作物细胞质雄性不育与杂种优势育种的过去与未来。

IF 5.3 2区 生物学 Q1 PLANT SCIENCES
Abhishek Bohra, Abha Tiwari, Shalini Pareek, Rohit Joshi, S J Satheesh Naik, Khushbu Kumari, Ram Lakhan Verma, Ashok K Parihar, Prakash G Patil, Girish P Dixit
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引用次数: 0

摘要

植物育种需要进行遗传创新,以确保在波动的气候条件下作物产量的稳定。商业杂交品种的开发已被证明是一种可持续和经济的替代方案,可以在许多粮食作物中提供卓越的产量、质量和抗性。细胞质雄性不育(Cytoplasmic male不育,CMS)是一种母系遗传的不能产生功能性花粉的现象,它为有效的作物杂交制种策略提供了三系系统。CMS系统已经证明了它作为一种强大的授粉控制机制的潜力,可以支持价值数十亿美元的种子产业。在植物中,CMS是由于线粒体开放阅读框(orfs)和核编码的育性恢复(Rf)基因之间的基因组冲突而产生的,导致花异常和花粉不育。花粉不育性和育性恢复的研究有助于深入了解植物细胞质与细胞核的相互作用,阐明作物杂交育种的关键分子靶点。最近,可编程基因编辑(例如,TALEN, CRISPR-Cas)已经成为一种有前途的工具,可以在功能上验证CMS和Rf基因,并消除杂交育种对花粉供体或Rf基因的需求。现代基因组预测模型已经允许在杂交育种中建立高性能的杂种优势群体和维持长期增益的模式。本文综述了植物CMS和育性恢复背后的分子机制的最新发现。然后,我们提出了我们的观点,即不断发展的遗传技术如何有助于提高CMS-Rf遗传系统的基础知识,以生产具有高杂种优势的作物杂交种。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Past and future of cytoplasmic male sterility and heterosis breeding in crop plants.

Plant breeding needs to embrace genetic innovations to ensure stability in crop yields under fluctuating climatic conditions. Development of commercial hybrid varieties has proven to be a sustainable and economical alternative to deliver superior yield, quality and resistance with uniformity in a number of food crops. Cytoplasmic male sterility (CMS), a maternally inherited inability to produce functional pollen, facilitates a three-line system for efficient hybrid seed production strategies in crops. The CMS system has illustrated its potential as a robust pollination control mechanism to support the billion-dollar seed industry. In plants, CMS arises due to a genomic conflict between mitochondrial open reading frames (orfs) and nuclear-encoding restoration-of-fertility (Rf) genes, leading to floral abnormalities and pollen sterility. Research on pollen sterility and fertility restoration provides deeper insights into cytoplasmic-nuclear interplay in plants and elucidates key molecular targets for hybrid breeding in crops. More recently, programmable gene editing (e.g., TALEN, CRISPR-Cas) has emerged as a promising tool to functionally validate CMS and Rf genes and obviate the need for pollen donors or Rf-genes for hybrid breeding. Modern genomic prediction models have allowed establishment of high-performing heterotic groups and patterns for sustaining long-term gain in hybrid breeding. This article reviews latest discoveries elucidating the molecular mechanisms behind CMS and fertility restoration in plants. We then present our perspective on how evolving genetic technologies are contributing to advance fundamental knowledge of the CMS-Rf genetic system for producing crop hybrids with high heterosis.

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来源期刊
Plant Cell Reports
Plant Cell Reports 生物-植物科学
CiteScore
10.80
自引率
1.60%
发文量
135
审稿时长
3.2 months
期刊介绍: Plant Cell Reports publishes original, peer-reviewed articles on new advances in all aspects of plant cell science, plant genetics and molecular biology. Papers selected for publication contribute significant new advances to clearly identified technological problems and/or biological questions. The articles will prove relevant beyond the narrow topic of interest to a readership with broad scientific background. The coverage includes such topics as: - genomics and genetics - metabolism - cell biology - abiotic and biotic stress - phytopathology - gene transfer and expression - molecular pharming - systems biology - nanobiotechnology - genome editing - phenomics and synthetic biology The journal also publishes opinion papers, review and focus articles on the latest developments and new advances in research and technology in plant molecular biology and biotechnology.
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