AI Article Synopsis

  • Wheat is highly vulnerable to water shortages during its jointing stage, and understanding the role of SnRK2 in drought response is crucial.
  • The gene TaSnRK2.10, which responds to various stressors and hormones, was found to improve drought tolerance in rice by enhancing water retention and reducing harm from oxidative damage.
  • TaSnRK2.10 functions by interacting with and modifying other proteins (like TaERD15 and TaENO1), which helps in regulating stomatal openings and promoting favorable metabolic changes for better survival under drought conditions.

Article Abstract

Wheat (Triticum aestivum) is particularly susceptible to water deficit at the jointing stage of its development. Sucrose non-fermenting 1-related protein kinase 2 (SnRK2) acts as a signaling hub in the response to drought stress, but whether SnRK2 helps plants cope with water deficit via other mechanisms is largely unknown. Here, we cloned and characterized TaSnRK2.10, which was induced by multiple abiotic stresses and phytohormones. Ectopic expression of TaSnRK2.10 in rice (Oryza sativa) conferred drought tolerance, manifested by multiple improved physiological indices, including increased water content, cell membrane stability, and survival rates, as well as decreased water loss and accumulation of H2O2 and malonaldehyde. TaSnRK2.10 interacted with and phosphorylated early responsive to dehydration 15 (TaERD15) and enolase 1 (TaENO1) in vivo and in vitro. TaERD15 phosphorylated by TaSnRK2.10 was prone to degradation by the 26S proteasome, thereby mitigating its negative effects on drought tolerance. Phosphorylation of TaENO1 by TaSnRK2.10 may account for the substantially increased levels of phosphoenolpyruvate (PEP), a key metabolite of primary and secondary metabolism, in TaSnRK2.10-overexpressing rice, thereby enhancing its viability under drought stress. Our results demonstrate that TaSnRK2.10 not only regulated stomatal aperture and the expression of drought-responsive genes, but also enhanced PEP supply and promoted the degradation of TaERD15, all of which enhanced drought tolerance.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9922405PMC
http://dx.doi.org/10.1093/plphys/kiac523DOI Listing

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