Li Jiye, Yang Shiyun, Wu Yujie, Wang Ruina, Liu Yu, Liu Jiacun, Ye Zi, Tang Renjie, Whiteway Malcolm, Lv Quanzhen, Yan Lan
School of Pharmacy, Naval Medical University, Shanghai 200433, China.
Institute of Medicinal Biotechnology, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100050, China.
ACS Omega. 2024 Mar 4;9(11):12478-12499. doi: 10.1021/acsomega.3c09339. eCollection 2024 Mar 19.
In the respiratory chain of the majority of aerobic organisms, the enzyme alternative oxidase (AOX) functions as the terminal oxidase and has important roles in maintaining metabolic and signaling homeostasis in mitochondria. AOX endows the respiratory system with flexibility in the coupling among the carbon metabolism pathway, electron transport chain (ETC) activity, and ATP turnover. AOX allows electrons to bypass the main cytochrome pathway to restrict the generation of reactive oxygen species (ROS). The inhibition of AOX leads to oxidative damage and contributes to the loss of adaptability and viability in some pathogenic organisms. Although AOXs have recently been identified in several organisms, crystal structures and major functions still need to be explored. Recent work on the trypanosome alternative oxidase has provided a crystal structure of an AOX protein, which contributes to the structure-activity relationship of the inhibitors of AOX. Here, we review the current knowledge on the development, structure, and properties of AOXs, as well as their roles and mechanisms in plants, animals, algae, protists, fungi, and bacteria, with a special emphasis on the development of AOX inhibitors, which will improve the understanding of respiratory regulation in many organisms and provide references for subsequent studies of AOX-targeted inhibitors.
在大多数需氧生物的呼吸链中,交替氧化酶(AOX)作为末端氧化酶发挥作用,在维持线粒体的代谢和信号稳态方面具有重要作用。AOX赋予呼吸系统在碳代谢途径、电子传递链(ETC)活性和ATP周转之间耦合的灵活性。AOX允许电子绕过主要的细胞色素途径,以限制活性氧(ROS)的产生。抑制AOX会导致氧化损伤,并导致一些致病生物失去适应性和活力。尽管最近在几种生物中发现了AOX,但晶体结构和主要功能仍有待探索。最近关于锥虫交替氧化酶的研究提供了一种AOX蛋白的晶体结构,这有助于研究AOX抑制剂的构效关系。在这里,我们综述了关于AOX的发展、结构和性质的现有知识,以及它们在植物、动物、藻类、原生生物、真菌和细菌中的作用和机制,特别强调了AOX抑制剂的发展,这将增进对许多生物呼吸调节的理解,并为后续针对AOX的抑制剂研究提供参考。