田间条件下葡萄(莱茵雷司令×赤霞珠)耐热性QTL定位及相关基因

IF 4.2 1区 农林科学 Q1 AGRONOMY
Silvia Pettenuzzo, Luca Cappellin, Michele Faralli, Maria Stella Grando, Laura Costantini
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引用次数: 0

摘要

关键信息:通过对葡萄在高温条件下主要生理性状的QTL分析,发现了26个基因组区域和有希望的候选基因,这些基因与葡萄在田间条件下的耐热性和对光胁迫的响应有关。葡萄藤是世界上种植最广泛的多年生水果作物之一,其经济意义主要与葡萄酒生产有关。气候变化,随着全球变暖和强烈现象的增加,极大地影响了葡萄种植和葡萄酒行业。因此,研究葡萄对高温反应的遗传因素有助于改善葡萄园管理策略和支持植物育种创新。在本实验中,使用一个定位群体(莱茵雷司令×赤霞珠)对葡萄园条件下温度升高的生理反应进行遗传解剖。研究了植物生长发育不同阶段3个高温季节的光合活性和气孔动态。定量性状位点(QTL)分析结果突出了26个基因组区域对8个被测性状的一致贡献。有证据支持的候选基因是与植物热驯化相关的信号感知和转导、蛋白质稳态、渗透保护、光合作用和辐射响应相关的基因,其解释方差在10%以上。在通过探索性分析确定的稳定染色体间隔内,出现了其他基因预测,可以测试它们是否参与葡萄藤对温度升高的恢复能力。在实际田间条件下研究葡萄耐热性相关数量性状的遗传结构,有助于确定重要传统作物适应环境变化的关键目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
QTL mapping and underlying genes for heat tolerance in grapevine (Rhine Riesling × Cabernet Sauvignon) under field conditions.

Key message: QTL analysis for key physiological traits assessed during hot days highlighted 26 genomic regions and promising candidate genes for thermotolerance and response to light stress under field conditions in grapevine. Grapevine is one of the most widely cultivated perennial fruit crops in the world, with its economic relevance mainly related to wine production. Climate change, with global warming and increased frequency of intense phenomena, is greatly affecting viticulture and the wine sector. Thus, studying the genetic factors involved in grapevine response to high temperatures can help to improve vineyard management strategies and support plant breeding innovations. In this experiment, a mapping population (Rhine Riesling × Cabernet Sauvignon) was used to perform a genetic dissection of the physiological response to increased temperatures under vineyard conditions. Photosynthetic activity and stomatal dynamics were evaluated for three seasons during hot days at different plant developmental stages. Results of quantitative trait loci (QTL) analysis highlighted 26 genomic regions that consistently contribute to the eight tested traits. Candidate genes with supporting evidence, underlying QTL clusters with explained variance above 10%, are those associated with signal perception and transduction, protein homeostasis, osmoprotection, photosynthesis and response to radiation which are relevant mechanisms for plant heat acclimation. Within the stable chromosomal intervals identified by this exploratory analysis, other gene predictions emerged that may be tested for their involvement in grapevine resilience to increasing temperatures. The genetic architecture of quantitative traits linked to grapevine heat tolerance investigated under real field conditions, helps to define key targets for adapting an important traditional crop to environmental changes.

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来源期刊
CiteScore
9.60
自引率
7.40%
发文量
241
审稿时长
2.3 months
期刊介绍: Theoretical and Applied Genetics publishes original research and review articles in all key areas of modern plant genetics, plant genomics and plant biotechnology. All work needs to have a clear genetic component and significant impact on plant breeding. Theoretical considerations are only accepted in combination with new experimental data and/or if they indicate a relevant application in plant genetics or breeding. Emphasizing the practical, the journal focuses on research into leading crop plants and articles presenting innovative approaches.
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