Ahmed Sulaiman, Khan Muhammad Saad Shoaib, Xue Songlei, Islam Faisal, Ikram Aziz Ul, Abdullah Muhammad, Liu Shan, Tappiban Piengtawan, Chen Jian
International Genome Center, Jiangsu University, Zhenjiang 212013, China.
Jiangsu Coastal Area Institute of Agricultural Sciences, Yancheng 224000, China.
Hortic Res. 2024 Jan 12;11(3):uhae014. doi: 10.1093/hr/uhae014. eCollection 2024 Mar.
Biotic and abiotic stresses negatively affect the yield and overall plant developmental process, thus causing substantial losses in global sweet potato production. To cope with stresses, sweet potato has evolved numerous strategies to tackle ever-changing surroundings and biological and environmental conditions. The invention of modern sequencing technology and the latest data processing and analysis instruments has paved the way to integrate biological information from different approaches and helps to understand plant system biology more precisely. The advancement in omics technologies has accumulated and provided a great source of information at all levels (genome, transcript, protein, and metabolite) under stressful conditions. These latest molecular tools facilitate us to understand better the plant's responses to stress signaling and help to process/integrate the biological information encoded within the biological system of plants. This review briefly addresses utilizing the latest omics strategies for deciphering the adaptive mechanisms for sweet potatoes' biotic and abiotic stress tolerance via functional genomics, transcriptomics, proteomics, and metabolomics. This information also provides a powerful reference to understand the complex, well-coordinated stress signaling genetic regulatory networks and better comprehend the plant phenotypic responses at the cellular/molecular level under various environmental stimuli, thus accelerating the design of stress-resilient sweet potato via the latest genetic engineering approaches.
生物和非生物胁迫对甘薯产量和整体植株发育过程产生负面影响,从而导致全球甘薯产量大幅损失。为应对胁迫,甘薯已进化出多种策略来应对不断变化的环境以及生物和环境条件。现代测序技术以及最新的数据处理和分析工具的发明,为整合来自不同方法的生物信息铺平了道路,并有助于更精确地理解植物系统生物学。组学技术的进步积累并提供了在胁迫条件下各个层面(基因组、转录本、蛋白质和代谢物)的大量信息来源。这些最新的分子工具有助于我们更好地理解植物对胁迫信号的响应,并有助于处理/整合植物生物系统中编码的生物信息。本综述简要介绍了利用最新的组学策略,通过功能基因组学、转录组学、蛋白质组学和代谢组学来解读甘薯对生物和非生物胁迫耐受性的适应性机制。这些信息也为理解复杂且协调良好的胁迫信号遗传调控网络提供了有力参考,并有助于在细胞/分子水平上更好地理解植物在各种环境刺激下的表型反应,从而通过最新的基因工程方法加速抗逆甘薯的设计。