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用于增强毛细管电泳检测的光热背散射干涉测量法

Photothermal Backscatter Interferometry for Enhanced Detection in Capillary Electrophoresis.

作者信息

Opallage Prabhavie M, De Silva Miyuru, Kariuki Stanslaus M, Raheel Armina A, Dunn Robert C

机构信息

Ralph N. Adams Institute for Bioanalytical Chemistry, Department of Chemistry, University of Kansas, 2030 Becker Drive, Lawrence, Kansas 66047, United States.

出版信息

Anal Chem. 2024 Aug 13;96(32):13234-13241. doi: 10.1021/acs.analchem.4c02312. Epub 2024 Jul 29.

Abstract

Refractive index (RI) detection using backscatter interferometry (BSI) enables universal detection in capillary electrophoresis (CE). BSI detection is a versatile on-capillary approach that is easily integrated with capillary or microfluidic channels, straightforward to miniaturize, and inexpensive. The focused BSI light source can also double as the excitation source for fluorescence, enabling simultaneous universal (BSI) and specific (fluorescence) signals from the same detection volume. To improve BSI detection and expand orthogonal content, we integrate photothermal absorption with BSI detection. Nonradiative relaxation of an excited analyte releases heat into the surroundings, which modifies both the local RI and conductivity (viscosity) of the analyte zone. We recently showed that the BSI signal is sensitive to both RI and conductivity, which makes photothermal absorption a promising route to signal enhancement. Here, we use coaxially delivered BSI and photothermal absorption beams to characterize BSI, photothermal BSI, and fluorescence detection using the separation of test samples. We show that photothermal absorption leads to 3 orders of magnitude improvement in BSI detection limits at the powers studied and provides new opportunities for studying binding interactions with CE.

摘要

使用背散射干涉测量法(BSI)进行折射率(RI)检测可实现毛细管电泳(CE)中的通用检测。BSI检测是一种通用的毛细管上检测方法,易于与毛细管或微流控通道集成,易于小型化且成本低廉。聚焦的BSI光源还可以兼作荧光的激发源,从而能够从同一检测体积中同时获得通用(BSI)和特定(荧光)信号。为了改进BSI检测并扩展正交内容,我们将光热吸收与BSI检测相结合。被激发分析物的非辐射弛豫会将热量释放到周围环境中,这会改变分析物区域的局部RI和电导率(粘度)。我们最近表明,BSI信号对RI和电导率都敏感,这使得光热吸收成为增强信号的一条有前景的途径。在这里,我们使用同轴传输的BSI和光热吸收光束,通过测试样品的分离来表征BSI、光热BSI和荧光检测。我们表明,在所研究的功率下,光热吸收使BSI检测限提高了3个数量级,并为研究与CE的结合相互作用提供了新机会。

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