一种新的基于微流体的荧光检测方法揭示了重原子对高三态量子产率荧光团光物理的影响:数值模拟研究。

IF 3.2 4区 化学 Q2 CHEMISTRY, ANALYTICAL
Luminescence Pub Date : 2025-01-01 DOI:10.1002/bio.70090
Selim Can Dirican, Barış Demirbay
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引用次数: 0

摘要

本研究介绍了一种新的基于荧光的成像技术与微流控平台相结合的想法,该技术能够精确控制荧光探针的黑暗瞬态种群,这些荧光探针以恒定的流量流过均匀的、顶部平坦的超高斯激励场。为了验证所提出的检测方法的成像能力,考虑了激光、显微镜和实验装置的流动参数,以及荧光染料的光物理模型和电子跃迁速率,进行了数值模拟。作为待评估的输出数据,对具有不同溴原子数的无溴羧基荧光素及其溴化衍生物的荧光图像数据进行了数值模拟。基于应用的激发辐照度和流量的大小,可以由用户在实验过程中手动控制,暗态种群的存在可以出现在从模拟荧光图像计算的归一化荧光强度信号中展宽,移位和衰减。随着溴化程度的增加,信号的这种变化变得更加明显,因此可以通过适当调节激光的激发功率和流量来解决重原子效应。所提出的成像方法有可能为传统的荧光方法提供宝贵的手段,并为生物医学研究开辟新的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Microfluidic-Based Fluorescence Detection Method Reveals Heavy Atom Effects on Photophysics of Fluorophores With High Triplet Quantum Yield: A Numerical Simulation Study.

The present study introduces the idea of a novel fluorescence-based imaging technique combined with a microfluidic platform that enables a precise control of dark transient state populations of fluorescent probes flowing over a uniform, top flat supergaussian excitation field with a constant flow rate. To demonstrate the imaging capability of the proposed detection method, numerical simulations have been performed by considering laser, microscope and flow parameters of experimental setup together with photophysical model and electronic transition rates of fluorescent dyes. As an output data to be assessed, fluorescence image data is simulated numerically for bromine-free carboxyfluorescein and its brominated derivatives having different numbers of bromine atoms. Based on the magnitudes of applied excitation irradiances and flow rates, which can be manually controlled by user during experiments, the presence of dark state populations can appear as broadening, shifts and decays in normalized fluorescence intensity signals that are computed from simulated fluorescence images. As such changes in signals become more pronounced upon an increase in the degree of bromination, it is elicited that heavy atom effect can be resolved by properly tuning excitation powers of laser and flow rates. Proposed imaging method has potential to provide invaluable means to conventional fluorescence methods and can open up new perspectives in biomedical research.

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来源期刊
Luminescence
Luminescence 生物-生化与分子生物学
CiteScore
5.10
自引率
13.80%
发文量
248
审稿时长
3.5 months
期刊介绍: Luminescence provides a forum for the publication of original scientific papers, short communications, technical notes and reviews on fundamental and applied aspects of all forms of luminescence, including bioluminescence, chemiluminescence, electrochemiluminescence, sonoluminescence, triboluminescence, fluorescence, time-resolved fluorescence and phosphorescence. Luminescence publishes papers on assays and analytical methods, instrumentation, mechanistic and synthetic studies, basic biology and chemistry. Luminescence also publishes details of forthcoming meetings, information on new products, and book reviews. A special feature of the Journal is surveys of the recent literature on selected topics in luminescence.
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