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一种新型调节因子将构巢曲霉的孢子形成与海藻糖生物合成联系起来。

A novel regulator couples sporogenesis and trehalose biogenesis in Aspergillus nidulans.

作者信息

Ni Min, Yu Jae-Hyuk

机构信息

Department of Bacteriology, University of Wisconsin, Madison, Wisconsin, United States of America.

出版信息

PLoS One. 2007 Oct 3;2(10):e970. doi: 10.1371/journal.pone.0000970.

Abstract

Trehalose is a compatible osmolyte produced by bacteria, fungi, insects and plants to protect the integrity of cells against various environmental stresses. Spores, the reproductive, survival and infection bodies of fungi require high amounts of trehalose for long-term survival. Here, via a gain-of-function genetic screen, we identify the novel regulator VosA that couples the formation of spores and focal trehalose biogenesis in the model fungus Aspergillus nidulans. The vosA gene is expressed specifically during the formation of both sexual and asexual spores (conidia). Levels of vosA mRNA and protein are high in both types of spore. The deletion of vosA results in the lack of trehalose in spores, a rapid loss of the cytoplasm, organelles and viability of spores, and a dramatic reduction in tolerance of conidia to heat and oxidative stress. Moreover, the absence of vosA causes uncontrolled activation of asexual development, whereas the enhanced expression of vosA blocks sporulation, suggesting that VosA also functions in negative-feedback regulation of sporogenesis. VosA localizes in the nucleus of mature conidia and its C-terminal region contains a potential transcription activation domain, indicating that it may function as a transcription factor primarily controlling the late process of sporulation including trehalose biogenesis. VosA is conserved in most fungi and may define a new fungus-specific transcription factor family.

摘要

海藻糖是细菌、真菌、昆虫和植物产生的一种相容性渗透剂,用于保护细胞完整性免受各种环境压力的影响。孢子是真菌的繁殖、生存和感染体,长期存活需要大量海藻糖。在此,通过功能获得性遗传筛选,我们在模式真菌构巢曲霉中鉴定出新型调节因子VosA,它将孢子形成与局部海藻糖生物合成联系起来。vosA基因在有性和无性孢子(分生孢子)形成过程中特异性表达。两种类型的孢子中vosA mRNA和蛋白质水平都很高。vosA的缺失导致孢子中海藻糖缺乏,细胞质、细胞器和孢子活力迅速丧失,分生孢子对热和氧化应激的耐受性显著降低。此外,vosA的缺失导致无性发育不受控制地激活,而vosA的增强表达则阻止孢子形成,这表明VosA在孢子形成的负反馈调节中也起作用。VosA定位于成熟分生孢子的细胞核中,其C末端区域包含一个潜在的转录激活结构域,表明它可能作为一种转录因子,主要控制包括海藻糖生物合成在内的孢子形成后期过程。VosA在大多数真菌中保守,可能定义了一个新的真菌特异性转录因子家族。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8482/1978537/7bd3d0dd6939/pone.0000970.g001.jpg

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