Zhu Lin, Guo Jiansheng, Sun Yujun, Wang Songhua, Zhou Cheng
Key Lab of Bio-Organic Fertilizer Creation, Ministry of Agriculture and Rural Affairs, Anhui Science and Technology University, Bengbu, China.
School of Life Sciences and Technology, Tongji University, Shanghai, China.
Front Plant Sci. 2021 Jun 4;12:670216. doi: 10.3389/fpls.2021.670216. eCollection 2021.
Diverse signaling pathways regulated by phytohormones are essential for the adaptation of plants to adverse environments. Root endophytic bacteria can manipulate hormone-related pathways to benefit their host plants under stress conditions, but the mechanisms underlying endophyte-mediated plant stress adaptation remain poorly discerned. Herein, the acetic acid-producing endophytic bacteria Cr33 greatly reduced cadmium (Cd) accumulation in tomato plants. led to a marked increase in jasmonic acid (JA) content and down-regulation of iron (Fe) uptake-related genes in Cd-exposed roots. Accordantly, acetic acid treatment considerably increased the JA content and inhibited root uptake of Cd uptake. In addition, the Cr33-inoculated roots displayed the increased availability of cell wall and rhizospheric Fe. Inoculation with Cr33 notably reduced the production of nitric oxide (NO) and suppressed Fe uptake systems in the Cd-treated roots, thereby contributing to hampering Cd absorption. Similar results were also observed for Cd-treated tomato plants in the presence of exogenous JA or acetic acid. However, chemical inhibition of JA biosynthesis greatly weakened the endophyte-alleviated Cd toxicity in the plants. Collectively, our findings indicated that the endophytic bacteria effectively prevented Cd uptake in plants via the activation of acetic acid-mediated JA signaling pathways.
植物激素调控的多种信号通路对于植物适应逆境至关重要。根内生细菌可在胁迫条件下操纵激素相关通路,使其宿主植物受益,但内生菌介导的植物胁迫适应的潜在机制仍不清楚。在此,产乙酸内生细菌Cr33显著降低了番茄植株中镉(Cd)的积累。这导致暴露于Cd的根中茉莉酸(JA)含量显著增加,以及铁(Fe)吸收相关基因的下调。相应地,乙酸处理显著增加了JA含量,并抑制了根对Cd的吸收。此外,接种Cr33的根表现出细胞壁和根际铁的有效性增加。接种Cr33显著降低了一氧化氮(NO)的产生,并抑制了Cd处理根中的铁吸收系统,从而有助于阻碍Cd的吸收。在存在外源JA或乙酸的情况下,Cd处理的番茄植株也观察到类似结果。然而,化学抑制JA生物合成大大削弱了内生菌减轻植物中Cd毒性的作用。总的来说,我们的研究结果表明,内生细菌通过激活乙酸介导的JA信号通路有效地阻止了植物对Cd的吸收。