Rhoades M
J Virol. 1977 Sep;23(3):737-50. doi: 10.1128/JVI.23.3.737-750.1977.
Upon denaturation, T5 DNA yields a large number of discrete, single-chain fragments that can be resolved by agarose gel electrophoresis. The positions of the more prominent of these fragments in the T5 duplex were determined by analyzing their sensitivity to digestion with lambda exonuclease and their distribution among EcoRI fragments of T5 DNA. These experiments also provide firm evidence concerning the polarity of the strands in T5 DNA. An analogous study was carried out on the fragments produced by treating exonuclease III-degraded T5 DNA with the single-strand-specific SI endonuclease. This procedure yielded over 40 discrete duplex fragments that could be resolved with considerable precision by agarose gel electrophoresis. The positions of most of these fragments were determined by analyzing EcoRI fragments of T5st(+) and T5st(0) DNA. Over 20 sites where single-chain interruptions can occur in T5 DNA were identified, and the distribution of interruptions within the terminal repetition was shown to be identical at both ends of the molecule. A precise value for the size of the terminal repetition in T5 DNA was obtained by analyzing SI endonuclease digests of ligase-repaired, circular T5 DNA in agarose gels. The repeated segment represented 8.3% of the T5st(+) DNA. The results of this study also provide information concerning the properties of lambda exonuclease. Hydrolysis by this enzyme was not terminated when single-chain interruptions were encountered either in the strand being degraded or in the complementary strand.
变性后,T5 DNA产生大量离散的单链片段,可通过琼脂糖凝胶电泳分离。通过分析这些片段对λ外切核酸酶消化的敏感性及其在T5 DNA的EcoRI片段中的分布,确定了T5双链体中这些较突出片段的位置。这些实验还为T5 DNA中链的极性提供了确凿证据。对用单链特异性S1核酸内切酶处理核酸外切酶III降解的T5 DNA产生的片段进行了类似研究。该方法产生了40多个离散的双链片段,可通过琼脂糖凝胶电泳相当精确地分离。通过分析T5st(+)和T5st(0) DNA的EcoRI片段,确定了这些片段中大多数的位置。鉴定出T5 DNA中超过20个可能发生单链中断的位点,并且显示分子两端末端重复序列内中断的分布是相同的。通过分析琼脂糖凝胶中连接酶修复的环状T5 DNA的S1核酸内切酶消化产物,获得了T5 DNA末端重复序列大小的精确值。重复片段占T5st(+) DNA的8.3%。本研究结果还提供了有关λ外切核酸酶性质的信息。当在被降解的链或互补链中遇到单链中断时,该酶的水解不会终止。