Khemiri Inès, Tebbji Faiza, Sellam Adnane
CHU de Québec Research Center, Université Laval, Quebec City, QC, Canada.
Department of Microbiology, Infectious Diseases and Immunology, Faculty of Medicine, Université Laval, Quebec City, QC, Canada.
Front Microbiol. 2020 May 19;11:935. doi: 10.3389/fmicb.2020.00935. eCollection 2020.
Copper homeostasis is an important determinant for virulence of many human pathogenic fungi such as the highly prevalent yeast . However, beyond the copper transporter Ctr1, little is known regarding other genes and biological processes that are affected by copper. To gain insight into the cellular processes that are modulated by copper abundance in , we monitored the global gene expression dynamic under both copper depletion and excess using RNA-seq. Beyond copper metabolism, other different transcriptional programs related to fungal fitness such as stress responses, antifungal sensitivity, host invasion and commensalism were modulated in response to copper variations. We have also investigated the transcriptome of the mutant of the copper utilization regulator, , and identified potential direct targets of this transcription factor under copper starvation. We also showed that Mac1 was required for the invasion and adhesion to host cells and antifungal tolerance. This study provides a framework for future studies to examine the link between copper metabolism and essential functions that modulate fungal virulence and fitness inside the host.
铜稳态是许多人类致病真菌(如高度流行的酵母)毒力的重要决定因素。然而,除了铜转运蛋白Ctr1之外,对于受铜影响的其他基因和生物学过程知之甚少。为了深入了解受铜丰度调节的细胞过程,我们使用RNA测序监测了铜缺乏和过量情况下的全局基因表达动态。除了铜代谢之外,其他与真菌适应性相关的不同转录程序,如应激反应、抗真菌敏感性、宿主侵袭和共生关系,也会因铜的变化而受到调节。我们还研究了铜利用调节因子突变体的转录组,并确定了该转录因子在铜饥饿条件下的潜在直接靶点。我们还表明,Mac1是侵袭、粘附宿主细胞和抗真菌耐受性所必需的。这项研究为未来研究铜代谢与调节真菌毒力和宿主内适应性的基本功能之间的联系提供了一个框架。