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作物生物强化中的遗传和基因组干预:谷子实例

Genetic and genomic interventions in crop biofortification: Examples in millets.

作者信息

Kudapa Himabindu, Barmukh Rutwik, Vemuri Hindu, Gorthy Sunita, Pinnamaneni Rajasekhar, Vetriventhan Mani, Srivastava Rakesh K, Joshi Priyanka, Habyarimana Ephrem, Gupta S K, Govindaraj Mahalingam

机构信息

International Crops Research Institute for the Semi-Arid Tropics, Patancheru, Telangana, India.

International Maize and Wheat Improvement Center (CIMMYT), Patancheru, Telangana, India.

出版信息

Front Plant Sci. 2023 Mar 6;14:1123655. doi: 10.3389/fpls.2023.1123655. eCollection 2023.

Abstract

Micronutrient malnutrition is a serious threat to the developing world's human population, which largely relies on a cereal-based diet that lacks diversity and micronutrients. Besides major cereals, millets represent the key sources of energy, protein, vitamins, and minerals for people residing in the dryland tropics and drought-prone areas of South Asia and sub-Saharan Africa. Millets serve as multi-purpose crops with several salient traits including tolerance to abiotic stresses, adaptation to diverse agro-ecologies, higher productivity in nutrient-poor soils, and rich nutritional characteristics. Considering the potential of millets in empowering smallholder farmers, adapting to changing climate, and transforming agrifood systems, the year 2023 has been declared by the United Nations as the International Year of Millets. In this review, we highlight recent genetic and genomic innovations that can be explored to enhance grain micronutrient density in millets. We summarize the advances made in high-throughput phenotyping to accurately measure grain micronutrient content in cereals. We shed light on genetic diversity in millet germplasm collections existing globally that can be exploited for developing nutrient-dense and high-yielding varieties to address food and nutritional security. Furthermore, we describe the progress made in the fields of genomics, proteomics, metabolomics, and phenomics with an emphasis on enhancing the grain nutritional content for designing competitive biofortified varieties for the future. Considering the close genetic-relatedness within cereals, upcoming research should focus on identifying the genetic and genomic basis of nutritional traits in millets and introgressing them into major cereals through integrated omics approaches. Recent breakthroughs in the genome editing toolbox would be crucial for mainstreaming biofortification in millets.

摘要

微量营养素营养不良对发展中世界的人口构成严重威胁,这些地区的人口主要依赖缺乏多样性和微量营养素的谷类为主的饮食。除了主要谷物外,小米是居住在南亚和撒哈拉以南非洲干旱热带地区和易旱地区人们的关键能量、蛋白质、维生素和矿物质来源。小米是一种多用途作物,具有几个显著特性,包括对非生物胁迫的耐受性、对多种农业生态的适应性、在贫瘠土壤中更高的生产力以及丰富的营养特性。鉴于小米在增强小农户能力、适应气候变化和转变农业食品系统方面的潜力,联合国宣布2023年为国际小米年。在本综述中,我们重点介绍了可用于提高小米籽粒微量营养素密度的最新遗传和基因组创新。我们总结了高通量表型分析在准确测量谷物籽粒微量营养素含量方面取得的进展。我们揭示了全球现有小米种质资源库中的遗传多样性,可利用这些多样性培育营养丰富和高产的品种,以解决粮食和营养安全问题。此外,我们描述了基因组学、蛋白质组学、代谢组学和表型组学领域取得的进展,重点是提高籽粒营养含量,以便为未来设计有竞争力的生物强化品种。鉴于谷物之间密切的遗传相关性,未来的研究应侧重于确定小米营养性状的遗传和基因组基础,并通过综合组学方法将这些性状导入主要谷物中。基因组编辑工具箱的最新突破对于将生物强化纳入小米主流至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3030/10025513/9ae7134d7ac8/fpls-14-1123655-g001.jpg

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