Microsphere Sensors for Charactering Stress Fields within Three-Dimensional Extracellular Matrix

Xin Ding, Moxiao Li, Bo Cheng, Zhao Wei, Yuqing Dong, Feng Xu
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引用次数: 2

Abstract

Stress in the three-dimensional extracellular matrix is one of the key cues in regulating multiscale biological processes. Thus far, noticeable progress in methods and techniques (e.g., micropipette aspiration, AFM, and molecule probes) has been made to quantify stress in cell microenvironment at different length scales. Among them, the microsphere sensor-based method (MSS-based method) has emerged as an advantageous approach over conventional techniques in quantifying stress in situ and in vivo at cellular and supra-cellular scales. This method is implemented by seven sequential steps, including fabrication, modification, characterization, cell adhesion, imaging, displacement field extraction and stress calculation. Precise control of each step and inter-tunning between steps can provide quantitative characterization of stress field. However, detailed procedural information associated with each step and process has been scattered. This review aims to provide a comprehensive overview of MSS-based method, systematically summarizing the principles and research progresses. Firstly, the basic principles are introduced, and the specific experiment and calculation processes of MSS-based method are presented in detail. Then, recent advances and applications of this method are summarized. Finally, perspectives of the limitations and development trends of MSS-based method are discussed. This specific and comprehensive review would provide a guideline for the widespread application of MSS-based method as an advantageous method for in situ and in vivo stress characterization at cellular and supra-cellular scale within three-dimensional extracellular matrix. STATEMENT OF SIGNIFICANCE: In this review, a method based on a microsphere sensor (MSS-based method) as an advantageous approach over conventional techniques in quantifying stress in situ and in vivo at cellular and supra-cellular scales is introduced and discussed. This technique is implemented by seven sequential steps, including fabrication, modification, characterization, cell junction, imaging, displacement field extraction, and stress calculation. Precise control of each step and inter-tunning between steps can provide quantitative stress field. However, detailed procedural information associated with each step has been scattered. Thus, a comprehensive review collating recent advances and perspective discussions is a necessity to introduce a better option for quantifying the stress field in biological processes at the cellular and supra-cellular scales.
三维细胞外基质中表征应力场的微球传感器
三维细胞外基质中的应激是调控多尺度生物过程的关键信号之一。到目前为止,在不同长度尺度的细胞微环境中,在方法和技术(如微吸管抽吸、原子力显微镜和分子探针)方面取得了显著进展。其中,基于微球传感器的方法(MSS-based method)已成为在细胞和超细胞尺度上对原位和体内应力进行量化的一种优于传统技术的方法。该方法通过制备、修饰、表征、细胞粘附、成像、位移场提取和应力计算七个步骤实现。每一步的精确控制和步骤之间的调谐可以提供应力场的定量表征。然而,与每个步骤和过程相关的详细程序信息是分散的。本文对基于mss的方法进行了综述,系统地总结了其原理和研究进展。首先介绍了基本原理,详细介绍了基于mss方法的具体实验和计算过程。综述了近年来该方法的研究进展和应用。最后,对基于mss方法的局限性和发展趋势进行了展望。这一具体和全面的综述将为基于mss的方法作为三维细胞外基质中细胞和超细胞尺度的原位和体内应力表征的有利方法的广泛应用提供指导。在这篇综述中,介绍和讨论了一种基于微球传感器的方法(基于mss的方法),作为一种优于传统技术的方法,在细胞和超细胞尺度上量化原位和体内应力。该技术通过七个连续步骤实现,包括制造、修饰、表征、细胞连接、成像、位移场提取和应力计算。每个步骤的精确控制和步骤之间的调整可以提供定量应力场。然而,与每个步骤相关的详细程序信息是分散的。因此,有必要对最近的进展和前景讨论进行全面的回顾,以引入一个更好的选择来量化细胞和超细胞尺度的生物过程中的应力场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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