Genome-wide association study identifies key F-box genes linked to ethylene responsiveness and root growth in rice (Oryza sativa L.).

IF 4.1 2区 生物学 Q1 PLANT SCIENCES Frontiers in Plant Science Pub Date : 2024-12-18 eCollection Date: 2024-01-01 DOI:10.3389/fpls.2024.1501533
Suparad Klinsawang, Wanchana Aesomnuk, Piyamongkol Mangkalasane, Vinitchan Ruanjaichon, Jonaliza L Siangliw, Bipin K Pandey, Malcolm J Bennett, Samart Wanchana, Siwaret Arikit
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Abstract

Rice (Oryza sativa L.) is a staple food for more than half of the world's population, but its yields are increasingly threatened by environmental problems, including soil compaction. This problem limits root growth which limits water and nutrient foraging capacity thus reduces productivity due to, restricted diffusion of ethylene, a key plant hormone playing an important role in exacerbating these effects. Elevated ethylene levels in compacted soils can further inhibit root development. However, rice varieties that are less sensitive to ethylene may have an advantage as they exhibit better root growth and resource utilization under such conditions. In this study, 220 diverse rice accessions were analyzed to uncover the genetic factors that influence root length reduction (RLR) in response to ethylene. Genome-wide association studies (GWAS) identified a significant QTL on chromosome 10, named qRLR10, associated with ethylene response. Within this region, 20 candidate genes were identified, with three F-box genes namely Os10g0124700, Os10g0126600 and Os10g0128200 showing a strong correlation with RLR variations. These genes are involved in protein degradation, root development and hormone signaling, indicating their possible role in regulating ethylene sensitivity. The results suggest that rice varieties with lower ethylene sensitivity may have better root growth in compacted soils, making them ideal targets for breeding programs aimed at improving resilience to harsh environmental conditions. These results underscore the critical role of ethylene in rice root development and provide valuable insights for future rice improvement strategies aimed at mitigating the effects of soil compaction.

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全基因组关联研究确定了水稻乙烯响应性和根系生长相关的关键F-box基因。
水稻(Oryza sativa L.)是世界上一半以上人口的主食,但其产量日益受到环境问题的威胁,包括土壤压实。这个问题限制了根系的生长,限制了水分和养分的觅食能力,从而降低了生产力,因为乙烯的扩散受到限制,乙烯是一种关键的植物激素,在加剧这些影响方面起着重要作用。压实土壤中乙烯含量升高会进一步抑制根系发育。然而,对乙烯不敏感的水稻品种可能具有优势,因为它们在这种条件下表现出更好的根系生长和资源利用。本研究分析了220种不同水稻材料,揭示了乙烯胁迫下影响根长减少(RLR)的遗传因素。全基因组关联研究(GWAS)在10号染色体上发现了一个与乙烯反应相关的QTL,命名为qRLR10。在该区域共鉴定出20个候选基因,其中3个F-box基因Os10g0124700、Os10g0126600和Os10g0128200与RLR变异具有较强的相关性。这些基因参与蛋白质降解、根系发育和激素信号传导,表明它们可能在调节乙烯敏感性方面发挥作用。结果表明,乙烯敏感性较低的水稻品种可能在压实土壤中具有更好的根系生长,使其成为旨在提高对恶劣环境条件适应能力的育种计划的理想目标。这些结果强调了乙烯在水稻根系发育中的关键作用,并为未来旨在减轻土壤压实影响的水稻改良策略提供了有价值的见解。
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来源期刊
Frontiers in Plant Science
Frontiers in Plant Science PLANT SCIENCES-
CiteScore
7.30
自引率
14.30%
发文量
4844
审稿时长
14 weeks
期刊介绍: In an ever changing world, plant science is of the utmost importance for securing the future well-being of humankind. Plants provide oxygen, food, feed, fibers, and building materials. In addition, they are a diverse source of industrial and pharmaceutical chemicals. Plants are centrally important to the health of ecosystems, and their understanding is critical for learning how to manage and maintain a sustainable biosphere. Plant science is extremely interdisciplinary, reaching from agricultural science to paleobotany, and molecular physiology to ecology. It uses the latest developments in computer science, optics, molecular biology and genomics to address challenges in model systems, agricultural crops, and ecosystems. Plant science research inquires into the form, function, development, diversity, reproduction, evolution and uses of both higher and lower plants and their interactions with other organisms throughout the biosphere. Frontiers in Plant Science welcomes outstanding contributions in any field of plant science from basic to applied research, from organismal to molecular studies, from single plant analysis to studies of populations and whole ecosystems, and from molecular to biophysical to computational approaches. Frontiers in Plant Science publishes articles on the most outstanding discoveries across a wide research spectrum of Plant Science. The mission of Frontiers in Plant Science is to bring all relevant Plant Science areas together on a single platform.
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