical properties in expansion. One sentence summaryThe processivity of AtPME2, a pectin methylesterase that fine-tunes cell wall pectins is modulated by pH in vitro and impacts the mechanical properties of the wall, affecting development in planta.

plant biology↗