SAL逆行信号的调制促进了动态田间环境下的产量和水分生产力响应。

IF 8.1 1区 生物学 Q1 PLANT SCIENCES
New Phytologist Pub Date : 2025-09-15 DOI:10.1111/nph.70579
Andrew F Bowerman,Marten Moore,Arun Yadav,Jing Zhang,Matthew D Mortimer,Zuzana Plšková,Estee E Tee,Eng Kee Au,Derek P Collinge,Gonzalo M Estavillo,Crispin A Howitt,Kai X Chan,Greg J Rebetzke,Barry J Pogson
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引用次数: 0

摘要

叶绿体到细胞核的逆行信号使植物能够快速响应胁迫,但这些信号是否在田间条件下累积影响整个生长季节的作物性能仍然未知。我们从两个不同的同源类群(TaSAL1和TaSAL2)中产生了特异性SAL基因拷贝的靶向缺失小麦突变体,创造了具有增强的胁迫信号响应性的品系。我们在15个田间试验中对这些品系进行了测试,这些试验跨越了澳大利亚不同的环境,包括不同的温度、降雨和灌溉制度,测量了生理反应、产量、生物量和水分生产力。TaSAL2基因缺失系产量提高4-8%,水分生产力提高,TaSAL1基因缺失系产量降低。TaSAL2突变体在干旱胁迫下保持了优越的光合功能,表现出更高的相对含水量,并在不同环境下表现出更高的产量稳定性。冠层温度测量揭示了气孔的动态调节,在正午胁迫期气孔闭合增加,而在良性条件下气孔正常。值得注意的是,特定的SAL修饰提高了光合效率和抗逆性,而没有传统的产量损失。对特定SAL同源基团进行定向修饰可以同时提高小麦的产量和抗逆性。这表明逆行信号整合了整个植物生命周期的环境信息,并强调了基因座特异性靶向和多环境田间验证对作物改良的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modulation of SAL retrograde signalling promotes yield and water productivity responses in dynamic field environments.
Chloroplast-to-nucleus retrograde signalling enables rapid stress responses in plants, but whether these signals accumulate to affect crop performance across entire growing seasons under field conditions remains unknown. We generated wheat mutants with targeted deletions in specific SAL gene copies from two distinct homeologous groups (TaSAL1 and TaSAL2), creating lines with enhanced stress signal responsiveness. We tested these lines across 15 field trials spanning diverse Australian environments with varying temperatures, rainfall, and irrigation regimes, measuring physiological responses, yield, biomass, and water productivity. Lines with TaSAL2 gene deletions showed 4-8% yield improvements with enhanced water productivity, while TaSAL1 deletions reduced yields. The TaSAL2 mutants maintained superior photosynthetic function under drought stress, showed improved relative water content, and demonstrated enhanced yield stability across environments. Canopy temperature measurements revealed dynamic stomatal regulation, with increased closure during midday stress periods but normal aperture under benign conditions. Significantly, specific SAL modifications enhanced photosynthetic efficiency and stress resilience without traditional yield penalties. Targeted modification of specific SAL homeologous groups can simultaneously improve both yield and stress tolerance in wheat. This demonstrates that retrograde signalling integrates environmental information across the plant lifecycle and highlights the importance of locus-specific targeting and multienvironment field validation for crop modifications.
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来源期刊
New Phytologist
New Phytologist 生物-植物科学
自引率
5.30%
发文量
728
期刊介绍: New Phytologist is an international electronic journal published 24 times a year. It is owned by the New Phytologist Foundation, a non-profit-making charitable organization dedicated to promoting plant science. The journal publishes excellent, novel, rigorous, and timely research and scholarship in plant science and its applications. The articles cover topics in five sections: Physiology & Development, Environment, Interaction, Evolution, and Transformative Plant Biotechnology. These sections encompass intracellular processes, global environmental change, and encourage cross-disciplinary approaches. The journal recognizes the use of techniques from molecular and cell biology, functional genomics, modeling, and system-based approaches in plant science. Abstracting and Indexing Information for New Phytologist includes Academic Search, AgBiotech News & Information, Agroforestry Abstracts, Biochemistry & Biophysics Citation Index, Botanical Pesticides, CAB Abstracts®, Environment Index, Global Health, and Plant Breeding Abstracts, and others.
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