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Recent advances in microsystem approaches for mechanical characterization of soft biological tissues

机译:软生物组织机械表征微系统方法的最新进展

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Microsystem technologies for evaluating the mechanical properties of soft biological tissues offer various capabilities relevant to medical research and clinical diagnosis of pathophysiologic conditions. Recent progress includes (1) the development of tissue-compliant designs that provide minimally invasive interfaces to soft, dynamic biological surfaces and (2) improvements in options for assessments of elastic moduli at spatial scales from cellular resolution to macroscopic areas and across depths from superficial levels to deep geometries. This review summarizes a collection of these technologies, with an emphasis on operational principles, fabrication methods, device designs, integration schemes, and measurement features. The core content begins with a discussion of platforms ranging from penetrating filamentary probes and shape-conformal sheets to stretchable arrays of ultrasonic transducers. Subsequent sections examine different techniques based on planar microelectromechanical system (MEMS) approaches for biocompatible interfaces to targets that span scales from individual cells to organs. One highlighted example includes miniature electromechanical devices that allow depth profiling of soft tissue biomechanics across a wide range of thicknesses. The clinical utility of these technologies is in monitoring changes in tissue properties and in targeting/identifying diseased tissues with distinct variations in modulus. The results suggest future opportunities in engineered systems for biomechanical sensing, spanning a broad scope of applications with relevance to many aspects of health care and biology research.
机译:用于评估软生物组织机械性能的微系统技术提供了与医学研究和病理生理状况临床诊断相关的各种功能。最近的进展包括 (1) 开发符合组织的设计,为柔软、动态的生物表面提供微创界面,以及 (2) 改进从细胞分辨率到宏观区域的空间尺度上评估弹性模量的选项,以及从表面到深层几何的深度。本文总结了这些技术的集合,重点介绍了操作原理、制造方法、器件设计、集成方案和测量特性。核心内容首先讨论了从穿透丝状探针和形状保形片到可拉伸超声换能器阵列的平台。随后的章节研究了基于平面微机电系统(MEMS)方法的不同技术,这些技术用于与从单个细胞到器官的靶标的生物相容性界面。一个突出的例子包括微型机电设备,它允许在各种厚度范围内对软组织生物力学进行深度剖析。这些技术的临床用途在于监测组织特性的变化,以及靶向/识别具有明显模量变化的病变组织。研究结果表明,用于生物力学传感的工程系统未来将有机会,涵盖广泛的应用范围,与医疗保健和生物学研究的许多方面相关。

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