Potassium transporter OsHAK17 may contribute to saline-alkaline tolerant mechanisms in rice (Oryza sativa)

被引:0
作者
Mami Nampei
Hiromu Ogi
Tanee Sreewongchai
Sho Nishida
Akihiro Ueda
机构
[1] Hiroshima University,Graduate School of Integrated Sciences for Life
[2] Kasetsart University,Department of Agronomy, Faculty of Agriculture
[3] Saga University,Faculty of Agriculture
[4] Kagoshima University,United Graduate School of Agricultural Sciences
来源
Journal of Plant Research | 2024年 / 137卷
关键词
K; acquisition mechanisms; K; transporter; OsHAK17; Rice; Saline-alkaline stress;
D O I
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中图分类号
学科分类号
摘要
Rice production is seriously affected by saline-alkaline stress worldwide. To elucidate the saline-alkaline tolerance mechanisms in a novel tolerant rice variety, Shwe Nang Gyi (SNG), we investigated ion accumulation in SNG and Koshihikari (KSH), which is a saline-alkaline sensitive rice variety, and the candidates for saline-alkaline inducible genes in SNG using RNA-seq. SNG had superior ion accumulation capacity, such as K and Zn, compared to KSH. In contrast, SNG accumulated the same level of Na content in its leaf blades as KSH despite the higher dry weight of the SNG leaf blades. We further found that the expression of numerous genes, including several K+ transporter/high-affinity K+ transporter/K+ uptake protein/K+ transporter (HAK/KUP/KT) family members, were upregulated in SNG, and that OsHAK17 and OsHAK21 expression levels in the roots were significantly higher in SNG than in KSH. Moreover, yeast complementation analysis revealed that OsHAK17 was involved in K+ uptake under high-Na conditions. These results suggested that SNG has an effective K+ acquisition system supported by OsHAK17 functioning in saline-alkaline environments.
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页码:505 / 520
页数:15
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