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使用具有30个碱基对分辨率的大肠杆菌基因组阵列进行RNA表达分析。

RNA expression analysis using a 30 base pair resolution Escherichia coli genome array.

作者信息

Selinger D W, Cheung K J, Mei R, Johansson E M, Richmond C S, Blattner F R, Lockhart D J, Church G M

机构信息

Department of Genetics, Harvard Medical School, 200 Longwood Avenue Boston, MA 02115, USA.

出版信息

Nat Biotechnol. 2000 Dec;18(12):1262-8. doi: 10.1038/82367.

DOI:10.1038/82367
PMID:11101804
Abstract

We have developed a high-resolution "genome array" for the study of gene expression and regulation in Escherichia coli. This array contains on average one 25-mer oligonucleotide probe per 30 base pairs over the entire genome, with one every 6 bases for the intergenic regions and every 60 bases for the 4,290 open reading frames (ORFs). Twofold concentration differences can be detected at levels as low as 0.2 messenger RNA (mRNA) copies per cell, and differences can be seen over a dynamic range of three orders of magnitude. In rich medium we detected transcripts for 97% and 87% of the ORFs in stationary and log phases, respectively. We found that 1, 529 transcripts were differentially expressed under these conditions. As expected, genes involved in translation were expressed at higher levels in log phase, whereas many genes known to be involved in the starvation response were expressed at higher levels in stationary phase. Many previously unrecognized growth phase-regulated genes were identified, such as a putative receptor (b0836) and a 30S ribosomal protein subunit (S22), both of which are highly upregulated in stationary phase. Transcription of between 3,000 and 4,000 predicted ORFs was observed from the antisense strand, indicating that most of the genome is transcribed at a detectable level. Examples are also presented for high-resolution array analysis of transcript start and stop sites and RNA secondary structure.

摘要

我们开发了一种高分辨率的“基因组阵列”,用于研究大肠杆菌中的基因表达和调控。该阵列在整个基因组上平均每30个碱基对包含一个25聚体寡核苷酸探针,基因间区域每6个碱基有一个探针,4290个开放阅读框(ORF)每60个碱基有一个探针。在低至每个细胞0.2个信使RNA(mRNA)拷贝的水平下就能检测到两倍的浓度差异,并且在三个数量级的动态范围内都能观察到差异。在丰富培养基中,我们分别在稳定期和对数期检测到了97%和87%的ORF的转录本。我们发现有1529个转录本在这些条件下差异表达。正如预期的那样,参与翻译的基因在对数期表达水平较高,而许多已知参与饥饿反应的基因在稳定期表达水平较高。还鉴定出了许多以前未被认识的生长阶段调控基因,例如一个假定的受体(b0836)和一个30S核糖体蛋白亚基(S22),它们在稳定期均高度上调。从反义链观察到3000至4000个预测的ORF的转录,这表明基因组的大部分都在可检测水平上转录。文中还给出了转录起始和终止位点以及RNA二级结构的高分辨率阵列分析示例。

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