Lehrstuhl für Allgemeine und Molekulare Botanik, Ruhr Universität Bochum, 44780 Bochum, Germany.
Genetics. 2014 Mar;196(3):729-44. doi: 10.1534/genetics.113.159368. Epub 2014 Jan 9.
NADPH oxidase (NOX)-derived reactive oxygen species (ROS) act as signaling determinants that induce different cellular processes. To characterize NOX function during fungal development, we utilized the genetically tractable ascomycete Sordaria macrospora. Genome sequencing of a sterile mutant led us to identify the NADPH oxidase encoding nox1 as a gene required for fruiting body formation, regular hyphal growth, and hyphal fusion. These phenotypes are shared by nor1, lacking the NOX regulator NOR1. Further phenotypic analyses revealed a high correlation between increased ROS production and hyphal fusion deficiencies in nox1 and other sterile mutants. A genome-wide transcriptional profiling analysis of mycelia and isolated protoperithecia from wild type and nox1 revealed that nox1 inactivation affects the expression of genes related to cytoskeleton remodeling, hyphal fusion, metabolism, and mitochondrial respiration. Genetic analysis of nox2, lacking the NADPH oxidase 2 gene, nor1, and transcription factor deletion mutant ste12, revealed a strict melanin-dependent ascospore germination defect, indicating a common genetic pathway for these three genes. We report that gsa3, encoding a G-protein α-subunit, and sac1, encoding cAMP-generating adenylate cyclase, act in a separate pathway during the germination process. The finding that cAMP inhibits ascospore germination in a melanin-dependent manner supports a model in which cAMP inhibits NOX2 activity, thus suggesting a link between both pathways. Our results expand the current knowledge on the role of NOX enzymes in fungal development and provide a frame to define upstream and downstream components of the NOX signaling pathways in fungi.
NADPH 氧化酶 (NOX) 衍生的活性氧 (ROS) 作为信号决定因素,诱导不同的细胞过程。为了研究 NOX 在真菌发育过程中的功能,我们利用了可遗传的子囊菌 Sordaria macrospora。一个无菌突变体的基因组测序导致我们鉴定出编码 NADPH 氧化酶的 nox1 基因是形成子实体、正常菌丝生长和菌丝融合所必需的。NOR1 缺失的 nor1 也表现出这些表型,NOR1 是 NOX 调节因子。进一步的表型分析表明,nox1 和其他无菌突变体中 ROS 产生增加与菌丝融合缺陷高度相关。野生型和 nox1 菌丝体和分离的原产孢体的全基因组转录谱分析表明,nox1 失活影响与细胞骨架重塑、菌丝融合、代谢和线粒体呼吸相关的基因表达。nox2 缺失、nor1 缺失和转录因子 ste12 缺失突变体的遗传分析表明,严格依赖黑色素的子囊孢子萌发缺陷,表明这三个基因存在共同的遗传途径。我们报告说,编码 G 蛋白 α 亚基的 gsa3 和编码生成 cAMP 的腺苷酸环化酶的 sac1 在萌发过程中独立于其他基因起作用。cAMP 以黑色素依赖的方式抑制子囊孢子萌发的发现支持了 cAMP 抑制 NOX2 活性的模型,因此表明这两种途径之间存在联系。我们的研究结果扩展了当前关于 NOX 酶在真菌发育中的作用的知识,并为定义真菌中 NOX 信号通路的上游和下游组件提供了框架。