College of Life Science, Henan Normal University, Xinxiang 453007, China.
Xinxiang Academy of Agricultural Sciences, Xinxiang 453000, China.
Int J Mol Sci. 2024 Aug 21;25(16):9045. doi: 10.3390/ijms25169045.
Aluminum (Al) stress is a dominant obstacle for plant growth in acidic soil, which accounts for approximately 40-50% of the world's potential arable land. The identification and characterization of Al stress response (Al-SR) genes in , rice, and other plants have deepened our understanding of Al's molecular mechanisms. However, as a crop sensitive to acidic soil, only eight Al-SR genes have been identified and functionally characterized in maize. In this review, we summarize the Al-SR genes in plants, including their classifications, subcellular localizations, expression organs, functions, and primarily molecular regulatory networks. Moreover, we predict 166 putative Al-SR genes in maize based on orthologue analyses, facilitating a comprehensive understanding of the impact of Al stress on maize growth and development. Finally, we highlight the potential applications of alleviating Al toxicity in crop production. This review deepens our understanding of the Al response in plants and provides a blueprint for alleviating Al toxicity in crop production.
铝(Al)胁迫是酸性土壤中植物生长的主要障碍,约占全球潜在耕地的 40-50%。在水稻和其他植物中,铝胁迫响应(Al-SR)基因的鉴定和特征分析加深了我们对铝分子机制的理解。然而,玉米作为一种对酸性土壤敏感的作物,仅鉴定和功能表征了 8 个 Al-SR 基因。在这篇综述中,我们总结了植物中的 Al-SR 基因,包括它们的分类、亚细胞定位、表达器官、功能以及主要的分子调控网络。此外,我们基于同源分析预测了玉米中 166 个可能的 Al-SR 基因,有助于全面了解铝胁迫对玉米生长发育的影响。最后,我们强调了缓解作物生产中铝毒性的潜在应用。该综述深化了我们对植物铝响应的理解,并为缓解作物生产中的铝毒性提供了蓝图。