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数字合成拍频复用荧光寿命光谱学。

Digitally synthesized beat frequency-multiplexed fluorescence lifetime spectroscopy.

作者信息

Chan Jacky C K, Diebold Eric D, Buckley Brandon W, Mao Sien, Akbari Najva, Jalali Bahram

机构信息

Departments of Electrical Engineering, University of California, Los Angeles, CA 90095, USA.

Departments of Electrical Engineering, University of California, Los Angeles, CA 90095, USA ; Department of Bioengineering, University of California, Los Angeles, CA 90095, USA.

出版信息

Biomed Opt Express. 2014 Nov 26;5(12):4428-36. doi: 10.1364/BOE.5.004428. eCollection 2014 Dec 1.

Abstract

Frequency domain fluorescence lifetime imaging is a powerful technique that enables the observation of subtle changes in the molecular environment of a fluorescent probe. This technique works by measuring the phase delay between the optical emission and excitation of fluorophores as a function of modulation frequency. However, high-resolution measurements are time consuming, as the excitation modulation frequency must be swept, and faster low-resolution measurements at a single frequency are prone to large errors. Here, we present a low cost optical system for applications in real-time confocal lifetime imaging, which measures the phase vs. frequency spectrum without sweeping. Deemed Lifetime Imaging using Frequency-multiplexed Excitation (LIFE), this technique uses a digitally-synthesized radio frequency comb to drive an acousto-optic deflector, operated in a cat's-eye configuration, to produce a single laser excitation beam modulated at multiple beat frequencies. We demonstrate simultaneous fluorescence lifetime measurements at 10 frequencies over a bandwidth of 48 MHz, enabling high speed frequency domain lifetime analysis of single- and multi-component sample mixtures.

摘要

频域荧光寿命成像是一种强大的技术,能够观察荧光探针分子环境中的细微变化。该技术通过测量荧光团光发射与激发之间的相位延迟作为调制频率的函数来工作。然而,高分辨率测量耗时,因为必须扫描激发调制频率,并且在单个频率下更快的低分辨率测量容易产生大误差。在这里,我们提出了一种用于实时共聚焦寿命成像应用的低成本光学系统,该系统无需扫描即可测量相位与频谱。这种技术称为频分复用激发寿命成像(LIFE),它使用数字合成射频梳驱动以猫眼配置运行的声光偏转器,以产生在多个拍频下调制的单个激光激发光束。我们展示了在48 MHz带宽内的10个频率上同时进行荧光寿命测量,能够对单组分和多组分样品混合物进行高速频域寿命分析。

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