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真菌生物素稳态对于巨噬细胞吞噬作用后的免疫逃逸和毒力至关重要。

Fungal biotin homeostasis is essential for immune evasion after macrophage phagocytosis and virulence.

机构信息

Department of Microbial Pathogenicity Mechanisms, Leibniz Institute for Natural Product Research and Infection Biology, Hans Knoell Institute, Jena, Germany.

Research Group Microbial Immunology, Leibniz Institute for Natural Product Research and Infection Biology, Hans Knoell Institute, Jena, Germany.

出版信息

Cell Microbiol. 2020 Jul;22(7):e13197. doi: 10.1111/cmi.13197. Epub 2020 Mar 7.

Abstract

Biotin is an important cofactor for multiple enzymes in central metabolic processes. While many bacteria and most fungi are able to synthesise biotin de novo, Candida spp. are auxotrophic for this vitamin and thus require efficient uptake systems to facilitate biotin acquisition during infection. Here we show that Candida glabrata and Candida albicans use a largely conserved system for biotin uptake and regulation, consisting of the high-affinity biotin transporter Vht1 and the transcription factor Vhr1. Both species induce expression of biotin-metabolic genes upon in vitro biotin depletion and following phagocytosis by macrophages, indicating low biotin levels in the Candida-containing phagosome. In line with this, we observed reduced intracellular proliferation of both Candida cells pre-starved of biotin and deletion mutants lacking VHR1 or VHT1 genes. VHT1 was essential for the full virulence of C. albicans during systemic mouse infections, and the lack of VHT1 led to reduced fungal burden in C. glabrata-infected brains and C. albicans-infected brains and kidneys. Together, our data suggest a critical role of Vht1-mediated biotin acquisition for C. glabrata and C. albicans during intracellular growth in macrophages and systemic infections.

摘要

生物素是中心代谢过程中多种酶的重要辅因子。虽然许多细菌和大多数真菌能够从头合成生物素,但假丝酵母属(Candida spp.)对此维生素是营养缺陷型的,因此需要有效的摄取系统来促进感染期间生物素的获取。在这里,我们表明,光滑假丝酵母(Candida glabrata)和白色假丝酵母(Candida albicans)使用一个很大程度上保守的生物素摄取和调节系统,该系统由高亲和力生物素转运蛋白 Vht1 和转录因子 Vhr1 组成。这两个物种在体外生物素耗尽和被巨噬细胞吞噬后,都会诱导生物素代谢基因的表达,表明在包含假丝酵母的吞噬体中生物素水平较低。与此一致的是,我们观察到在生物素饥饿预处理的两种假丝酵母细胞和缺失 VHR1 或 VHT1 基因的缺失突变体中,细胞内增殖减少。VHT1 对于白色假丝酵母在系统性小鼠感染中的完全毒力至关重要,而 VHT1 的缺失导致感染大脑和肾脏的光滑假丝酵母中的真菌负荷减少。总之,我们的数据表明,Vht1 介导的生物素摄取对于巨噬细胞内生长和系统性感染期间的光滑假丝酵母和白色假丝酵母至关重要。

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