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在细胞培养基中对固定小鼠结肠组织进行多频介电测绘:扫描电化学显微镜。

Multifrequency dielectric mapping of fixed mice colon tissues in cell culture media scanning electrochemical microscopy.

作者信息

Vyas Varun, Kotla Niranjan G, Rochev Yury, Poudel Anup, Biggs Manus

机构信息

CÚRAM, SFI Research Centre for Medical Devices, University of Galway, Galway, Ireland.

CNRS, LIEC, Université de Lorraine, Nancy, France.

出版信息

Front Bioeng Biotechnol. 2023 Feb 9;11:1063063. doi: 10.3389/fbioe.2023.1063063. eCollection 2023.

Abstract

Alternating current scanning electrochemical microscopy (AC-SECM) is a powerful tool for characterizing the electrochemical reactivity of surfaces. Here, perturbation in the sample is induced by the alternating current and altered local potential is measured by the SECM probe. This technique has been used to investigate many exotic a range of biological interfaces including live cells and tissues, as well as the corrosive degradation of various metallic surfaces, etc. In principle, AC-SECM imaging is derived from electrochemical impedance spectroscopy (EIS) which has been used for a century to describe interfacial and diffusive behaviour of molecules in solution or on a surface. Increasingly bioimpedance centric medical devices have become an important tool to detect evolution of tissue biochemistry. Predictive implications of measuring electrochemical changes within a tissue is one of the core concepts in developing minimally invasive and smart medical devices. In this study, cross sections of mice colon tissue were used for AC-SECM imaging. A 10 micron sized platinum probe was used for two-dimensional (2D) tan δ mapping of histological sections at a frequency of 10 kHz, Thereafter, multifrequency scans were performed at 100 Hz, 10 kHz, 300 kHz, and 900 kHz. Loss tangent (tan δ) mapping of mice colon revealed microscale regions within a tissue possessing a discrete tan δ signature. This tan map may be an immediate measure of physiological conditions in biological tissues. Multifrequency scans highlight subtle changes in protein or lipid composition as a function of frequency which was recorded as loss tangent maps. Impedance profile at different frequencies could also be used to identify optimal contrast for imaging and extracting the electrochemical signature specific for a tissue and its electrolyte.

摘要

交流扫描电化学显微镜(AC-SECM)是表征表面电化学反应性的强大工具。在此,样品中的扰动由交流电引起,而局部电位的变化则由SECM探针测量。该技术已被用于研究许多奇异的生物界面,包括活细胞和组织,以及各种金属表面的腐蚀降解等。原则上,AC-SECM成像源自电化学阻抗谱(EIS),电化学阻抗谱已被使用了一个世纪,用于描述溶液中或表面上分子的界面和扩散行为。越来越多以生物阻抗为中心的医疗设备已成为检测组织生物化学演变的重要工具。测量组织内电化学变化的预测意义是开发微创和智能医疗设备的核心概念之一。在本研究中,小鼠结肠组织的横截面用于AC-SECM成像。使用10微米大小的铂探针在10 kHz频率下对组织切片进行二维(2D)损耗角正切(tan δ)映射。此后,在100 Hz、10 kHz、300 kHz和900 kHz进行多频率扫描。小鼠结肠的损耗角正切(tan δ)映射揭示了组织内具有离散tan δ特征的微观区域。这种tan δ图可能是生物组织生理状况的直接测量指标。多频率扫描突出了蛋白质或脂质组成随频率的细微变化,这些变化记录为损耗角正切图。不同频率下的阻抗谱也可用于确定成像的最佳对比度,并提取特定于组织及其电解质的电化学特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ea7/9947134/11e5a066d805/fbioe-11-1063063-g001.jpg

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