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Exposed and Transcutaneous Measurement of Musculoskeletal Tissues using Fiber Optic Coupled Raman Spectroscopy

机译:暴露和经皮测量肌肉骨骼组织的光纤耦合拉曼光谱

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Raman spectroscopic measurement of bone composition has shown promise as a medical diagnostic by measuring the molecular composition of the bone mineral and matrix. We previously demonstrated proof-of-principle transcutaneous Raman spectroscopy bone measurements in human cadavers. In this paper, we discuss further optimization of the instrumental configuration for efficient collection of bone signal using contact fiber-optic probe designs. To optimize collection of Raman signal through overlaying soft tissue, novel geometrically-accurate tissue phantoms were prepared. MRI and CT images of the human cadaveric specimens were used to create solid tissue phantoms with accurate geometric dimensions. In these tissue phantoms, optical properties can be varied systematically. Raman spectra of the prepared tissue phantoms were used to optimize the positions of the fibers in the fiber optic system, and the laser illumination sequence in the measurements. Three fiber optic probes were developed and tested with both novel tissue phantoms and human cadaveric specimens. The contact fiber optic probes were developed for arthroscopic measurements of joints, for transcutaneous measurements of bone in situ, and for contact measurements of exposed bone. By coupling the fiber optic probe to an imaging spectrograph, spectra were collected simultaneously at many positions on the tissue. Furthermore, spectra were collected with several different excitation laser patterns to enhance the effective spatial resolution of the measurements. Finally, a series of improvements were made in the data preprocessing to improve the recovered spectral signal. Together, these modifications improve signal-to-noise and spatial resolution.
机译:通过测量骨矿物质和基质的分子组成,拉曼光谱法测量骨骼成分已显示出作为医学诊断的希望。我们以前在人尸体内展示了原理验证的经皮拉曼光谱骨测量。在本文中,我们将讨论使用接触式光纤探头设计对器械配置进行进一步优化以有效收集骨信号的过程。为了通过覆盖软组织优化拉曼信号的收集,制备了新颖的几何精确的组织体模。使用人体尸体标本的MRI和CT图像创建具有精确几何尺寸的实体组织体模。在这些组织体模中,光学特性可以系统地改变。制备的组织体模的拉曼光谱用于优化光纤在光纤系统中的位置以及测量中的激光照射顺序。开发了三种光纤探头,并用新型组织体模和人体尸体标本进行了测试。开发了接触式光纤探头,用于关节镜的关节测量,原位骨的经皮测量以及裸露骨的接触测量。通过将光纤探头耦合到成像光谱仪,可以同时在组织的许多位置收集光谱。此外,使用几种不同的激发激光图案收集光谱,以增强测量的有效空间分辨率。最后,在数据预处理中进行了一系列改进,以改善恢复的光谱信号。这些修改共同提高了信噪比和空间分辨率。

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