化学刺激通过重新编程真菌病原体的转录组来覆盖温度依赖的形态程序。

IF 4.7 1区 生物学 Q1 MICROBIOLOGY
mBio Pub Date : 2025-10-08 Epub Date: 2025-09-10 DOI:10.1128/mbio.02234-25
Dror Assa, Mark Voorhies, Anita Sil
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引用次数: 0

摘要

人类真菌病原体组织浆随着温度的变化而改变其形态。在37°C时,它以芽殖酵母的形式生长,而在室温(RT)下,它转变为菌丝生长。先前的研究表明,15-20%的转录本是温度调节的,转录因子(TFs) Ryp1-4是酵母生长所必需的。然而,对菌丝程序的转录调控因子知之甚少。为了确定调控菌丝形成的tf,我们利用了菌丝生长的化学诱导剂。我们发现,添加cAMP类似物或cAMP分解抑制剂会覆盖酵母形态,在37°C下产生不适当的菌丝生长。此外,添加丁酸盐可在37°C时促进菌丝生长。对cAMP或丁酸盐反应的培养物的转录谱分析表明,一组有限的基因对cAMP有反应,而丁酸盐对一组更大的基因有失调。将这些谱与以前的温度或形态调节基因集进行比较,确定了一小组形态特异性转录本,包括9个tf。我们鉴定了三个tf, STU1, FBC1和PAC2,它们的同源物调节其他真菌的发育。我们发现,虽然只有FBC1是RT诱导成丝所必需的,但这些tf中的每一个都是RT发展的其他方面所必需的。此外,FBC1和PAC2,而不是STU1,在37°C时对cAMP的反应是丝化所必需的。这些tf的异位表达足以在37°C诱导成丝,PAC2在37°C诱导成丝依赖于STU1。综上所述,这项工作确定了形成调控回路以促进菌丝程序的促进丝的tf。真菌疾病构成了重大的疾病负担。然而,控制真菌发育的调控回路在很大程度上仍然未知。本研究使用的化学物质可以覆盖人类病原体组织浆体的正常生长形态。利用转录组学方法,我们确定了菌丝形态的新调控因子,并完善了我们对组织浆中控制形态的转录回路的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chemical stimuli override a temperature-dependent morphological program by reprogramming the transcriptome of a fungal pathogen.

The human fungal pathogen Histoplasma changes its morphology in response to temperature. At 37°C, it grows as a budding yeast, whereas at room temperature (RT), it transitions to hyphal growth. Prior work has demonstrated that 15-20% of transcripts are temperature-regulated, and that transcription factors (TFs) Ryp1-4 are necessary to establish yeast growth. However, little is known about transcriptional regulators of the hyphal program. To identify TFs that regulate filamentation, we utilize chemical inducers of hyphal growth. We show that the addition of cAMP analogs or an inhibitor of cAMP breakdown overrides yeast morphology, yielding inappropriate hyphal growth at 37°C. Additionally, butyrate supplementation triggers hyphal growth at 37°C. Transcriptional profiling of cultures filamenting in response to cAMP or butyrate reveals that a limited set of genes responds to cAMP, while butyrate dysregulates a larger set. Comparison of these profiles to previous temperature- or morphology-regulated gene sets identifies a small set of morphology-specific transcripts, including nine TFs. We characterized three TFs, STU1, FBC1, and PAC2, whose orthologs regulate development in other fungi. We found that while only FBC1 is necessary for RT-induced filamentation, each of these TFs is required for other aspects of RT development. Additionally, FBC1 and PAC2, but not STU1, are necessary for filamentation in response to cAMP at 37°C. Ectopic expression of each of these TFs is sufficient to induce filamentation at 37°C and PAC2 induction of filamentation at 37°C is dependent on STU1. Taken together, this work identifies filamentation-promoting TFs that form regulatory circuits to promote the hyphal program.IMPORTANCEFungal illnesses pose a significant disease burden. However, the regulatory circuits that govern fungal development remain largely unknown. This study utilizes chemicals that can override the normal growth morphology of the human pathogen Histoplasma. Using transcriptomic approaches, we identify novel regulators of the hyphal morphology and refine our understanding of the transcriptional circuits governing morphology in Histoplasma.

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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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