Wang Shuping, Zhang Yingxin, Song Qilu, Fang Zhengwu, Chen Zheng, Zhang Yamin, Zhang Lili, Zhang Lin, Niu Na, Ma Shoucai, Wang Junwei, Yao Yaqin, Hu Zanmin, Zhang Gaisheng
Key Laboratory of Crop Heterosis of Shaanxi Province, College of Agronomy, Northwest A&F University, National Yangling Agricultural Biotechnology and Breeding Center, Yangling Branch of State Wheat Improvement Centre, Wheat Breeding Engineering Research Center, Ministry of Education, Yangling, China.
Hubei Key Laboratory of Waterlogging Disaster and Agricultural Use of Wetland, College of Agronomy, Yangtze University, Jingzhou, China.
Front Plant Sci. 2018 Jan 10;8:2217. doi: 10.3389/fpls.2017.02217. eCollection 2017.
Male sterility in plants has been strongly linked to mitochondrial dysfunction. Chemical hybridization agent (CHA)-induced male sterility is an important tool in crop heterosis. Therefore, it is important to better understand the relationship between mitochondria and CHA-induced male sterility in wheat. This study reports on the impairment of mitochondrial function duo to CHA-SQ-1, which occurs by decreasing cytochrome oxidase and adenosine triphosphate synthase protein levels and theirs activities, respiratory rate, and in turn results in the inhibition of the mitochondrial electron transport chain (ETC), excessive production of reactive oxygen species (ROS) and disruption of the alternative oxidase pathway. Subsequently, excessive ROS combined with MnSOD defects results in damage to the mitochondrial membrane, followed by ROS release into the cytoplasm. The microspores underwent severe oxidative stress during pollen development. Furthermore, chronic oxidative stress, together with the overexpression of type II metacaspase, triggered premature tapetal apoptosis, which resulted in pollen abortion. Accordingly, we propose a metabolic pathway for mitochondrial-mediated male sterility in wheat, which provides information on the molecular events underlying CHA-SQ-1-induced abortion of anthers and may serve as an additional guide to the practical application of hybrid breeding.
植物雄性不育与线粒体功能障碍密切相关。化学杂交剂(CHA)诱导的雄性不育是作物杂种优势利用的一项重要工具。因此,深入了解线粒体与CHA诱导的小麦雄性不育之间的关系具有重要意义。本研究报道了CHA-SQ-1对线粒体功能的损害,其通过降低细胞色素氧化酶和三磷酸腺苷合酶的蛋白质水平及其活性、呼吸速率来实现,进而导致线粒体电子传递链(ETC)受到抑制、活性氧(ROS)过量产生以及交替氧化酶途径的破坏。随后,过量的ROS与锰超氧化物歧化酶(MnSOD)缺陷共同作用,导致线粒体膜受损,随后ROS释放到细胞质中。小孢子在花粉发育过程中遭受严重的氧化应激。此外,慢性氧化应激与II型metacaspase的过表达共同引发绒毡层过早凋亡,从而导致花粉败育。据此,我们提出了一条线粒体介导的小麦雄性不育代谢途径,该途径为CHA-SQ-1诱导花药败育的分子事件提供了信息,并可为杂交育种的实际应用提供额外指导。