Department of Biological Sciences, and Department of Cell and Systems Biology, University of Toronto Scarborough, 1265 Military Trail, Toronto, ON M1C1A4, Canada.
Fredericton Research and Development Centre, Agriculture and Agri-Food Canada, 850 Lincoln Road, P.O. Box 20280, Fredericton, New Brunswick E3B4Z7, Canada.
Mitochondrion. 2020 May;52:197-211. doi: 10.1016/j.mito.2020.04.001. Epub 2020 Apr 9.
This review summarizes knowledge of alternative oxidase, a mitochondrial electron transport chain component that lowers the ATP yield of plant respiration. Analysis of mutant and transgenic plants has established that alternative oxidase activity supports leaf photosynthesis. The interaction of alternative oxidase respiration with chloroplast metabolism is important under conditions that challenge energy and/or carbon balance in the photosynthetic cell. Under such conditions, alternative oxidase provides an extra-chloroplastic means to optimize the status of chloroplast energy pools (ATP, NADPH) and to manage cellular carbohydrate pools in response to changing rates of carbon fixation and carbon demand for growth and maintenance. Transcriptional and post-translational mechanisms ensure that alternative oxidase can respond effectively when carbon and energy balance are being challenged. This function appears particularly significant under abiotic stress conditions such as water deficit, high salinity, or temperature extremes. Under such conditions, alternative oxidase respiration positively affects growth and stress tolerance, despite it lowering the energy yield and carbon use efficiency of respiration. In part, this beneficial effect relates to the ability of alternative oxidase respiration to prevent excessive reactive oxygen species generation in both mitochondria and chloroplasts. Recent evidence suggests that alternative oxidase respiration is an interesting target for crop improvement.
本文综述了植物线粒体电子传递链替代氧化酶的相关知识。该酶可降低呼吸作用产生的 ATP 量。对突变体和转基因植物的分析表明,替代氧化酶活性可支持叶片光合作用。在挑战光合作用细胞能量和/或碳平衡的条件下,替代氧化酶呼吸与叶绿体代谢的相互作用非常重要。在这种情况下,替代氧化酶提供了一种质外体途径,可优化叶绿体能量库(ATP、NADPH)的状态,并通过改变碳固定和生长及维持所需的碳需求来管理细胞碳水化合物库。转录和翻译后机制可确保在碳和能量平衡受到挑战时,替代氧化酶能有效响应。在干旱、高盐或极端温度等非生物胁迫条件下,该功能显得尤为重要。在这些条件下,尽管替代氧化酶呼吸降低了呼吸作用的能量产量和碳利用效率,但它仍能积极影响植物生长和胁迫耐受性。这在一定程度上与替代氧化酶呼吸能够防止线粒体和叶绿体中活性氧过度产生有关。最近的证据表明,替代氧化酶呼吸是作物改良的一个有趣目标。