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PNAS Plus: Balancing trade-offs between biotic and abiotic stress responses through leaf age-dependent variation in stress hormone cross-talk

机译:PNAS Plus:通过与叶龄有关的应激激素串扰变化平衡生物和非生物胁迫响应之间的权衡

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摘要

In nature, plants must respond to multiple stresses simultaneously, which likely demands cross-talk between stress-response pathways to minimize fitness costs. Here we provide genetic evidence that biotic and abiotic stress responses are differentially prioritized in Arabidopsis thaliana leaves of different ages to maintain growth and reproduction under combined biotic and abiotic stresses. Abiotic stresses, such as high salinity and drought, blunted immune responses in older rosette leaves through the phytohormone abscisic acid signaling, whereas this antagonistic effect was blocked in younger rosette leaves by PBS3, a signaling component of the defense phytohormone salicylic acid. Plants lacking PBS3 exhibited enhanced abiotic stress tolerance at the cost of decreased fitness under combined biotic and abiotic stresses. Together with this role, PBS3 is also indispensable for the establishment of salt stress- and leaf age-dependent phyllosphere bacterial communities. Collectively, our work reveals a mechanism that balances trade-offs upon conflicting stresses at the organism level and identifies a genetic intersection among plant immunity, leaf microbiota, and abiotic stress tolerance.
机译:在自然界中,植物必须同时响应多种压力,这可能需要在压力响应路径之间进行串扰以最大程度地降低适应性成本。在这里,我们提供了遗传证据,表明生物和非生物胁迫响应在不同年龄的拟南芥叶片中具有不同的优先级,以在生物和非生物联合胁迫下维持生长和繁殖。非生物胁迫(例如高盐度和干旱)通过植物激素脱落酸信号减弱了老式玫瑰花叶中的免疫反应,而这种抗药性在年轻玫瑰花叶中被防御性植物激素水杨酸的信号传导成分PBS3阻断。缺乏PBS3的植物表现出增强的非生物胁迫耐受性,但在生物和非生物胁迫共同作用下却降低了适应性。与此角色一起,PBS3对于建立盐胁迫和依赖叶龄的叶球细菌群落也是必不可少的。总的来说,我们的工作揭示了一种机制,该机制可以平衡生物体水平上相互冲突的胁迫之间的权衡,并确定植物免疫力,叶片微生物群和非生物胁迫耐受性之间的遗传交集。

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