Search bioRxiv⌕ Search

Biology subjects

Zavala-Padilla, G. T.

Publications and source records attributed to Zavala-Padilla, G. T..

2 recordsLinked to original sources

Leaf traits in Phaseolus vulgaris and Phaseolus acutifolius reveal divergent terminal drought coping strategies

Phaseolus beans play a crucial role in global food security, providing a sustainable source of protein and micronutrients for diverse populations. However, their productivity is severely affected by prolonged drought during the reproductive stage (terminal drought), which drastically reduces grain yield and quality. While substantial progress has been made in understanding plant drought responses during the vegetative stage, less is known about the responses during the reproductive phase. Among the different responses, little is known about the accompanying anatomical and physiological changes across plant organs. In particular, the leaf plasticity in response to environmental fluctuations remains unexplored under terminal drought. This study investigates the anatomical, physiological and molecular leaf responses to terminal drought in two resistant genotypes of Phaseolus vulgaris (common bean) and Phaseolus acutifolius (tepary bean). Despite comparable water status under stress, tepary mature leaves present longer major veins, larger xylem area, increased air space, and thicker cuticles than common bean. These traits likely contribute to improve water transport and gas exchange. Consistently, tepary bean maintained higher photosynthetic performance under well-watered and drought conditions, with considerable superior carbon fixation rates under irrigation. Elevated starch and sucrose accumulation in tepary leaves under both treatments further supports its enhanced carbon assimilation. RNAseq analysis indicated that some of these traits are partly transcriptomic dependent. Together, our findings highlight the diverse leaf-level adaptations that underlie terminal drought resistance in these species. The enhance anatomical and physiological traits in tepary bean offer valuable insights for improving drought resilience in common bean in a changing climate. HighlightLeaf vein structure, xylem vessels density, and cuticle thickness enhance carbon assimilation and functional maintenance in tepary bean under drought during the reproductive stage, revealing key traits for common bean improvement.

plant biology↗

The chloroplast located HKT transporter plays an important role in sporophyte development in Physcomitrium patens

Cell survival depends on the maintenance of cell homeostasis that involves all the biochemical, genomic and transport processes that take place in all the organelles within an eukaryote cell. In particular, ion homeostasis is required to regulate the membrane potential and solute transport across all membranes, any alteration in these parameters will reflect in the malfunctioning of any organelle. In plant cells, sodium transporters play a central role in keeping the concentrations of this cation across all membranes under physiological conditions to prevent its toxic effects. HKT transporters are a family of membrane proteins exclusively present in plants, with some homologs being present in prokaryotes. HKT transporters have been associated to salt tolerance in plants, retrieving any leak of the cation into the xylem, or removing it from aerial parts to be transported to the roots along the phloem. This function has been assigned as most of the HKT transporters are located at the plasma membrane. Here, we report the localization of the moss HKT from Physcomitrium patens to the thylakoid membrane, and its mutation that leads to several alterations in the phenotype of the organism, together with the changes in expression of close to 1000 genes. Down regulation of photosynthesis related genes and the upregulation of glycolysis/respiration and ion transport genes help to explain the observed phenotype.

plant biology↗