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硼通过促进油菜( Brassica napus L.)根木质部 Na 卸载来赋予耐盐性。

Boron confers salt tolerance through facilitating BnaA2.HKT1-mediated root xylem Na unloading in rapeseed (Brassica napus L.).

机构信息

School of Agricultural Sciences, Zhengzhou University, Zhengzhou, 450001, China.

School of Biological Engineering, Xinxiang Institute of Engineering, Xinxiang, 453700, China.

出版信息

Plant J. 2024 Nov;120(4):1326-1342. doi: 10.1111/tpj.17052. Epub 2024 Oct 25.

Abstract

Boron (B) is an important limiting factor for plant growth and yield in saline soils, but the underlying molecular mechanisms remain poorly understood. In this study, we found that appropriate B supply obviously complemented rapeseed (Brassica napus L.) growth under salinity accompanied by higher biomass production and less reactive oxygen species accumulation. Determination of Na content in shoots and roots indicated that B significantly repressed root-to-shoot Na translocation, and non-invasive micro-tests of root xylem sap demonstrated that B increased xylem Na unloading in the roots of rapeseed plants under salinity. Comparative transcriptomic profiling revealed that B strongly upregulated BnaHKT1s expression, especially BnaA2.HKT1, in rapeseed roots exposed to salinity. In situ hybridizations analysis showed that BnaA2.HKT1 was significantly induced in root stelar tissues by high B (HB) under salinity. Green fluorescent protein and yeast heterologous expression showed that BnaA2.HKT1 functioned as a plasma membrane-localized Na transporter. Knockout of BnaA2.HKT1 by CRISPR/Cas9 resulted in hypersensitive of rapeseed plants to salinity even under HB condition, with higher shoot Na accumulation and lower biomass production. By contrast, overexpression of BnaA2.HKT1 ameliorated salinity-induced growth inhibition under B deficiency and salinity. Overall, our results proposed that B functioned as a positive regulator for the rapeseed growth and seed production under salt stress through facilitating BnaA2.HKT1-mediated root xylem Na unloading. This study may also provide an alternative strategy for the improvement of crop growth and development in saline soils.

摘要

硼(B)是盐渍土壤中植物生长和产量的重要限制因素,但其中的分子机制仍知之甚少。本研究发现,适量 B 供应可明显促进油菜(Brassica napus L.)在盐胁迫下的生长,表现为生物量增加和活性氧积累减少。测定地上部和根部的 Na 含量表明,B 显著抑制了根到地上部的 Na 转运,非侵入性微测根木质部汁液表明,B 增加了盐胁迫下油菜根部木质部 Na 的卸出。比较转录组分析表明,B 强烈地上调了油菜根中 BnaHKT1s 的表达,尤其是 BnaA2.HKT1。原位杂交分析表明,高 B(HB)下盐胁迫会导致 BnaA2.HKT1 在根维管束组织中明显诱导。绿色荧光蛋白和酵母异源表达表明,BnaA2.HKT1 作为一种质膜定位的 Na 转运蛋白发挥功能。CRISPR/Cas9 敲除 BnaA2.HKT1 导致油菜植株对盐胁迫更加敏感,即使在 HB 条件下,地上部 Na 积累增加,生物量减少。相比之下,BnaA2.HKT1 的过表达缓解了 B 缺乏和盐胁迫下的生长抑制。总之,本研究结果表明,B 通过促进 BnaA2.HKT1 介导的根木质部 Na 卸出,作为一种正调控因子促进油菜在盐胁迫下的生长和种子产量。本研究还可能为提高作物在盐渍土壤中的生长和发育提供一种替代策略。

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