甘蓝型油菜细胞质雄性不育研究综述。

IF 2.6 4区 生物学 Q2 PLANT SCIENCES
Zunaira Farooq, Ahmad Ali, Hongjie Wang, Muhammad Zeeshan Mola Bakhsh, Shipeng Li, Ying Liu, Shuo Wu, Aisha Almakas, Shouping Yang, Yi Bin
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引用次数: 0

摘要

油菜(Brassica napus)是世界上最重要的油料作物之一,为人类提供油脂产品、牲畜营养饲料和工业应用的自然资源。由于巨大的人口压力,由于其高质量的食品产品,需要更多的种子生产供人类消费。雄性不育作为一种重要的遗传资源,为杂交制种和杂种优势育种提供了便利。更好地利用男性不育需要了解其机制、作用方式和相关基因的详细特征。细胞质雄性不育(CMS)在许多植物物种中都有报道,它是一种限制花粉发育和产生的母系遗传性状。线粒体基因组参与雄性不育的诱导,而核基因组则参与雄性不育的恢复。目前,油菜籽有10多个CMS系统。Pol-CMS和Shaan2A是通过自然突变产生的自浆资源,Nap-CMS和Nsa-CMS是通过属间杂交产生的异质资源。本文对油菜雄性不育系统的类型进行了综述,并对油菜雄性不育系统的类型进行了综述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An overview of cytoplasmic male sterility in Brassica napus.

Rapeseed (Brassica napus ) is one of the world's most important oilseed crops, supplying humans with oil products, nutritious feed for livestock, and natural resources for industrial applications. Due to immense population pressure, more seed production is needed for human consumption due to its high quality of food products. As a vital genetic resource, male sterility provides ease in hybrid seed production and heterosis breeding. Better utilization of male sterility requires understanding its mechanisms, mode of action, and genes involved to be characterized in detail. Cytoplasmic male sterility (CMS) has been reported in many plant species and is a maternally inherited trait that restricts viable pollen development and production. The mitochondrial genome is involved in the induction of male sterility, while the nuclear genome plays its role in the restoration. Presently, rapeseed has more than 10 CMS systems. Pol-CMS and Shaan2A are autoplasmic resources that arose via natural mutation, while Nap-CMS and Nsa-CMS are alloplasmic and were created by intergeneric hybridisation. In this review, we discuss the types of male sterility systems in rapeseed and provide comprehensive information on CMS in rapeseed with a particular focus and emphasis the types of CMS in rapeseed.

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来源期刊
Functional Plant Biology
Functional Plant Biology 生物-植物科学
CiteScore
5.50
自引率
3.30%
发文量
156
审稿时长
1 months
期刊介绍: Functional Plant Biology (formerly known as Australian Journal of Plant Physiology) publishes papers of a broad interest that advance our knowledge on mechanisms by which plants operate and interact with environment. Of specific interest are mechanisms and signal transduction pathways by which plants adapt to extreme environmental conditions such as high and low temperatures, drought, flooding, salinity, pathogens, and other major abiotic and biotic stress factors. FPB also encourages papers on emerging concepts and new tools in plant biology, and studies on the following functional areas encompassing work from the molecular through whole plant to community scale. FPB does not publish merely phenomenological observations or findings of merely applied significance. Functional Plant Biology is published with the endorsement of the Commonwealth Scientific and Industrial Research Organisation (CSIRO) and the Australian Academy of Science. Functional Plant Biology is published in affiliation with the Federation of European Societies of Plant Biology and in Australia, is associated with the Australian Society of Plant Scientists and the New Zealand Society of Plant Biologists.
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