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真菌病原体近平滑念珠菌中的替代性硫代谢。

Alternative sulphur metabolism in the fungal pathogen Candida parapsilosis.

机构信息

School of Biomolecular and Biomedical Science, Conway Institute, University College Dublin, Belfield, Dublin, Ireland.

School of Medicine, Conway Institute, University College Dublin, Belfield, Dublin, Ireland.

出版信息

Nat Commun. 2024 Oct 24;15(1):9190. doi: 10.1038/s41467-024-53442-8.

Abstract

Candida parapsilosis is an opportunistic fungal pathogen commonly isolated from the environment and associated with nosocomial infection outbreaks worldwide. We describe here the construction of a large collection of gene disruptions, greatly increasing the molecular tools available for probing gene function in C. parapsilosis. We use these to identify transcription factors associated with multiple metabolic pathways, and in particular to dissect the network regulating the assimilation of sulphur. We find that, unlike in other yeasts and filamentous fungi, the transcription factor Met4 is not the main regulator of methionine synthesis. In C. parapsilosis, assimilation of inorganic sulphur (sulphate) and synthesis of cysteine and methionine is regulated by Met28, a paralog of Met4, whereas Met4 regulates expression of a wide array of transporters and enzymes involved in the assimilation of organosulfur compounds. Analysis of transcription factor binding sites suggests that Met4 is recruited by the DNA-binding protein Met32, and Met28 is recruited by Cbf1. Despite having different target genes, Met4 and Met28 have partial functional overlap, possibly because Met4 can contribute to assimilation of inorganic sulphur in the absence of Met28.

摘要

近平滑假丝酵母是一种机会性真菌病原体,通常从环境中分离出来,并与世界各地的医院感染爆发有关。我们在这里描述了一个大型基因敲除文库的构建,这大大增加了可用于研究近平滑假丝酵母基因功能的分子工具。我们利用这些工具来识别与多种代谢途径相关的转录因子,特别是来剖析调节硫同化的网络。我们发现,与其他酵母和丝状真菌不同,转录因子 Met4 不是甲硫氨酸合成的主要调节因子。在近平滑假丝酵母中,无机硫(硫酸盐)的同化和半胱氨酸和甲硫氨酸的合成由 Met28 调节,Met28 是 Met4 的一个平行基因,而 Met4 则调节参与有机硫化合物同化的广泛的转运蛋白和酶的表达。转录因子结合位点的分析表明,Met4 被 DNA 结合蛋白 Met32 募集,而 Met28 被 Cbf1 募集。尽管具有不同的靶基因,但 Met4 和 Met28 具有部分功能重叠,可能是因为在没有 Met28 的情况下,Met4 可以有助于无机硫的同化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b20d/11502921/cb889abb4289/41467_2024_53442_Fig1_HTML.jpg

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