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基于 Cas9/sgRNA 的基因组编辑和其他反向遗传学方法在水稻功能基因组研究中的应用。

Cas9/sgRNA-based genome editing and other reverse genetic approaches for functional genomic studies in rice.

机构信息

Department of Biotechnology, ICAR-Indian Institute of Rice Research (IIRR), India.

Department of Plant Sciences, University of Hyderabad, Hyderabad, India.

出版信息

Brief Funct Genomics. 2018 Sep 27;17(5):339-351. doi: 10.1093/bfgp/ely010.

DOI:10.1093/bfgp/ely010
PMID:29579147
Abstract

One of the important and direct ways of investigating the function of a gene is to characterize the phenotypic consequences associated with loss or gain-of-function of the corresponding gene. These mutagenesis strategies have been successfully deployed in Arabidopsis, and subsequently extended to crop species including rice. Researchers have made vast advancements in the area of rice genomics and functional genomics, as it is a diploid plant with a relatively smaller genome size unlike other cereals. The advent of rice genome research and the annotation of high-quality genome sequencing along with the developments in databases and computer searches have enabled the functional characterization of unknown genes in rice. Further, with the improvements in the efficiency of regeneration and transformation protocols, it has now become feasible to produce sizable mutant populations in indica rice varieties also. In this review, various mutagenesis methods, the current status of the mutant resources, limitations and strengths of insertional mutagenesis approaches and also results obtained with suitable screens for stress tolerance in rice are discussed. In addition, targeted genome editing using clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) or Cas9/single-guide RNA system and its potential applications in generating transgene-free rice plants through genome engineering as an efficient alternative to classical transgenic technology are also discussed.

摘要

研究基因功能的一个重要且直接的方法是研究与相应基因的功能丧失或获得相关的表型后果。这些诱变策略已在拟南芥中成功应用,随后扩展到包括水稻在内的作物物种。研究人员在水稻基因组学和功能基因组学领域取得了巨大进展,因为与其他谷物相比,水稻是一种具有相对较小基因组大小的二倍体植物。随着水稻基因组研究的出现以及高质量基因组测序的注释,以及数据库和计算机搜索的发展,使得能够对水稻中的未知基因进行功能表征。此外,随着再生和转化方案效率的提高,现在也可以在籼稻品种中产生大量的突变体群体。在这篇综述中,讨论了各种诱变方法、突变体资源的现状、插入诱变方法的局限性和优势,以及在水稻耐胁迫筛选中获得的结果。此外,还讨论了使用成簇规律间隔短回文重复(CRISPR)/CRISPR 相关蛋白 9(Cas9)或 Cas9/单指导 RNA 系统进行靶向基因组编辑,以及其通过基因组工程生成无转基因水稻植株的潜在应用,作为传统转基因技术的有效替代方法。

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