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Evaluation of Formalin Fixation for Tissue Biopsies Using Shear Wave Laser Speckle Imaging System

机译:剪切波激光散斑成像系统评估福尔马林组织活检固定率

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摘要

Chemical fixation is the slowest and often the most uncontrolled step in the multi-step process of preparing tissue for histopathology. In order to reduce the time from taking a core needle biopsy to making a diagnosis, a new approach is proposed that optically monitors the common formalin fixation process. A low-cost and highly-sensitive laser speckle imaging technique is developed to measure shear wave velocity in a biospecimen as small as 0.5 mm in thickness submerged in millifluidic channels. Shear wave velocity, which is the indicator of tissue mechanical property and induced by piezoelectric-actuation, was monitored using gelatin phantom and chicken breast during fixation, as well as post-fixed liver and colon tissues from human. Fixation levels in terms of shear wave velocity increased by approximately 271.0% and 130.8% in gelatin phantom and chicken breast, respectively, before reaching the plateaus at 10.91 m/s and 7.88 m/s. Within these small specimens, the plateaus levels and times varied with location of measurement, and between gelatin and chicken breast. This optical-based approach demonstrates the feasibility of fine-tuning preanalytical variables, such as fixation time, for a rapid and accurate histopathological evaluation; provides a quality metric during the tissue preparation protocol performed in most pathology labs; and introduces the millifluidic chamber that can be engineered to be a future disposable device that automates biopsy processing and imaging.
机译:化学固定是准备组织病理学的多步骤过程中最慢且通常是最不受控制的步骤。为了减少从进行核心针穿刺活检到做出诊断的时间,提出了一种新的方法来光学监视普通的福尔马林固定过程。开发了一种低成本,高度灵敏的激光散斑成像技术,以测量浸没在微流体通道中的厚度仅为0.5 mm的生物样品中的剪切波速度。剪切波速度是组织力学性质的指标,是压电驱动的结果,在固定过程中使用明胶体模和鸡胸肉以及人体的固定后肝和结肠组织进行了监测。在剪切波速度方面,明胶体模和鸡胸肉的固着水平分别增加了约271.0%和130.8%,然后以10.91 m / s和7.88 m / s的速度达到平稳状态。在这些小样本中,高原水平和时间随测量位置以及明胶和鸡胸肉的不同而变化。这种基于光学的方法展示了微调分析前变量(如固定时间)进行快速,准确的组织病理学评估的可行性;在大多数病理实验室执行的组织准备协议期间提供质量指标;并介绍了可以设计成将来可自动处理活检和成像的一次性设备的微流腔。

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