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Hyphal growth in Candida albicans does not require induction of hyphal-specific gene expression

机译:白色念珠菌中的菌丝生长不需要诱导菌丝特异性基因表达

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摘要

Various stimuli, including N-acetylglucosamine (GlcNAc), induce the fungal pathogen Candida albicans to switch from budding to hyphal growth. Previous studies suggested that hyphal morphogenesis is stimulated by transcriptional induction of a set of genes that includes known virulence factors. To better understand hyphal development, we examined the role of GlcNAc metabolism using a triple mutant lacking the genes required to metabolize exogenous GlcNAc (hxk1 Delta nag1 Delta dac1 Delta). Surprisingly, at low ambient pH (similar to pH 4), GlcNAc stimulated this mutant to form hyphae without obvious induction of hyphal genes. This indicates that GlcNAc can stimulate a separate signal to induce hyphae that is independent of transcriptional responses. Of interest, GlcNAc could induce the triple mutant to express hyphal genes when the medium was buffered to a higher pH (>pH 5), which normally occurs after GlcNAc catabolism. Catabolism of GlcNAc raises the ambient pH rather than acidifying it, as occurs after dextrose catabolism. This synergy between alkalinization and GlcNAc to induce hyphal genes involves the Rim101 pH-sensing pathway; GlcNAc induced rim101 Delta and dfg16 Delta mutants to form hyphae, but hyphal gene expression was partially defective. These results demonstrate that hyphal morphogenesis and gene expression can be regulated independently, which likely contributes to pathogenesis at different host sites.
机译:各种刺激(包括N-乙酰氨基葡糖(GlcNAc))可诱导真菌病原体白色念珠菌从出芽转变为菌丝生长。先前的研究表明,菌丝的形态发生是通过转录诱导一系列包含已知毒力因子的基因来刺激的。为了更好地了解菌丝的发育,我们使用了一个三重突变体,研究了GlcNAc代谢的作用,该突变体缺少代谢外源GlcNAc所需的基因(hxk1 Delta nag1 Delta dac1 Delta)。出乎意料的是,在低环境pH(类似于pH 4)下,GlcNAc刺激该突变体形成菌丝,而没有明显诱导菌丝基因。这表明GlcNAc可以刺激一个独立的信号以诱导不依赖转录反应的菌丝。有趣的是,当培养基被缓冲至更高的pH(> pH 5)时,GlcNAc可以诱导三重突变体表达菌丝基因,这通常发生在GlcNAc分解代谢之后。 GlcNAc的分解代谢会增加环境的pH值,而不是像在葡萄糖分解代谢后那样酸化它。碱化和GlcNAc诱导菌丝基因之间的这种协同作用涉及Rim101 pH敏感途径。 GlcNAc诱导rim101 Delta和dfg16 Delta突变体形成菌丝,但菌丝基因表达部分缺陷。这些结果表明,菌丝形态和基因表达可以独立调节,这可能有助于在不同宿主位点的发病机理。

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