Optimizing Single-Cell Measurement Using Dynamic Atomic Force Microscopy

IF 3.9 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Indrianita Lionadi, Gourav Bhattacharya, Liam McLarnon, George A. Burke, Amir Farokh Payam
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Abstract

Advancements in atomic force microscopy (AFM) have established it as a versatile tool for imaging and characterizing biological samples, including living single cells in physiological conditions. Utilizing higher eigenmodes and harmonics of AFM microcantilevers offers enhanced sensitivity for measuring cells, tissues, and microorganisms. However, achieving accurate measurements in liquid environments poses challenges, particularly in detecting the cantilever's response. Optimizing the optical beam detection system is crucial to improving measurement sensitivity and image quality, especially when using higher-order vibration modes. This study addresses these challenges by optimizing the optical detection sensitivity of microcantilevers in dynamic and high-frequency AFM for single-cell measurements. This study investigates the effect of laser positioning on the cantilever's dynamic response in liquid environments and its impact on imaging resolution. Advanced image analysis techniques, such as natural image quality evaluator, cross-correlation, and sharpness, are employed to evaluate image quality. This approach provides insights and general guidelines for obtaining high-resolution images as well as image analysis approaches of biological materials in physiological conditions.

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优化单细胞测量使用动态原子力显微镜
原子力显微镜(AFM)的进步使其成为一种多功能的成像和表征生物样品的工具,包括生理条件下的活单细胞。利用AFM微悬臂的高特征模态和谐波为测量细胞、组织和微生物提供了更高的灵敏度。然而,在液体环境中实现精确测量带来了挑战,特别是在检测悬臂梁的响应方面。优化光束检测系统对于提高测量灵敏度和图像质量至关重要,特别是在使用高阶振动模式时。本研究通过优化动态和高频AFM中用于单细胞测量的微悬臂梁的光学检测灵敏度来解决这些挑战。本文研究了液体环境下激光定位对悬臂梁动态响应的影响及其对成像分辨率的影响。先进的图像分析技术,如自然图像质量评估器,相互关系和清晰度,用于评估图像质量。该方法为获得生理条件下生物材料的高分辨率图像以及图像分析方法提供了见解和一般指南。
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