Sun Shiyu, Wang Duoxiang, Li Jingbin, Lei Yaqi, Li Gang, Cai WenGuo, Zhao Xiangxiang, Liang Wanqi, Zhang Dabing
Joint International Research Laboratory of Metabolic and Developmental Sciences, State Key Laboratory of Hybrid Rice, School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai, China.
School of Agriculture, Food and Wine, University of Adelaide, Urrbrae, SA, Australia.
Front Plant Sci. 2021 Feb 26;12:621561. doi: 10.3389/fpls.2021.621561. eCollection 2021.
Environmental conditions, such as photoperiod and temperature, can affect male fertility in plants. While this feature is heavily exploited in rice to generate male-sterile lines for hybrid breeding, the underlying molecular mechanisms remain largely unknown. In this study, we use a transcriptomics approach to identify key genes and regulatory networks affecting pollen maturation in rice anthers in response to different day lengths. A total of 11,726 differentially expressed genes (DEGs) were revealed, of which 177 were differentially expressed at six time points over a 24-h period. GO enrichment analysis revealed that genes at all time points were enriched in transport, carbohydrate, and lipid metabolic processes, and signaling pathways, particularly phytohormone signaling. In addition, co-expression network analysis revealed four modules strongly correlated with photoperiod. Within these four modules, 496 hub genes were identified with a high degree of connectivity to other photoperiod-sensitive DEGs, including two previously reported photoperiod- and temperature-sensitive genes affecting male fertility, r and , respectively. This work provides a new understanding on photoperiod-sensitive pollen development in rice, and our gene expression data will provide a new, comprehensive resource to identify new environmentally sensitive genes regulating male fertility for use in crop improvement.
环境条件,如光周期和温度,会影响植物的雄性育性。虽然这一特性在水稻中被大量用于培育杂交育种的雄性不育系,但其潜在的分子机制仍 largely unknown。在本研究中,我们采用转录组学方法来鉴定响应不同日长影响水稻花药中花粉成熟的关键基因和调控网络。共揭示了11726个差异表达基因(DEG),其中177个在24小时内的六个时间点差异表达。GO富集分析表明,所有时间点的基因都富集在转运、碳水化合物和脂质代谢过程以及信号通路中,特别是植物激素信号通路。此外,共表达网络分析揭示了与光周期强烈相关的四个模块。在这四个模块中,鉴定出496个中心基因,它们与其他光周期敏感DEG具有高度连接性,包括两个先前报道的分别影响雄性育性的光周期和温度敏感基因r和。这项工作为水稻光周期敏感花粉发育提供了新的认识,我们的基因表达数据将提供一个新的、全面的资源,以鉴定调控雄性育性的新的环境敏感基因用于作物改良。