Institute of Plant and Microbial Biology, Academia Sinica, 115 Taipei, Taiwan.
Plant Physiol. 2011 Mar;155(3):1383-402. doi: 10.1104/pp.110.166520. Epub 2011 Jan 19.
Phosphate (Pi) deficiency triggers the differential expression of a large set of genes, which communally adapt the plant to low Pi bioavailability. To infer functional modules in early transcriptional responses to Pi deficiency, we conducted time-course microarray experiments and subsequent coexpression-based clustering of Pi-responsive genes by pairwise comparison of genes against a customized database. Three major clusters, enriched in genes putatively functioning in transcriptional regulation, root hair formation, and developmental adaptations, were predicted from this analysis. Validation of gene expression by quantitative reverse transcription-PCR revealed that transcripts from randomly selected genes were robustly induced within the first hour after transfer to Pi-deplete medium. Pectin-related processes were among the earliest and most robust responses to Pi deficiency, indicating that cell wall alterations are critical in the early transcriptional response to Pi deficiency. Phenotypical analysis of homozygous mutants defective in the expression of genes from the root hair cluster revealed eight novel genes involved in Pi deficiency-induced root hair elongation. The plants responded rapidly to Pi deficiency by the induction of a subset of transcription factors, followed by a repression of genes involved in cell wall alterations. The combined results provide a novel, integrated view at a systems level of the root responses that acclimate Arabidopsis (Arabidopsis thaliana) to suboptimal Pi levels.
磷酸盐(Pi)缺乏会触发大量基因的差异表达,这些基因共同使植物适应低 Pi 生物利用度。为了推断对 Pi 缺乏的早期转录反应中的功能模块,我们进行了时间过程微阵列实验,并通过将基因与自定义数据库进行两两比较,对 Pi 响应基因进行基于共表达的聚类。从这项分析中预测出三个主要的聚类,它们富含假定在转录调控、根毛形成和发育适应中起作用的基因。通过定量反转录 PCR 对基因表达的验证表明,在转移到 Pi 缺乏培养基后的第一个小时内,随机选择的基因的转录物被强烈诱导。果胶相关过程是对 Pi 缺乏的最早和最强烈的反应之一,这表明细胞壁的改变在 Pi 缺乏的早期转录反应中是至关重要的。来自根毛簇的基因表达缺陷的纯合突变体的表型分析揭示了 8 个新的基因参与 Pi 缺乏诱导的根毛伸长。植物通过诱导一组转录因子对 Pi 缺乏迅速作出反应,随后抑制参与细胞壁改变的基因。综合结果提供了一个新的、综合的系统水平的根反应视图,使拟南芥(Arabidopsis thaliana)适应亚最佳 Pi 水平。