烟曲霉的锌金属伴侣参与活性氧的产生和叶酸的生物合成。

IF 3.8 2区 生物学 Q2 MICROBIOLOGY
Clara Inés Sánchez, Verónica Díaz, Laura Alcázar, Jorge Amich, Laura Marín, José Antonio Calera
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引用次数: 0

摘要

丝状真菌烟曲霉具有有效的锌吸收系统,使这种真菌能够在免疫抑制患者肺部提供的锌限制环境中生存和生长。为了应对锌的缺乏,烟曲霉部署了一种稳态和适应性反应,使其能够从宿主组织中清除和吸收锌。最后,锌离子分布在细胞内,并停留在真菌蛋白质中,真菌蛋白质需要锌离子才能正常运作。人们认为,大多数需要锌的蛋白质通过与细胞锌蛋白的竞争获得锌离子,从而成为适当的金属化。然而,某些锌蛋白可能表现出固有的热力学和/或物理化学性质,阻碍它们在缺锌时与其他蛋白质竞争锌,因此,只有在特定金属伴侣的帮助下,它们才能被适当地金属化。在这项研究中,我们报道了一种全面的方法来研究烟曲霉(a . fumigatus)锌金属伴侣蛋白(MchA, MchB和MchC)在缺锌期间真菌生理和真菌发病机制中的作用。我们的数据表明,MchA可能在将锌供应给一种或多种使用四氢叶酸(THF)作为辅助因子的生物合成途径中的蛋白质中发挥作用;作为对锌缺乏的适应性反应,MchB在活性氧(ROS)的产生中是必需的,而MchC在THF的生物合成中发挥作用,最有可能是通过向GTP环水解酶i提供锌。这是第一个深入了解锌金属伴侣在真菌病原体中的作用以及如何利用它们作为抗真菌靶点的研究。烟曲霉能够抑制营养免疫,并从免疫抑制患者的肺部获取锌,使其生长并引起侵袭性肺曲霉病。为了对抗这种致命的感染,迫切需要新的抗真菌药物。在这方面,四氢叶酸(THF)的生物合成是一个有前途的目标。然而,针对这一过程的抗真菌药物尚未开发出来,可能是因为只有少数抗叶酸盐用作抗菌剂,对有限数量的真菌病原体也有活性。我们的研究可能解释了这些病原体(耶氏肺囊虫、巴西副球虫和荚膜组织浆虫)对抗叶酸药的敏感性,因为它们都缺乏mchc样蛋白。此外,我们预测通过抑制MchC活性可以增强对含MchC真菌病原体中THF生物合成的抑制作用。此外,我们的研究结果表明,在锌缺乏期间,所有细胞中ROS的过量产生可能依赖于某些锌依赖蛋白的适当金属化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zinc-metallochaperones of Aspergillus fumigatus are involved in ROS production and folate biosynthesis during zinc deficiency.

The filamentous fungus Aspergillus fumigatus is equipped with an efficient zinc uptake system that allows this fungus to survive and grow within the very zinc-limiting environment provided by the lungs of immunosuppressed patients. To deal with zinc scarcity, A. fumigatus deploys a homeostatic and adaptive response that enables it to scavenge for and uptake zinc from host tissues. Finally, zinc ions are distributed intracellularly and lodged in fungal proteins that require them for normal functioning. It is believed that most zinc-requiring proteins acquire zinc ions to become properly metalated by competition with cellular zinc proteins. However, certain zinc proteins may exhibit inherent thermodynamic and/or physicochemical properties that hamper them from competing for zinc with other proteins during zinc deficiency, such that they can only be properly metalated if aided by specific metallochaperones. In this study, we report a comprehensive approach to the role of the zinc metallochaperones of A. fumigatus (MchA, MchB, and MchC) on both fungal physiology during zinc deficiency and fungal pathogenesis. Our data suggest that MchA might play a role in supplying zinc to one or more proteins operating in a biosynthetic pathway that use tetrahydrofolate (THF) as a cofactor; MchB is required for reactive oxygen species (ROS) production as an adaptive response to zinc deficiency, whereas MchC plays a role in THF biosynthesis, most likely by supplying zinc to GTP cyclohydrolase I. This is the first study that provides insights into the role of zinc-metallochaperones in a fungal pathogen and how they could be exploited as antifungal targets.IMPORTANCEAspergillus fumigatus is able to suppress nutritional immunity and obtain zinc from the lungs of immunosuppressed patients, allowing it to grow and cause invasive pulmonary aspergillosis. To combat this lethal infection, there is an urgent need for new antifungals. In this regard, tetrahydrofolate (THF) biosynthesis is a promising target. However, antifungal drugs against this process have not been developed yet, likely because only a few antifolates used as antibacterials are also active against a limited number of fungal pathogens. Our research may provide the explanation of the sensitivity to antifolates of those pathogens (Pneumocystis jirovecii, Paracoccidioides brasiliensis, and Histoplasma capsulatum), being that all lack MchC-like proteins. Moreover, we foresee that inhibition of THF biosynthesis in MchC-bearing fungal pathogens could be enhanced by inhibiting MchC activity. Also, our findings suggest the notion that ROS overproduction typically occurring in all cells during zinc deficiency may rely on proper metalation of certain zinc-dependent proteins.

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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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