Lofquist A, Sharp S
J Biol Chem. 1986 Nov 5;261(31):14600-6.
Three tRNA5Asn genes have been subcloned from a tRNA gene cluster isolated from the cytogenetic locus 42A of Drosophila melanogaster. The three tRNAAsn genes, contained on plasmids pAsn6, pAsn7, and pAsn8, have identical mature tRNA coding regions but have different 5'- and 3'-flanking sequences. In vitro transcription in Drosophila Schneider S3 cell-free extracts showed the tRNAAsn genes had different transcription efficiencies. pAsn8 had a transcription efficiency of approximately 8 transcripts/gene/h, whereas pAsn6 was a less active template at 5 transcripts/gene/h. pAsn7 was the poorest template at 1.5 transcripts/gene/h. Exchanging 5'-flanking regions of the tRNAAsn genes showed that the differences in transcription efficiencies were attributable to the corresponding 5'-flanking region. Transcription of each of the tRNAAsn genes revealed a different optimum for KC1 concentration for each template which also was directly attributable to the corresponding 5'-flanking region. The "salt effect" is not related to the ability of the three tRNAAsn genes to sequester transcription factors as determined using the stable complex competition assay. Rather, this effect appears to be due to the ability of the respective 5'-flanking regions to interact with RNA polymerase III. The poorest transcription template, pAsn7, was a better competitor in the stable complex formation assay than either pAsn8 or pAsn6. We conclude that the pAsn7 stable complex binds and functionally arrests RNA polymerase III in the initiation reaction.
已从黑腹果蝇细胞遗传学位点42A分离出的tRNA基因簇中克隆出三个tRNA5Asn基因。质粒pAsn6、pAsn7和pAsn8上所含的这三个tRNAAsn基因具有相同的成熟tRNA编码区,但5'和3'侧翼序列不同。在果蝇施奈德S3无细胞提取物中进行的体外转录显示,tRNAAsn基因具有不同的转录效率。pAsn8的转录效率约为每基因每小时8个转录本,而pAsn6作为活性较低的模板,转录效率为每基因每小时5个转录本。pAsn7是最差的模板,转录效率为每基因每小时1.5个转录本。交换tRNAAsn基因的5'侧翼区域表明,转录效率的差异归因于相应的5'侧翼区域。每个tRNAAsn基因的转录显示,每个模板对KCl浓度的最佳值不同,这也直接归因于相应的5'侧翼区域。使用稳定复合物竞争试验确定,“盐效应”与三个tRNAAsn基因螯合转录因子的能力无关。相反,这种效应似乎是由于各自的5'侧翼区域与RNA聚合酶III相互作用的能力。最差的转录模板pAsn7在稳定复合物形成试验中比pAsn8或pAsn6更具竞争力。我们得出结论,pAsn7稳定复合物在起始反应中结合并功能性地阻止RNA聚合酶III。