Enhancing tiny millets through genome editing: current status and future prospects.

IF 2.1 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Genetics and Genomics Pub Date : 2025-02-21 DOI:10.1007/s00438-025-02231-z
Micheale Yifter Weldemichael, Hailay Mehari Gebremedhn
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Abstract

This study aims to address the critical need for genetic improvement of small millets, which are vital yet underutilized cereal crops cultivated in semi-arid regions of Africa and Asia. Given their high nutritional value and climate resilience, small millets hold significant potential for food security and sustainable agriculture in arid regions. However, traditional breeding methods have proven to be time-consuming and inefficient in enhancing desirable traits. This study highlights the transformative potential of genome editing technologies, particularly the CRISPR/Cas9 system, in accelerating the development of improved small millet varieties. The findings presented in this paper detail recent advancements in using CRISPR/Cas for enhancing resistance to biotic stresses, including bacterial, viral, and fungal pathogens. Additionally, we explore how genome editing can be applied to improve abiotic stress tolerance, addressing challenges such as drought, cold, heat, and herbicides in small millets. We discuss the existing challenges faced by breeders, including issues related to ploidy levels, off-target effects, and limitations in organelle genome modification. The review also suggests potential strategies for overcoming these bottlenecks, aiming to develop stress-resistant super cultivars. Overall, this paper provides an overview of the current state of genome editing research in small millets while identifying future opportunities to enhance key traits for nutrient enrichment and climate resilience, ultimately paving the way for advancements in these crucial crops.

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通过基因组编辑增强微小黍类:现状与前景。
本研究旨在解决对小小米遗传改良的迫切需求,小小米是非洲和亚洲半干旱地区种植的重要但未充分利用的谷类作物。由于其高营养价值和气候适应能力,小小米在干旱地区的粮食安全和可持续农业方面具有巨大潜力。然而,传统的育种方法在提高理想性状方面已被证明是耗时和低效的。这项研究强调了基因组编辑技术,特别是CRISPR/Cas9系统在加速小小米改良品种开发方面的变革潜力。本文的研究结果详细介绍了利用CRISPR/Cas增强生物胁迫(包括细菌、病毒和真菌病原体)抗性的最新进展。此外,我们探索了基因组编辑如何应用于提高非生物胁迫耐受性,解决小小米的干旱、寒冷、炎热和除草剂等挑战。我们讨论了育种者面临的挑战,包括倍性水平、脱靶效应和细胞器基因组修饰的局限性等问题。这篇综述还提出了克服这些瓶颈的潜在策略,旨在开发抗胁迫的超级品种。总体而言,本文概述了小小米基因组编辑研究的现状,同时确定了未来增强营养富集和气候适应能力关键性状的机会,最终为这些关键作物的进步铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Genetics and Genomics
Molecular Genetics and Genomics 生物-生化与分子生物学
CiteScore
5.10
自引率
3.20%
发文量
134
审稿时长
1 months
期刊介绍: Molecular Genetics and Genomics (MGG) publishes peer-reviewed articles covering all areas of genetics and genomics. Any approach to the study of genes and genomes is considered, be it experimental, theoretical or synthetic. MGG publishes research on all organisms that is of broad interest to those working in the fields of genetics, genomics, biology, medicine and biotechnology. The journal investigates a broad range of topics, including these from recent issues: mechanisms for extending longevity in a variety of organisms; screening of yeast metal homeostasis genes involved in mitochondrial functions; molecular mapping of cultivar-specific avirulence genes in the rice blast fungus and more.
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