Yamamoto Yoshiharu Y, Yoshitsugu Tomoaki, Sakurai Tetsuya, Seki Motoaki, Shinozaki Kazuo, Obokata Junichi
Center for Gene Research, Nagoya University, Nagoya, Japan.
Plant J. 2009 Oct;60(2):350-62. doi: 10.1111/j.1365-313X.2009.03958.x. Epub 2009 Jun 29.
Our limited understanding of plant promoters does not allow us to recognize any core promoter elements for the majority of plant promoters. To understand the promoter architecture of Arabidopsis, we used the combined approach of in silico detection of novel core promoter elements and large-scale determination of transcription start sites (TSSs). To this end, we developed a novel methodology for TSS identification, using a combination of the cap-trapper and massively parallel signature sequencing methods. This technique, CT-MPSS, allowed us to identify 158 237 Arabidopsis TSS tags corresponding to 38 311 TSS loci, which provides an opportunity for quantitative analysis of plant promoters. The expression characteristics of these promoters were analyzed with respect to core promoter elements detected by our in silico analyses, revealing that Arabidopsis promoters contain two main types of elements with exclusive characteristics, the TATA type and the GA type. The TATA-type promoters tend to be associated with the Y Patch and the Inr motif, and cause high expression with sharp-peak TSS clusters. By contrast, the GA type produces broad-type TSS clusters. Unlike mammalian promoters, plant promoters are not associated with CpG islands. However, plant-specific GA-type promoters share some characteristics with mammalian CpG-type promoters.
我们对植物启动子的了解有限,这使得我们无法识别大多数植物启动子的任何核心启动子元件。为了了解拟南芥的启动子结构,我们采用了计算机检测新型核心启动子元件和大规模确定转录起始位点(TSS)的联合方法。为此,我们开发了一种用于TSS鉴定的新方法,结合了帽捕获法和大规模平行签名测序法。这种技术,即CT-MPSS,使我们能够识别出158237个与38311个TSS位点相对应的拟南芥TSS标签,这为植物启动子的定量分析提供了机会。针对通过我们的计算机分析检测到的核心启动子元件,分析了这些启动子的表达特征,结果表明拟南芥启动子包含两种具有独特特征的主要元件类型,即TATA型和GA型。TATA型启动子往往与Y补丁和起始子基序相关,并导致高表达以及尖锐峰TSS簇。相比之下,GA型产生宽型TSS簇。与哺乳动物启动子不同,植物启动子与CpG岛无关。然而,植物特有的GA型启动子与哺乳动物的CpG型启动子有一些共同特征。