Riggs D L, Nomura M
Department of Biological Chemistry, University of California, Irvine 92717.
J Biol Chem. 1990 May 5;265(13):7596-603.
Specific transcription of yeast 35 S rDNA by RNA polymerase I has been demonstrated using fractionated extracts prepared from whole cells of Saccharomyces cerevisiae. Determination of the 5'-nucleotides of the in vitro transcripts indicated that two apparent start sites, corresponding to the first (initiating) and fifth nucleotide of the in vivo transcript, were utilized. Production of the 35 S rDNA transcript in this system was not inhibited by alpha-amanitin. Specific transcription of both the 35 S and 5 S rDNA sequences contained on the same template occurred simultaneously in these extracts. Sequential template competition experiments demonstrated that 35 S and 5 S rDNA transcription required different transcription factors. Specific antisera raised against the largest subunit of RNA polymerase I significantly inhibited synthesis of the 35 S rDNA transcript, but had a negligible effect on 5 S rRNA synthesis by RNA polymerase III. Additionally, this 35 S rDNA transcriptional activity was present in extracts prepared from a strain deficient in the mitochondrial RNA polymerase. Experiments using truncated rDNA templates showed that in vitro no more than 206 base pairs of the sequence upstream of the initiation site are required for maximal activity in this system; the enhancer element did not stimulate 35 S rDNA transcription.
利用从酿酒酵母全细胞制备的分级提取物,已证明RNA聚合酶I对酵母35S rDNA进行特异性转录。对体外转录本5'-核苷酸的测定表明,利用了两个明显的起始位点,分别对应于体内转录本的第一个(起始)和第五个核苷酸。该系统中35S rDNA转录本的产生不受α-鹅膏蕈碱的抑制。这些提取物中,同一模板上包含的35S和5S rDNA序列的特异性转录同时发生。连续的模板竞争实验表明,35S和5S rDNA转录需要不同的转录因子。针对RNA聚合酶I最大亚基产生的特异性抗血清显著抑制35S rDNA转录本的合成,但对RNA聚合酶III合成5S rRNA的影响可忽略不计。此外,这种35S rDNA转录活性存在于从线粒体RNA聚合酶缺陷菌株制备的提取物中。使用截短的rDNA模板进行的实验表明,在该系统中,体外最大活性所需的起始位点上游序列不超过206个碱基对;增强子元件不刺激35S rDNA转录。