Qian Lisheng, Song Fei, Xia Jinlin, Wang Rongfu
College of Life Sciences, Anhui Agricultural University, Hefei, China.
Anhui Shengnong Agricultural Group Co., Ltd., Maanshan, China.
Front Plant Sci. 2022 Apr 14;13:876545. doi: 10.3389/fpls.2022.876545. eCollection 2022.
Dynamic regulation of phytohormone levels is pivotal for plant adaptation to harmful conditions. It is increasingly evidenced that endophytic bacteria can regulate plant hormone levels to help their hosts counteract adverse effects imposed by abiotic and biotic stresses, but the mechanisms underlying the endophyte-induced stress resistance of plants remain largely elusive. In this study, a glucuronic acid-producing endophyte sp. MCS15 alleviated cadmium (Cd) toxicity in rice plants. Inoculation with MCS15 significantly inhibited the expression of ethylene biosynthetic genes including , , , and and thus reduced the content of ethylene in rice roots. In addition, the expression of iron uptake-related genes including , , , and was significantly downregulated in the MCS15-inoculated roots under Cd stress. Similarly, glucuronic acid treatment also remarkably inhibited root uptake of Cd and reduced the production of ethylene. However, treatment with 1-aminocyclopropyl carboxylic acid (ACC), a precursor of ethylene, almost abolished the MCS15 or glucuronic acid-induced inhibition of Cd accumulation in rice plants. Conversely, treatment with aminoethoxyvinyl glycine (AVG), an inhibitor of ethylene biosynthesis, markedly reduced the Cd accumulation in plants. Taken together, our results revealed that the endophytic bacteria MCS15-secreted glucuronic acid inhibited the biosynthesis of ethylene and thus weakened iron uptake-related systems in rice roots, which contributed to preventing the Cd accumulation.
植物激素水平的动态调节对于植物适应有害环境至关重要。越来越多的证据表明,内生细菌可以调节植物激素水平,以帮助其宿主抵消非生物和生物胁迫带来的不利影响,但内生菌诱导植物抗逆性的潜在机制仍 largely 难以捉摸。在本研究中,一种产生葡萄糖醛酸的内生菌 sp. MCS15 减轻了水稻植株的镉(Cd)毒性。接种 MCS15 显著抑制了包括 、 、 、 和 在内的乙烯生物合成基因的表达,从而降低了水稻根中乙烯的含量。此外,在 Cd 胁迫下,接种 MCS15 的根中包括 、 、 、 和 在内的铁吸收相关基因的表达显著下调。同样,葡萄糖醛酸处理也显著抑制了根对 Cd 的吸收并减少了乙烯的产生。然而,用乙烯前体 1-氨基环丙烷羧酸(ACC)处理几乎消除了 MCS15 或葡萄糖醛酸诱导的对水稻植株中 Cd 积累的抑制作用。相反,用乙烯生物合成抑制剂氨基乙氧基乙烯基甘氨酸(AVG)处理显著降低了植物中的 Cd 积累。综上所述,我们的结果表明,内生细菌 MCS15 分泌的葡萄糖醛酸抑制了乙烯的生物合成,从而削弱了水稻根中与铁吸收相关的系统,这有助于防止 Cd 的积累。