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解析烟曲霉细胞壁完整性信号:细胞壁应激传感器和相关 Rho GTPases 的鉴定和功能特征。

Deciphering cell wall integrity signalling in Aspergillus fumigatus: identification and functional characterization of cell wall stress sensors and relevant Rho GTPases.

机构信息

Max von Pettenkofer-Institut, Ludwig-Maximilians-Universität, Pettenkoferstraße 9a, Munich, Germany.

出版信息

Mol Microbiol. 2012 Feb;83(3):506-19. doi: 10.1111/j.1365-2958.2011.07946.x. Epub 2012 Jan 4.

Abstract

The fungal cell wall, a conserved and highly dynamic structure, is essential for virulence and viability of fungal pathogens and is an important antifungal drug target. The cell wall integrity (CWI) signalling pathway regulates shape and biosynthesis of the cell wall. In this work we identified, localized and functionally characterized four putative CWI stress sensors of Aspergillus fumigatus, an airborne opportunistic human pathogen and the cause of invasive aspergillosis. We show that Wsc1 is specifically required for resistance to echinocandin antifungals. MidA is specifically required for elevated temperature tolerance and resistance to the cell wall perturbing agents congo red and calcofluor white. Wsc1, Wsc3 and MidA additionally have overlapping functions and are redundantly required for radial growth and conidiation. We have also analysed the roles of three Rho GTPases that have been implicated in CWI signalling in other fungi. We show that Rho1 is essential and that conditional downregulation of rho1 or deletion of rho2 or rho4 results in severely impaired CWI. Our data indicate significant functional differences between the CWI stress sensors of yeasts and moulds.

摘要

真菌细胞壁是一种保守且高度动态的结构,对于真菌病原体的毒力和生存能力至关重要,是抗真菌药物的重要靶点。细胞壁完整性(CWI)信号通路调节细胞壁的形状和生物合成。在这项工作中,我们鉴定、定位并功能表征了烟曲霉(一种空气传播的机会性人类病原体,也是侵袭性曲霉病的病因)中四个假定的 CWI 应激传感器。我们表明 Wsc1 特异性地需要抵抗棘白菌素类抗真菌药物。MidA 特异性地需要提高对高温的耐受性和对细胞壁破坏剂刚果红和钙荧光白的抗性。Wsc1、Wsc3 和 MidA 还具有重叠功能,并且冗余地需要进行径向生长和产分生孢子。我们还分析了已被发现在其他真菌中参与 CWI 信号转导的三个 Rho GTPases 的作用。我们表明 Rho1 是必需的,并且 rho1 的条件下调或 rho2 或 rho4 的缺失导致严重的 CWI 受损。我们的数据表明,酵母和霉菌的 CWI 应激传感器之间存在显著的功能差异。

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