Effects of DNA base analogs on transcription termination at the tryptophan operon attenuator of EScherichia coli.
Effects of DNA base analogs on transcription termination at the tryptophan operon attenuator of EScherichia coli.
复制标题
DNA 碱基类似物对大肠杆菌色氨酸操纵子衰减子转录终止的影响。
DOI:
10.1073/pnas.79.4.998
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发表时间:
1982
影响因子:
11.1
通讯作者:
Platt,T
中科院分区:
文献类型:
--
作者:
Farnham,PJ;Platt,T
We have devised a method to specifically incorporate deoxyribonucleotide base analogsin vitrointo either strand of the tryptophan (trp) operon attenuator region, using primed synthesis on bacteriophage M13 derivatives carrying clonedtrpattenuator DNA. We have employed these techniques to extend previous studies implicating both RNA-RNA and RNA-DNA interactions in transcription termination in an attempt to determine the nature of the contribution from the template DNA molecule in termination regions. In general, we find that the dramatic effects upon transcription termination seen with base analog incorporation into mRNA do not occur when similar analogs are incorporated into the DNA. Only the analog 2,6-diaminopurine deoxyribonucleotide triphosphate (dDapTP), which strengthens A·T or A·U base pairing, elicits a significant response: in the template DNA strand, the presence of this analog increases read-through at thetrpattenuator. The analog 5-bromouracil deoxyribonucleoside triphosphate (BrdUTP), which also strengthens pairing with its complementary base, has no detectable effect on termination when it is placed in either strand of thetrpattenuator or the mutant attenuatortrp a1419. Surprisingly, though the analog 5-iodocytosine deoxyribonucleoside triphosphate (IdCTP) does not affect termination, it has a great effect on initiation of transcription, depressingtrppromoter activity as well as stimulating transcription from other regions. These results support the postulated interaction between terminal uridines in mRNA and the template DNA strand in enhancing termination and suggest that there are no significant additional contributions from the DNA. In addition, the novel use of M13 derivatives for incorporating analogs into the DNA on a preparative scale provides a technique for introducing mutations in a general but controlled fashion as a new means for studying other regulatory regions.