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基于超紧凑微系统的共聚焦内窥显微镜。

Ultra-Compact Microsystems-Based Confocal Endomicroscope.

出版信息

IEEE Trans Med Imaging. 2020 Jul;39(7):2406-2414. doi: 10.1109/TMI.2020.2971476. Epub 2020 Feb 3.

Abstract

Point-of-care medical diagnosis demands immediate feedback on tissue pathology. Confocal endomicroscopy can provide real-time in vivo images with histology-like features. The working channel in medical endoscopes are becoming smaller in dimension. Microsystems methods can produce tiny mechanical scanners. We demonstrate a flexible fiber instrument for in vivo imaging as an endoscope accessory. The optical path is folded on-axis to reduce length while allowing the beam to expand and achieve a numerical aperture of 0.41. A high-speed parametric resonance mirror produces large deflection angles > 13°, and is mounted on a 2 mm diameter chip designed with clamp structures for reduced space. A compact lens assembly provides diffraction-limited lateral and axial resolution of 1.5 and [Formula: see text], respectively. A working distance of [Formula: see text] and field-of-view of [Formula: see text] m are achieved. Miniature apparatus is fabricated to assemble and align the scanhead components. The optics and scanner are packaged in a distal tip with 2.4 mm diameter and 10 mm rigid length. These dimensions allow the endomicroscope to pass forward easily through the 2.8 mm diameter working channel in medical endoscopes commonly used in clinical practice. Fluorescence images are collected in vivo at 10 frames per second in the colon of genetically-engineered mice that spontaneously develop adenomas. A FITC-labeled peptide heterodimer is administered intravenously to provide specific contrast. Sub-cellular structures are visualized to distinguish pre-malignant from normal mucosa. These results demonstrate use of microsystems methods to produce an ultra-compact instrument with sufficiently small dimensions for broad use.

摘要

即时的组织病理学诊断是临床诊疗的需求。共聚焦内窥技术可以提供具有组织学特征的实时活体影像。医用内窥镜的工作通道的直径正在逐渐缩小。微系统方法可以制造出微型机械扫描仪。我们展示了一种可作为内窥镜附件的用于活体成像的柔性光纤仪器。该仪器的光路为共轴折叠,在允许光束扩展以实现数值孔径为 0.41 的同时,减少了长度。高速参量谐振镜产生的大偏转角度>13°,并安装在直径为 2 毫米的芯片上,该芯片采用了夹式结构以减少空间。紧凑的透镜组件提供了分别为 1.5 和 [Formula: see text] 的衍射极限横向和轴向分辨率。工作距离为 [Formula: see text],视场为 [Formula: see text] m。采用微型装置来组装和对准扫描头组件。该光学器件和扫描仪被封装在直径为 2.4 毫米、刚性长度为 10 毫米的远端探头中。这些尺寸允许内窥镜通过临床实践中常用的直径为 2.8 毫米的工作通道轻松前进。在具有自发发展出腺瘤的遗传工程小鼠的结肠中,以每秒 10 帧的速度采集荧光图像。静脉内给予 FITC 标记的肽杂二聚体以提供特异性对比。可视化亚细胞结构以区分癌前病变与正常粘膜。这些结果表明采用微系统方法生产出一种超紧凑的仪器,其尺寸足够小,可广泛应用。

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Ultra-Compact Microsystems-Based Confocal Endomicroscope.基于超紧凑微系统的共聚焦内窥显微镜。
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