拟南芥
化学
木质部
盐度
拟南芥
盐生植物
脱落酸
共转运蛋白
反转运蛋白
细胞生物学
钠
植物
生物化学
运输机
生物
突变体
生态学
基因
有机化学
作者
Laila Khaleda,Hee Jin Park,Dae‐Jin Yun,Jong‐Rok Jeon,Min Gab Kim,Joon‐Yung Cha,Woe‐Yeon Kim
出处
期刊:PubMed
[National Institutes of Health]
日期:2017-12-31
卷期号:40 (12): 966-975
被引量:45
标识
DOI:10.14348/molcells.2017.0229
摘要
Excessive salt disrupts intracellular ion homeostasis and inhibits plant growth, which poses a serious threat to global food security. Plants have adapted various strategies to survive in unfavorable saline soil conditions. Here, we show that humic acid (HA) is a good soil amendment that can be used to help overcome salinity stress because it markedly reduces the adverse effects of salinity on Arabidopsis thaliana seedlings. To identify the molecular mechanisms of HA-induced salt stress tolerance in Arabidopsis, we examined possible roles of a sodium influx transporter HIGH-AFFINITY K+ TRANSPORTER 1 (HKT1). Salt-induced root growth inhibition in HKT1 overexpressor transgenic plants (HKT1-OX) was rescued by application of HA, but not in wild-type and other plants. Moreover, salt-induced degradation of HKT1 protein was blocked by HA treatment. In addition, the application of HA to HKT1-OX seedlings led to increased distribution of Na+ in roots up to the elongation zone and caused the reabsorption of Na+ by xylem and parenchyma cells. Both the influx of the secondary messenger calcium and its cytosolic release appear to function in the destabilization of HKT1 protein under salt stress. Taken together, these results suggest that HA could be applied to the field to enhance plant growth and salt stress tolerance via post-transcriptional control of the HKT1 transporter gene under saline conditions.
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