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Continuous microspectrophotometric measurement of DNA polymerase activity: application to the Klenow fragment of Escherichia coli DNA polymerase I and human immunodeficiency virus type 1 reverse transcriptase.

机译:连续显微分光光度法测定DNA聚合酶活性:应用于大肠杆菌DNA聚合酶I和人类免疫缺陷病毒1型逆转录酶的Klenow片段。

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摘要

Progress of DNA- and/or RNA-directed DNA polymerization reactions can be measured continuously using circular dichroism (CD) or ultraviolet (UV) spectroscopy. In the presence of the Klenow fragment of Escherichia coli DNA polymerase I, a CD change of -0.27 +/- 0.06 millidegree at 248 nm and a UV change of -2.7 +/- 0.3 milliabsorbance units at 275 nm occur upon incorporation of 120 pmol of dTMP in a reaction volume of 120 microliters (1 microM dTMP incorporation) into a synthetic template-primer, p(dA)40-60.p(dT)20. The transcription of poly(A).p(dT)12-18 by reverse transcriptases can also be monitored using these methods. Kinetic parameters for the polymerization reaction catalyzed by the Klenow fragment were determined from initial velocity measurements using CD or UV assays and were in close agreement with those measured by the standard single point radiochemical filtration assay. The generality of optical techniques for the measurement of DNA polymerase activity was shown by the use of a partially self-complementary hairpin-shaped oligonucleotide substrate for the Klenow fragment. Addition of a single nucleotide residue under steady-state conditions to this 35-mer at a concentration of 1.5-3 microM gave an easily measurable absorbance decrease at 275 nm, and the absorbance changes upon sequential addition of nucleotide units were additive.
机译:可以使用圆二色性(CD)或紫外(UV)光谱连续测量DNA和/或RNA指导的DNA聚合反应的进程。在存在大肠杆菌DNA聚合酶I的Klenow片段的情况下,掺入120 pmol时,在248 nm处的CD变化为-0.27 +/- 0.06毫度,在275 nm处的UV变化为-2.7 +/- 0.3毫吸光度。将dTMP以120微升的反应体积(掺入1 microM dTMP)加入合成模板引物p(dA)40-60.p(dT)20中。也可以使用这些方法监测逆转录酶对poly(A).p(dT)12-18的转录。由Klenow片段催化的聚合反应的动力学参数由使用CD或UV测定的初始速度测量值确定,并且与通过标准单点放射化学过滤测定法测量的参数紧密一致。通过对克列诺片段使用部分自互补的发夹状寡核苷酸底物显示了用于测量DNA聚合酶活性的光学技术的普遍性。在稳态条件下以1.5-3 microM的浓度在此35-mer中添加单个核苷酸残基在275 nm处容易测量到吸光度降低,并且随着核苷酸单元的顺序添加,吸光度变化是累加的。

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