The results demonstrated that while salt stress induced substantial Na⁺ accumulation, roots actively responded by promoting Na⁺ efflux and H⁺ influx in the elongation zone, and transcriptional reprogramming established a transmembrane proton gradient that drove effective Na⁺ efflux and maintained intracellular K⁺ homeostasis.
Abstract
Gleditsia sinensis
Lam. is a widely distributed tree species in China characterized by its remarkable tolerance to barrenness and salinity, making it a valuable candidate for the ecological restoration of saline-alkali lands. Understanding its ion regulatory mechanisms is a prerequisite for salt tolerance evaluation and molecular breeding. However, the molecular mechanisms coordinating root ion fluxes and overall defense strategies in
G. sinensis
under salt stress remain largely unclear. In this study, we investigated the root ion flux characteristics and underlying molecular mechanisms of hydroponic
G. sinensis
seedlings under 100 mmol·L⁻¹ NaCl stress using non-invasive micro-test technology (NMT) and transcriptomic sequencing. The results demonstrated that while salt stress induced substantial Na⁺ accumulation, roots actively responded by promoting Na⁺ efflux and H⁺ influx in the elongation zone. Transcriptomic analysis revealed that seedlings adopted a “growth-defense trade-off” strategy. By down-regulating energy-intensive metabolic pathways, the seedlings reallocated limited energy to significantly up-regulate key ion transporters, including
AHA11
,
AKT1
, and
SKOR
. This transcriptional reprogramming established a transmembrane proton gradient that drove effective Na⁺ efflux and maintained intracellular K⁺ homeostasis. These findings provide a theoretical basis and genetic resources for targeted molecular breeding of
G. sinensis
in saline environments.
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