代谢途径工程用于谷物中的干旱和/或耐热性
Songtao Liu1, Tinashe Zenda2, Zaimin Tian1
1Hebei Key Laboratory of Quality & Safety Analysis-Testing for Agro-Products and Food, Hebei North University, Zhangjiakou, China.
Frontiers in plant science
|October 9, 2023
概括
干旱和热应激严重影响谷物作物. 使用先进的生物技术,如合成生物学,操纵多个基因和代谢途径,为增强作物弹性和营养价值提供了最有效的策略.
科学领域:
- 植物科学 植物科学
- 农业科学 农业科学
- 遗传学 遗传学 是一个
背景情况:
- 干旱和热应激单独或联合 (D/+H) 显著降低谷物作物的产量和质量.
- 气候变化需要提高作物耐受性和营养价值,以实现全球粮食安全.
- 目前的单基因方法对于复杂的D/+H耐受性是不够的.
研究的目的:
- 审查D/+H压力对谷物作物的影响.
- 探索用于增强D/+H耐受性的先进分子策略.
- 突出代谢通路工程和合成生物学的潜力.
主要方法:
- 审查关于植物对D/+H压力的生理和分子反应的现有文献.
- 讨论与应激耐受性相关的代谢途径 (碳,粉,氨酸,GABA,植物激素).
- 探索现代分子生物技术工具,如CRISPR-Cas9和合成生物学 (Synbio).
主要成果:
- D/+H压力会触发植物复杂的生理和生化反应.
- 针对多个基因和代谢途径的有针对性的操纵被提出为一种优越的策略.
- 基因组编辑,代谢学和Synbio的进步为路径工程提供了强大的工具.
结论:
- 代谢途径工程,特别是使用Synbio,对于开发气候适应性,营养密度高的谷物至关重要.
- 克服路径修改中的瓶需要生物技术和数据分析的综合方法.
- 在谷物中提高D/+H耐受性对于全球粮食安全和打击营养不良至关重要.
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