Kreuzer K N
J Biol Chem. 1984 Apr 25;259(8):5347-54.
The bacteriophage T4-induced type II DNA topoisomerase has been shown previously to make a reversible double strand break in DNA double helices. In addition, this enzyme is shown here to bind tightly and to cleave single-stranded DNA molecules. The evidence that the single-stranded DNA cleavage activity is intrinsic to the topoisomerase includes: 1) protein linkage to the 5' ends of the newly cleaved DNA; 2) coelution of essentially homogeneous topoisomerase and the DNA cleavage activity; 3) inhibition of both single-stranded DNA cleavage and double-stranded DNA relaxation by oxolinic acid; and 4) inhibition of duplex DNA relaxation by single-stranded DNA. The major cleavage sites on phi X174 viral DNA substrates have been mapped, and several cleavage sites analyzed to determine the exact nucleotide position of cleavage. Major cleavage sites are found very near the base of predicted hairpin helices in the single-stranded DNA substrates, suggesting that DNA secondary structure recognition is important in the cleavage reaction. On the other hand, there are also many weaker cleavage sites with no obvious sequence requirements. Many of the properties of the single-stranded DNA cleavage reaction examined here differ from those of the oxolinic acid-dependent, double-stranded DNA cleavage reaction catalyzed by the same enzyme.
噬菌体T4诱导的II型DNA拓扑异构酶先前已被证明能在DNA双螺旋中产生可逆的双链断裂。此外,本文还表明该酶能紧密结合并切割单链DNA分子。单链DNA切割活性是拓扑异构酶固有的证据包括:1)蛋白质与新切割DNA的5'端相连;2)基本均一的拓扑异构酶与DNA切割活性共洗脱;3)恶喹酸抑制单链DNA切割和双链DNA松弛;4)单链DNA抑制双链DNA松弛。已绘制了phi X174病毒DNA底物上的主要切割位点,并分析了几个切割位点以确定切割的精确核苷酸位置。在单链DNA底物中,主要切割位点位于预测发夹螺旋的基部附近,这表明DNA二级结构识别在切割反应中很重要。另一方面,也有许多较弱的切割位点,没有明显的序列要求。本文研究的单链DNA切割反应的许多特性与同一酶催化的恶喹酸依赖性双链DNA切割反应不同。