Single-photon smFRET. III. Application to pulsed illumination

IF 2.4 Q3 BIOPHYSICS
Matthew Safar, A. Saurabh, Bidyut Sarkar, M. Fazel, Kunihiko Ishii, T. Tahara, Ioannis Sgouralis, S. Pressé
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引用次数: 6

Abstract

Förster resonance energy transfer (FRET) using pulsed illumination has been pivotal in leveraging lifetime information in FRET analysis. However, there remain major challenges in quantitative single photon, single molecule FRET (smFRET) data analysis under pulsed illumination including: 1) simultaneously deducing kinetics and number of system states; 2) providing uncertainties over estimates, particularly uncertainty over the number of system states; 3) taking into account detector noise sources such as crosstalk, and the instrument response function contributing to uncertainty; in addition to 4) other experimental noise sources such as background. Here, we implement the Bayesian nonparametric framework described in the first companion manuscript that addresses all aforementioned issues in smFRET data analysis specialized for the case of pulsed illumination. Furthermore, we apply our method to both synthetic as well as experimental data acquired using Holliday junctions. Why It Matters In the first companion manuscript of this series, we developed new methods to analyze noisy smFRET data. These methods eliminate the requirement of a priori specifying the dimensionality of the physical model describing a molecular complex’s kinetics. Here, we apply these methods to experimentally obtained datasets with samples illuminated by laser pulses at regular time intervals. In particular, we study conformational dynamics of Holliday junctions.
单光子smFRET。3脉冲照明的应用
Förster共振能量转移(FRET)使用脉冲照明已经关键利用寿命信息在FRET分析。然而,脉冲照明下单光子、单分子FRET (smFRET)数据的定量分析仍然存在主要挑战,包括:1)同时推断动力学和系统状态数;2)提供估计的不确定性,特别是系统状态数的不确定性;3)考虑到探测器噪声源如串扰,以及对不确定度有贡献的仪器响应函数;4)除背景等其他实验噪声源外。在这里,我们实现了第一篇论文中描述的贝叶斯非参数框架,该框架解决了脉冲照明情况下smFRET数据分析中的所有上述问题。此外,我们将我们的方法应用于使用Holliday结获得的合成和实验数据。在本系列的第一篇论文中,我们开发了新的方法来分析有噪声的smFRET数据。这些方法消除了先验地指定描述分子复合物动力学的物理模型的维度的要求。在这里,我们将这些方法应用于实验获得的数据集,这些数据集的样本以固定的时间间隔被激光脉冲照射。特别地,我们研究了Holliday结点的构象动力学。
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来源期刊
Biophysical reports
Biophysical reports Biophysics
CiteScore
2.40
自引率
0.00%
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0
审稿时长
75 days
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