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Auxin-Mediated Aerenchyma Formation Drives Selenium-Induced Rhizosphere Iron Barrier Strengthening to Restrict Toxic
Chao Zhang1, Dong-Xing Guan1, Jia-Lu Gao1
1State Key Laboratory of Soil Pollution Control and Safety, Zhejiang Provincial Key Laboratory of Agricultural Resources and Environment, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou310058, China.
Abstract:
Selenium (Se) application can reduce toxic element accumulation in rice, yet the mechanistic basis linking Se to rhizosphere oxygenation and Fe barrier formation remains unresolved. In a 103 day greenhouse pot experiment, sodium selenite was applied to multicontaminated paddy soil either as a soil amendment (1 mg kg-1) or foliar spray (40 mg L-1), with an untreated control. Soil Se application reduced grain concentrations of cadmium by 54%, arsenic by 34%, lead by 41%, chromium by 21%, nickel by 42%, and cobalt by 39%; foliar application achieved reductions of 12%-41%. To resolve the underlying mechanisms, we integrated planar optode and DGT-LA-ICP-MS imaging with physiological and molecular analyses. Selenium stimulated auxin accumulation by 2.74-fold and upregulated auxin biosynthesis and signaling genes (OsYUCCA1, OsTAA1, OsARF19), expanding constitutive aerenchyma from 34% to 65% of cortical area and sustaining radial oxygen loss. The resulting increase in rhizosphere oxygenation decreased labile Fe and Mn fluxes by 54%-89%, consistent with Fe/Mn oxide precipitation, and increased root surface Fe plaque by 5.64-fold, collectively restricting toxic element mobility through adsorption and coprecipitation. These findings establish an auxin-mediated aerenchyma-radial oxygen loss-iron barrier cascade as the mechanistic basis for Se-induced restriction of toxic element uptake by rice.
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