Islas A L, Hanawalt P C
Department of Biological Sciences, Stanford University, California 94305-5020.
Cancer Res. 1995 Jan 15;55(2):336-41.
In order to better understand the role of transcription in cellular processing of damage in specific DNA sequences, we have used an in vitro differentiation system to modulate the activity of the MYC gene. When human HL60 promyelocytic cells differentiate in vitro, the transcriptional activity of the MYC gene is down-regulated. We have shown that in the expressed MYC gene, 56% of UV-induced cyclobutane pyrimidine dimers (CPDs) are removed within 18 h and the transcribed strand is selectively repaired. However, late in differentiation, when the MYC gene is maximally down-regulated, only 15% of the CPDs are removed within the same period. During early differentiation, the MYC gene is regulated by a block to transcription elongation at the 5' end of the first intron. Our results reveal no significant difference in the rate of CPD removal between the restriction fragments upstream and downstream of this elongation block. Furthermore, both strands of each fragment exhibit similar repair characteristics. In contrast, the constitutively expressed FMS gene exhibits proficient removal of CPD in both the differentiated and undifferentiated cells. Furthermore, the repair appears to be more proficient at the 5' end (exon 1) than in the 3' end of the gene about 35 kilobases downstream from exon 1. Since efficient repair of the active FMS gene is maintained in the differentiated cells the loss of repair competence seen in MYC is more likely associated with its reduced transcriptional activity than with a decrease in the overall repair capacity of the terminally differentiated cells.
为了更好地理解转录在特定DNA序列损伤的细胞处理过程中的作用,我们使用了一种体外分化系统来调节MYC基因的活性。当人HL60早幼粒细胞在体外分化时,MYC基因的转录活性会下调。我们已经表明,在表达的MYC基因中,56%的紫外线诱导的环丁烷嘧啶二聚体(CPDs)在18小时内被去除,并且转录链被选择性修复。然而,在分化后期,当MYC基因被最大程度下调时,在同一时期内只有15%的CPDs被去除。在早期分化过程中,MYC基因受到第一个内含子5'端转录延伸阻滞的调控。我们的结果显示,在这个延伸阻滞的上游和下游的限制性片段之间,CPD去除率没有显著差异。此外,每个片段的两条链都表现出相似的修复特征。相比之下,组成型表达的FMS基因在分化和未分化细胞中都能有效去除CPD。此外,修复在基因的5'端(外显子1)似乎比在距离外显子1下游约35千碱基的基因3'端更有效。由于在分化细胞中活性FMS基因的有效修复得以维持,MYC中观察到的修复能力丧失更可能与其转录活性降低有关,而不是与终末分化细胞的整体修复能力下降有关。