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通过高通量表型分析破译刺山柑中的盐胁迫反应。

Deciphering salt stress responses in Solanum pimpinellifolium through high-throughput phenotyping.

机构信息

Plant Science Program, Biological and Environmental Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.

NASA Goddard Space Flight Center, Greenbelt, Maryland, USA.

出版信息

Plant J. 2024 Sep;119(5):2514-2537. doi: 10.1111/tpj.16894. Epub 2024 Jul 6.

Abstract

Soil salinity is a major environmental stressor affecting agricultural productivity worldwide. Understanding plant responses to salt stress is crucial for developing resilient crop varieties. Wild relatives of cultivated crops, such as wild tomato, Solanum pimpinellifolium, can serve as a useful resource to further expand the resilience potential of the cultivated germplasm, S. lycopersicum. In this study, we employed high-throughput phenotyping in the greenhouse and field conditions to explore salt stress responses of a S. pimpinellifolium diversity panel. Our study revealed extensive phenotypic variations in response to salt stress, with traits such as transpiration rate, shoot mass, and ion accumulation showing significant correlations with plant performance. We found that while transpiration was a key determinant of plant performance in the greenhouse, shoot mass strongly correlated with yield under field conditions. Conversely, ion accumulation was the least influential factor under greenhouse conditions. Through a Genome Wide Association Study, we identified candidate genes not previously associated with salt stress, highlighting the power of high-throughput phenotyping in uncovering novel aspects of plant stress responses. This study contributes to our understanding of salt stress tolerance in S. pimpinellifolium and lays the groundwork for further investigations into the genetic basis of these traits, ultimately informing breeding efforts for salinity tolerance in tomato and other crops.

摘要

土壤盐度是影响全球农业生产力的主要环境胁迫因素。了解植物对盐胁迫的响应对于开发具有弹性的作物品种至关重要。栽培作物的野生近缘种,如野生番茄 Solanum pimpinellifolium,可以作为一个有用的资源,进一步扩大栽培种质的弹性潜力,如 S. lycopersicum。在这项研究中,我们在温室和田间条件下采用高通量表型分析方法,探索了 S. pimpinellifolium 多样性群体对盐胁迫的响应。我们的研究揭示了对盐胁迫的广泛表型变异,蒸腾速率、茎质量和离子积累等性状与植物表现显著相关。我们发现,虽然蒸腾作用是温室中植物表现的关键决定因素,但在田间条件下,茎质量与产量密切相关。相反,离子积累在温室条件下是最不重要的因素。通过全基因组关联研究,我们鉴定到了以前与盐胁迫无关的候选基因,突显了高通量表型分析在揭示植物应激反应新方面的强大功能。这项研究增进了我们对 S. pimpinellifolium 耐盐性的理解,并为进一步研究这些性状的遗传基础奠定了基础,最终为番茄和其他作物的耐盐性育种提供了信息。

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