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首页> 外文期刊>Biophysical Journal >Tethered fluorophore motion: studying large DNA conformational changes by single-fluorophore imaging.
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Tethered fluorophore motion: studying large DNA conformational changes by single-fluorophore imaging.

机译:束缚荧光团运动:通过单荧光团成像研究较大的DNA构象变化。

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摘要

We have previously introduced tethered fluorophore motion (TFM), a single-molecule fluorescence technique that monitors the effective length of a biopolymer such as DNA. TFM uses the same principles as tethered particle motion (TPM) but employs a single fluorophore in place of the bead, allowing TFM to be combined with existing fluorescence techniques on a standard fluorescence microscope. TFM has been previously been used to reveal the mechanism of two site-specific recombinase systems, Cre-loxP and XerCD-dif. In this work, we characterize TFM, focusing on the theoretical basis and potential applications of the technique. Since TFM is limited in observation time and photon count by photobleaching, we present a description of the sources of noise in TFM. Comparing this with Monte Carlo simulations and experimental data, we show that length changes of 100?bp of double-stranded DNA are readily distinguishable using TFM, making it comparable with TPM. We also show that the commonly recommended pixel size for single-molecule fluorescence approximately optimizes signal to noise for TFM experiments, thus enabling facile combination of TFM with other fluorescence techniques, such as F?rster resonance energy transfer (FRET). Finally, we apply TFM to determine the polymerization rate of the Klenow fragment of DNA polymerase I, and we demonstrate its combination with FRET to observe synapsis formation by Cre using excitation by a single laser. We hope that TFM will be a useful addition to the single-molecule toolkit, providing excellent insight into protein-nucleic acid interactions.
机译:我们之前已经引入了束缚荧光团运动(TFM),这是一种单分子荧光技术,用于监视生物聚合物(例如DNA)的有效长度。 TFM使用与束缚粒子运动(TPM)相同的原理,但使用单个荧光团代替珠子,从而允许TFM与标准荧光显微镜上的现有荧光技术结合使用。 TFM以前曾被用于揭示两个位点特异性重组酶系统Cre-loxP和XerCD-dif的机制。在这项工作中,我们将对TFM进行表征,重点是该技术的理论基础和潜在应用。由于TFM的观测时间和光漂白导致的光子计数受到限制,因此我们对TFM中的噪声源进行了描述。将其与蒙特卡洛模拟和实验数据相比较,我们发现使用TFM可以很容易地分辨出100 bp双链DNA的长度变化,使其与TPM相当。我们还表明,通常建议的单分子荧光像素大小可以优化TFM实验的信噪比,从而使TFM与其他荧光技术(如Fsterster共振能量转移(FRET))轻松组合。最后,我们应用TFM来确定DNA聚合酶I的Klenow片段的聚合速率,并且我们证明了它与FRET的结合使用单个激光激发通过Cre观察突触形成。我们希望TFM将成为单分子工具包的有用补充,从而提供对蛋白质-核酸相互作用的出色见解。

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