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A Mep2-dependent Transcriptional Profile Links Permease Function to Gene Expression during Pseudohyphal Growth in Saccharomyces cerevisiae

机译:Mep2依赖的转录配置文件将酿酒酵母假菌丝生长过程中通透酶功能链接到基因表达。

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The ammonium permease Mep2 is required for the induction of pseudohyphal growth, a process in Saccharomyces cerevisiae that occurs in response to nutrient limitation. Mep2 has both a transport and a regulatory function, supporting models in which Mep2 acts as a sensor of ammonium availability. Potentially similar ammonium permease-dependent regulatory cascades operate in other fungi, and they may also function in animals via the homologous Rh proteins; however, little is known about the molecular mechanisms that mediate ammonium sensing. We show that Mep2 is localized to the cell surface during pseudohyphal growth, and it is required for both filamentous and invasive growth. Analysis of site-directed Mep2 mutants in residues lining the ammonia-conducting channel reveal separation of function alleles (transport and signaling defective; transport-proficient/signaling defective), indicating transport is necessary but not sufficient to sense ammonia. Furthermore, Mep2 overexpression enhances differentiation under normally repressive conditions and induces a transcriptional profile that is consistent with activation of the mitogen-activated protein (MAP) kinase pathway. This finding is supported by epistasis analysis establishing that the known role of the MAP kinase pathway in pseudohyphal growth is linked to Mep2 function. Together, these data strengthen the model that Mep2-like proteins are nutrient sensing transceptors that govern cellular differentiation.
机译:铵通透酶Mep2是诱导假菌丝生长所必需的,假菌丝生长是酿酒酵母中因营养限制而发生的过程。 Mep2同时具有运输和调节功能,支持其中Mep2充当铵离子可用性传感器的模型。潜在的相似的铵通透酶依赖性调节级联作用在其他真菌中起作用,它们也可以通过同源的Rh蛋白在动物中起作用。然而,对于介导铵感测的分子机制知之甚少。我们显示,Mep2在假菌丝生长期间定位于细胞表面,并且对于丝状和侵袭性生长都是必需的。对氨传导通道衬里的残基中的定点Mep2突变体的分析揭示了功能等位基因的分离(运输和信号缺陷;运输有效/信号缺陷),表明运输是必需的,但不足以感测氨。此外,Mep2的过表达增强了在正常抑制条件下的分化,并诱导了与丝裂原活化蛋白(MAP)激酶途径活化一致的转录谱。这一发现得到上位分析的支持,该分析确定了MAP激酶途径在假菌丝生长中的已知作用与Mep2功能有关。总之,这些数据加强了类似Mep2的蛋白是控制细胞分化的营养感应收发器的模型。

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