Regreening mechanisms in cucumber: insights from a CsSIG2 mutation affecting chloroplast development.

IF 4.2 1区 农林科学 Q1 AGRONOMY Theoretical and Applied Genetics Pub Date : 2025-03-23 DOI:10.1007/s00122-025-04854-7
Hanqiang Liu, Zeqiang Huang, Xinyue Wang, Kaihong Hu, Qinqin Jiang, Feifan Chen, Yuxuan Ma, Zhihui Cheng, Yupeng Pan, Yiqun Weng
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Abstract

Key message: CsSIG2 is essential for cucumber chloroplast development, and mutations in CsSIG2 reveal mechanisms that restore chloroplast functionality and drive the regreening phenotype in the mutant. Chloroplast development and leaf color are essential traits that significantly influence plant photosynthesis and overall vigor. This study investigates a natural mutation in the cucumber that leads to a virescent leaf-color (Csvl-6) phenotype characterized by an initial yellow color in cotyledons and young leaves, which gradually transition to green as the plant matures. We utilized bulked segregant analysis and genetic linkage mapping to locate the best candidate gene sigma factor 2 (CsSIG2) on chromosome 6, identifying a single nonsynonymous SNP resulting in an arginine to glycine substitution in the CsSIG2 protein. Comparative transcriptome analysis highlighted that this mutation disrupts early chloroplast biogenesis and delays chlorophyll accumulation, but the chloroplasts can recover, leading to greening during later stages of leaf development. Our findings reveal that the recovery phenomenon involves upregulation of chloroplast-encoded genes responsible for thylakoid membrane formation and photosystem function, alongside altered expression of transcription factors linked to chlorophyll metabolism. This study elucidates the genetic and molecular basis of chloroplast development in cucumber, providing valuable insights into the mechanisms underlying leaf greening, which could inform future breeding efforts focused on manipulating leaf color traits for enhanced crop performance.

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黄瓜变绿机制:来自影响叶绿体发育的CsSIG2突变的见解。
关键信息:CsSIG2对黄瓜叶绿体发育至关重要,CsSIG2突变揭示了恢复叶绿体功能和驱动突变体变绿表型的机制。叶绿体发育和叶片颜色是影响植物光合作用和整体活力的重要性状。本研究研究了黄瓜的一种自然突变,该突变导致嫩叶颜色(Csvl-6)表型,其特征是子叶和嫩叶最初为黄色,随着植物成熟逐渐转变为绿色。我们利用大量分离分析和遗传连锁作图定位了6号染色体上的最佳候选基因西格玛因子2 (CsSIG2),发现了一个导致CsSIG2蛋白中精氨酸到甘氨酸替代的单一非同义SNP。比较转录组分析强调,该突变破坏了早期叶绿体的生物发生,延缓了叶绿素的积累,但叶绿体可以恢复,导致叶片发育后期变绿。我们的研究结果表明,这种恢复现象涉及叶绿体编码基因的上调,这些基因负责类囊体膜的形成和光系统功能,以及与叶绿素代谢相关的转录因子的表达改变。本研究阐明了黄瓜叶绿体发育的遗传和分子基础,为叶片绿化的机制提供了有价值的见解,为未来的育种工作提供了指导,重点是控制叶片颜色性状以提高作物性能。
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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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