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热休克转录因子HsfA对耐热性至关重要,并调节……中的细胞壁完整性。

The Heat Shock Transcription Factor HsfA Is Essential for Thermotolerance and Regulates Cell Wall Integrity in .

作者信息

Fabri João Henrique Tadini Marilhano, Rocha Marina Campos, Fernandes Caroline Mota, Persinoti Gabriela Felix, Ries Laure Nicolas Annick, da Cunha Anderson Ferreira, Goldman Gustavo Henrique, Del Poeta Maurizio, Malavazi Iran

机构信息

Departamento de Genética e Evolução, Centro de Ciências Biológicas e da Saúde, Universidade Federal de São Carlos, São Carlos, Brazil.

Department of Microbiology and Immunology, Stony Brook University, Stony Brook, NY, United States.

出版信息

Front Microbiol. 2021 Apr 9;12:656548. doi: 10.3389/fmicb.2021.656548. eCollection 2021.

Abstract

The deleterious effects of human-induced climate change have long been predicted. However, the imminent emergence and spread of new diseases, including fungal infections through the rise of thermotolerant strains, is still neglected, despite being a potential consequence of global warming. Thermotolerance is a remarkable virulence attribute of the mold . Under high-temperature stress, opportunistic fungal pathogens deploy an adaptive mechanism known as heat shock (HS) response controlled by heat shock transcription factors (HSFs). In eukaryotes, HSFs regulate the expression of several heat shock proteins (HSPs), such as the chaperone Hsp90, which is part of the cellular program for heat adaptation and a direct target of HSFs. We recently observed that the perturbation in cell wall integrity (CWI) causes concomitant susceptibility to elevated temperatures in , although the mechanisms underpinning the HS response and CWI cross talking are not elucidated. Here, we aim at further deciphering the interplay between HS and CWI. Our results show that cell wall ultrastructure is severely modified when is exposed to HS. We identify the transcription factor HsfA as essential for viability, thermotolerance, and CWI. Indeed, HS and cell wall stress trigger the coordinated expression of both and . Furthermore, the CWI signaling pathway components PkcA and MpkA were shown to be important for HsfA and Hsp90 expression in the biofilms. Lastly, RNA-sequencing confirmed that regulates the expression of genes related to the HS response, cell wall biosynthesis and remodeling, and lipid homeostasis. Our studies collectively demonstrate the connection between the HS and the CWI pathway, with HsfA playing a crucial role in this cross-pathway regulation, reinforcing the importance of the cell wall in thermophily.

摘要

长期以来,人们一直预测人为引起的气候变化会产生有害影响。然而,新疾病的迅速出现和传播,包括耐热菌株增加导致的真菌感染,尽管是全球变暖的潜在后果,但仍然被忽视。耐热性是霉菌的一种显著毒力属性。在高温胁迫下,机会性真菌病原体部署一种称为热休克(HS)反应的适应性机制,该机制由热休克转录因子(HSF)控制。在真核生物中,HSF调节几种热休克蛋白(HSP)的表达,例如伴侣蛋白Hsp90,它是热适应细胞程序的一部分,也是HSF的直接靶点。我们最近观察到,细胞壁完整性(CWI)的扰动会导致[具体物种]对高温的易感性增加,尽管支撑HS反应和CWI相互作用的机制尚未阐明。在这里,我们旨在进一步解读HS和CWI之间的相互作用。我们的结果表明,当[具体物种]暴露于HS时,细胞壁超微结构会发生严重改变。我们确定转录因子HsfA对[具体物种]的生存能力、耐热性和CWI至关重要。事实上,HS和细胞壁应激会触发[具体基因]和[具体基因]的协同表达。此外,CWI信号通路成分PkcA和MpkA被证明对[具体物种]生物膜中HsfA和Hsp90的表达很重要。最后,RNA测序证实[具体物种]调节与HS反应、细胞壁生物合成和重塑以及脂质稳态相关的基因表达。我们的研究共同证明了HS和CWI途径之间的联系,HsfA在这种跨途径调节中起关键作用,强化了细胞壁在[具体物种]嗜热性中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d19c/8062887/c9ac9d39e519/fmicb-12-656548-g001.jpg

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