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Pongrac, P.

Publications and source records attributed to Pongrac, P..

2 recordsLinked to original sources

Element partitioning, element localisation and transcriptome responses of date palms exposed to NaCl

Date palm (Phoenix dactylifera L.) is an economically important fruit crop in many (semi)arid regions. Large intra-species variation in susceptibility to NaCl has been reported. Controlled experiments were conducted to evaluate sodium (Na) and chlorine (Cl) partitioning in two-year old plants of six date palm varieties and to determine tissue location of Na and Cl and transcriptome responses to NaCl of two varieties. The largest Na concentrations were found in secondary roots, especially under NaCl treatment. By contrast, only small differences in within-plant partitioning of Cl were observed with less differences between varieties than for Na. Variety Sultana had the largest Na translocation factor. The variety Khalas exhibited better restriction of Na mobility, which may be a consequence of Na hotspots in roots, presumably immobilising Na in roots, which were absent in Sultana. In the root, shoot base and lower part of leaves, Cl accumulated in fibre bands and sclerenchyma sheaths of vascular bundles. RNAseq analysis revealed that Sultana and Khalas respond very differently to NaCl: Khalas modified expression of NaCl-specific genes in both roots and leaves, while Sultana responded manly in leaves. Gene ontology analysis showed that the expression changes for genes linked with photosynthesis and carbohydrate metabolism predominated as a response to NaCl. In Khalas, differentially expressed genes encoding for metal transporters and those reported to be involved in heat, salt and osmotic stress response were found. Large variability in Na and Cl accumulation in different date palm varieties may have practical agronomical consequences.

plant biology↗

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↗