Jiangsu Key Laboratory for Microbes and Functional Genomics, Jiangsu Engineering and Technology Research Centre for Microbiology, College of Life Sciences, Nanjing Normal University, Nanjing, China.
The Key Laboratory of Biotechnology for Medicinal Plants of Jiangsu Province and School of Life Science, Jiangsu Normal University, Xuzhou, Jiangsu, China.
Appl Environ Microbiol. 2021 Oct 28;87(22):e0112021. doi: 10.1128/AEM.01120-21. Epub 2021 Sep 15.
An efficient reactive oxygen species (ROS) detoxification system is vital for the survival of the pathogenic fungus Aspergillus fumigatus within the host high-ROS environment of the host. Therefore, identifying and targeting factors essential for oxidative stress response is one approach to developing novel treatments for fungal infections. The oxidation resistance 1 (Oxr1) protein is essential for protection against oxidative stress in mammals, but its functions in pathogenic fungi remain unknown. The present study aimed to characterize the role of an Oxr1 homolog in A. fumigatus. The results indicated that the OxrA protein plays an important role in oxidative stress resistance by regulating the catalase function in A. fumigatus, and overexpression of catalase can rescue the phenotype associated with OxrA deficiency. Importantly, the deficiency of decreased the virulence of A. fumigatus and altered the host immune response. Using the Aspergillus-induced lung infection model, we demonstrated that the mutant strain induced less tissue damage along with decreased levels of lactate dehydrogenase (LDH) and albumin release. Additionally, the mutant caused inflammation at a lower degree, along with a markedly reduced influx of neutrophils to the lungs and a decreased secretion of cytokine usually associated with recruitment of neutrophils in mice. These results characterize the role of OxrA in A. fumigatus as a core regulator of oxidative stress resistance and fungal pathogenesis. Knowledge of ROS detoxification in fungal pathogens is useful in the design of new antifungal drugs and could aid in the study of oxidative stress resistance mechanisms. In this study, we demonstrate that OxrA protein localizes to the mitochondria and functions to protect against oxidative damage. We demonstrate that OxrA contributes to oxidative stress resistance by regulating catalase function, and overexpression of catalase (CatA or CatB) can rescue the phenotype that is associated with OxrA deficiency. Remarkably, a loss of OxrA attenuated the fungal virulence in a mouse model of invasive pulmonary aspergillosis and altered the host immune response. Therefore, our finding indicates that inhibition of OxrA might be an effective approach for alleviating A. fumigatus infection. The present study is, to the best of our knowledge, a pioneer in reporting the vital role of Oxr1 protein in pathogenic fungi.
一个有效的活性氧(ROS)解毒系统对于致病真菌烟曲霉在宿主高 ROS 环境中的生存至关重要。因此,鉴定和靶向氧化应激反应所必需的因素是开发新型真菌感染治疗方法的一种方法。氧化抗性 1(Oxr1)蛋白对于哺乳动物的氧化应激保护是必不可少的,但它在致病真菌中的功能尚不清楚。本研究旨在表征烟曲霉中 Oxr1 同源物的作用。结果表明,OxrA 蛋白通过调节烟曲霉中的过氧化氢酶功能在氧化应激抗性中发挥重要作用,而过表达过氧化氢酶可以挽救与 OxrA 缺乏相关的表型。重要的是,缺失降低了烟曲霉的毒力,并改变了宿主的免疫反应。使用曲霉诱导的肺感染模型,我们证明突变株引起的组织损伤较少,同时乳酸脱氢酶(LDH)和白蛋白释放水平降低。此外,突变株引起的炎症程度较低,同时向肺部的中性粒细胞流入减少,细胞因子的分泌减少,通常与招募小鼠中的中性粒细胞有关。这些结果将 OxrA 在烟曲霉中的作用描述为氧化应激抗性和真菌发病机制的核心调节剂。了解真菌病原体中的 ROS 解毒作用有助于设计新的抗真菌药物,并有助于研究氧化应激抗性机制。在这项研究中,我们证明 OxrA 蛋白定位于线粒体,并且能够保护免受氧化损伤。我们证明 OxrA 通过调节过氧化氢酶功能来抵抗氧化应激,而过表达过氧化氢酶(CatA 或 CatB)可以挽救与 OxrA 缺乏相关的表型。值得注意的是,OxrA 的缺失减弱了侵袭性肺曲霉病小鼠模型中的真菌毒力,并改变了宿主的免疫反应。因此,我们的发现表明抑制 OxrA 可能是缓解烟曲霉感染的有效方法。就我们所知,本研究是报告 Oxr1 蛋白在致病性真菌中重要作用的先驱。