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bZIP 转录因子 Rca1p 是酵母中一种新型 CO₂ 感应途径的核心调控因子。

The bZIP transcription factor Rca1p is a central regulator of a novel CO₂ sensing pathway in yeast.

机构信息

School of Biosciences, University of Kent, Canterbury, United Kingdom.

出版信息

PLoS Pathog. 2012 Jan;8(1):e1002485. doi: 10.1371/journal.ppat.1002485. Epub 2012 Jan 12.

Abstract

Like many organisms the fungal pathogen Candida albicans senses changes in the environmental CO(2) concentration. This response involves two major proteins: adenylyl cyclase and carbonic anhydrase (CA). Here, we demonstrate that CA expression is tightly controlled by the availability of CO(2) and identify the bZIP transcription factor Rca1p as the first CO(2) regulator of CA expression in yeast. We show that Rca1p upregulates CA expression during contact with mammalian phagocytes and demonstrate that serine 124 is critical for Rca1p signaling, which occurs independently of adenylyl cyclase. ChIP-chip analysis and the identification of Rca1p orthologs in the model yeast Saccharomyces cerevisiae (Cst6p) point to the broad significance of this novel pathway in fungi. By using advanced microscopy we visualize for the first time the impact of CO(2) build-up on gene expression in entire fungal populations with an exceptional level of detail. Our results present the bZIP protein Rca1p as the first fungal regulator of carbonic anhydrase, and reveal the existence of an adenylyl cyclase independent CO(2) sensing pathway in yeast. Rca1p appears to regulate cellular metabolism in response to CO(2) availability in environments as diverse as the phagosome, yeast communities or liquid culture.

摘要

与许多生物一样,真菌病原体白色念珠菌能够感知环境中二氧化碳浓度的变化。这种反应涉及两种主要蛋白质:腺苷酸环化酶和碳酸酐酶(CA)。在这里,我们证明 CA 的表达受到 CO2 可用性的严格控制,并确定 bZIP 转录因子 Rca1p 是酵母中 CA 表达的第一个 CO2 调节剂。我们表明,Rca1p 在与哺乳动物吞噬细胞接触时上调 CA 的表达,并证明丝氨酸 124 对 Rca1p 信号转导至关重要,而该信号转导独立于腺苷酸环化酶。ChIP-chip 分析和模式酵母酿酒酵母(Cst6p)中 Rca1p 同源物的鉴定表明,这种新途径在真菌中具有广泛的意义。通过使用先进的显微镜技术,我们首次以非凡的细节水平可视化了 CO2 积累对整个真菌群体基因表达的影响。我们的研究结果表明 bZIP 蛋白 Rca1p 是第一个真菌碳酸酐酶调节剂,并揭示了酵母中存在一种独立于腺苷酸环化酶的 CO2 感应途径。Rca1p 似乎在吞噬体、酵母群落或液体培养等各种环境中根据 CO2 可用性调节细胞代谢。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a13e/3257301/392bf3bd4bbc/ppat.1002485.g001.jpg

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