Cold Spring Harbor Laboratory, Cold Spring Harbor, New York 11724, USA.
Plant Physiol. 2010 Nov;154(3):1024-39. doi: 10.1104/pp.110.159673. Epub 2010 Sep 10.
Genome-wide expression signatures detect specific perturbations in developmental programs and contribute to functional resolution of key regulatory networks. In maize (Zea mays) inflorescences, mutations in the RAMOSA (RA) genes affect the determinacy of axillary meristems and thus alter branching patterns, an important agronomic trait. In this work, we developed and tested a framework for analysis of tag-based, digital gene expression profiles using Illumina's high-throughput sequencing technology and the newly assembled B73 maize reference genome. We also used a mutation in the RA3 gene to identify putative expression signatures specific to stem cell fate in axillary meristem determinacy. The RA3 gene encodes a trehalose-6-phosphate phosphatase and may act at the interface between developmental and metabolic processes. Deep sequencing of digital gene expression libraries, representing three biological replicate ear samples from wild-type and ra3 plants, generated 27 million 20- to 21-nucleotide reads with frequencies spanning 4 orders of magnitude. Unique sequence tags were anchored to 3'-ends of individual transcripts by DpnII and NlaIII digests, which were multiplexed during sequencing. We mapped 86% of nonredundant signature tags to the maize genome, which associated with 37,117 gene models and unannotated regions of expression. In total, 66% of genes were detected by at least nine reads in immature maize ears. We used comparative genomics to leverage existing information from Arabidopsis (Arabidopsis thaliana) and rice (Oryza sativa) in functional analyses of differentially expressed maize genes. Results from this study provide a basis for the analysis of short-read expression data in maize and resolved specific expression signatures that will help define mechanisms of action for the RA3 gene.
全基因组表达谱可检测到发育程序中的特定扰动,并有助于关键调控网络的功能解析。在玉米(Zea mays)花序中,RAMOSA(RA)基因的突变影响腋芽分生组织的确定性,从而改变分枝模式,这是一个重要的农艺性状。在这项工作中,我们开发并测试了一种使用 Illumina 高通量测序技术和新组装的 B73 玉米参考基因组分析基于标签的数字基因表达谱的框架。我们还使用 RA3 基因的突变来鉴定与腋芽分生组织确定性中的干细胞命运相关的假定表达特征。RA3 基因编码海藻糖-6-磷酸磷酸酶,可能在发育和代谢过程之间的界面上起作用。来自野生型和 ra3 植物的三个生物学重复耳样本的数字基因表达文库的深度测序产生了 2700 万个 20-21 个核苷酸的读取,频率跨越 4 个数量级。独特的序列标签通过 DpnII 和 NlaIII 消化物锚定到单个转录物的 3'末端,在测序过程中进行了多重化。我们将 86%的非冗余特征标签映射到玉米基因组上,这些标签与 37117 个基因模型和未注释的表达区域相关联。总共,66%的基因在未成熟的玉米耳朵中至少被 9 个读取检测到。我们使用比较基因组学来利用拟南芥(Arabidopsis thaliana)和水稻(Oryza sativa)中的现有信息,对差异表达的玉米基因进行功能分析。这项研究的结果为玉米短读表达数据的分析提供了基础,并确定了特定的表达特征,这将有助于定义 RA3 基因的作用机制。