小米是可持续发展的未来。

IF 5.6 2区 生物学 Q1 PLANT SCIENCES Journal of Experimental Botany Pub Date : 2024-12-26 DOI:10.1093/jxb/erae507
Arindam Ghatak, Iro Pierides, Roshan Kumar Singh, Rakesh K Srivastava, Rajeev K Varshney, Manoj Prasad, Palak Chaturvedi, Wolfram Weckwerth
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引用次数: 0

摘要

我们当前的农业体系面临着完美的风暴——气候变化、人口激增以及COVID-19等不可预测的疫情扰乱了粮食生产,尤其是对发展中国家的弱势群体。解决这些问题需要农业实践的范式转变。解决办法之一是作物生产的多样化。虽然从植物中摄取的约56%的蛋白质来自三种主要谷类作物(水稻、小麦和玉米),但未充分利用的作物,如小米、豆类和其他谷类,却被农民和研究界严重忽视。小米是最古老、用途最广的孤儿作物之一,具有快速生长、高产、耐恶劣环境、富含铁和锌等微量营养素等特点,使其具有实现农业可持续发展的吸引力。本文重点介绍谷子对农业的贡献,关注谷子遗传多样性、基因组资源、下一代组学及其在不同胁迫条件下应用的最新研究进展。此外,整合组学技术可以鉴定和开发具有高农艺价值和减缓气候变化的理想表型的小米。在这里,我们强调生物技术干预,如全基因组关联、基因组选择、基因组编辑和人工智能/机器学习,可以更有效地改善和培育小米。
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Millets for a sustainable future.

Our current agricultural system faces a perfect storm-climate change, burgeoning population, and unpredictable outbreaks like COVID-19 disrupt food production, particularly for vulnerable populations in developing countries. A paradigm shift in agriculture practices is needed to tackle these issues. One solution is the diversification of crop production. While ~56% of the protein consumed from plants stems from three major cereal crops (rice, wheat and maize), underutilized crops such as millets, legumes and other cereals are highly neglected by farmers and the research community. Millets are one of the most ancient and versatile orphan crops with attributes like fast-growing, high-yielding, withstanding harsh environments, and rich in micronutrients such as iron and zinc, making them appealing to achieve agronomic sustainability. Here, we highlight the contribution of millet to agriculture and pay attention to the latest research on the genetic diversity of millet, genomic resources, and next-generation omics and their applications under various stress conditions. Additionally, integrative omics technologies could identify and develop millets with desirable phenotypes having high agronomic value and mitigating climate change. Here, we emphasize that biotechnological interventions, such as genome-wide association, genomic selection, genome editing, and artificial intelligence/machine learning, can improve and breed millets more effectively.

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来源期刊
Journal of Experimental Botany
Journal of Experimental Botany 生物-植物科学
CiteScore
12.30
自引率
4.30%
发文量
450
审稿时长
1.9 months
期刊介绍: The Journal of Experimental Botany publishes high-quality primary research and review papers in the plant sciences. These papers cover a range of disciplines from molecular and cellular physiology and biochemistry through whole plant physiology to community physiology. Full-length primary papers should contribute to our understanding of how plants develop and function, and should provide new insights into biological processes. The journal will not publish purely descriptive papers or papers that report a well-known process in a species in which the process has not been identified previously. Articles should be concise and generally limited to 10 printed pages.
期刊最新文献
Conserved and novel roles of the bHLH transcription factor SPATULA in tomato. Long-day induced flowering requires DNA hypermethylation in orchardgrass. DNA methylation dynamics in the shoot apical meristem. Nitric oxide as integral element in priming- induced tolerance and plant stress memory. Tissue-specific responses of the central carbon metabolism in tomato fruit to low oxygen stress.
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