Department of Plant Pathology, The Ohio State University, Columbus, Ohio, USA.
PLoS Pathog. 2010 May 20;6(5):e1000909. doi: 10.1371/journal.ppat.1000909.
Significant progress has been made in defining the central signaling networks in many organisms, but collectively we know little about the downstream targets of these networks and the genes they regulate. To reconstruct the regulatory circuit of calcineurin signal transduction via MoCRZ1, a Magnaporthe oryzae C2H2 transcription factor activated by calcineurin dephosphorylation, we used a combined approach of chromatin immunoprecipitation - chip (ChIP-chip), coupled with microarray expression studies. One hundred forty genes were identified as being both a direct target of MoCRZ1 and having expression concurrently differentially regulated in a calcium/calcineurin/MoCRZ1 dependent manner. Highly represented were genes involved in calcium signaling, small molecule transport, ion homeostasis, cell wall synthesis/maintenance, and fungal virulence. Of particular note, genes involved in vesicle mediated secretion necessary for establishing host associations, were also found. MoCRZ1 itself was a target, suggesting a previously unreported autoregulation control point. The data also implicated a previously unreported feedback regulation mechanism of calcineurin activity. We propose that calcium/calcineurin regulated signal transduction circuits controlling development and pathogenicity manifest through multiple layers of regulation. We present results from the ChIP-chip and expression analysis along with a refined model of calcium/calcineurin signaling in this important plant pathogen.
在许多生物体中,中央信号网络的定义已经取得了重大进展,但我们总体上对这些网络的下游靶标以及它们所调节的基因知之甚少。为了通过钙调神经磷酸酶去磷酸化激活的 Magnaporthe oryzae C2H2 转录因子 MoCRZ1 来重建钙调神经磷酸酶信号转导的调控回路,我们采用了染色质免疫沉淀 - 芯片 (ChIP-chip) 与微阵列表达研究相结合的方法。鉴定出 140 个基因既是 MoCRZ1 的直接靶标,又是钙调神经磷酸酶/MoCRZ1 依赖性方式同时差异调控表达的基因。高度代表性的是参与钙信号转导、小分子运输、离子稳态、细胞壁合成/维持和真菌毒力的基因。值得注意的是,还发现了与建立宿主关联所需的囊泡介导分泌有关的基因。MoCRZ1 本身就是一个靶标,表明存在以前未报道的自调控控制点。该数据还暗示了钙调神经磷酸酶活性的先前未报道的反馈调节机制。我们提出,控制发育和致病性的钙/钙调神经磷酸酶调节信号转导回路通过多层调节来表现。我们展示了 ChIP-chip 和表达分析的结果,并提出了这个重要植物病原体中钙/钙调神经磷酸酶信号转导的改进模型。