Advanced Photonics Research Institute, Gwangju Institute of Science and Technology, 123 Cheomdan-gwagiro, Buk-gu, Gwangju, 61005, South Korea.
School of Electrical Engineering and Computer Science, Gwangju Institute of Science and Technology, 123 Cheomdan-gwagiro, Buk-gu, Gwangju, 61005, South Korea.
Sci Rep. 2018 Mar 19;8(1):4805. doi: 10.1038/s41598-018-23113-y.
Tendons are tough, flexible, and ubiquitous tissues that connect muscle to bone. Tendon injuries are a common musculoskeletal injury, which affect 7% of all patients and are involved in up to 50% of sports-related injuries in the United States. Various imaging modalities are used to evaluate tendons, and both magnetic resonance imaging and sonography are used clinically to evaluate tendons with non-invasive and non-ionizing radiation. However, these modalities cannot provide 3-dimensional (3D) structural images and are limited by angle dependency. In addition, anisotropy is an artifact that is unique to the musculoskeletal system. Thus, great care should be taken during tendon imaging. The present study evaluated a functional photoacoustic microscopy system for in-vivo tendon imaging without labeling. Tendons have a higher density of type 1 collagen in a cross-linked triple-helical formation (65-80% dry-weight collagen and 1-2% elastin in a proteoglycan-water matrix) than other tissues, which provides clear endogenous absorption contrast in the near-infrared spectrum. Therefore, photoacoustic imaging with a high sensitivity to absorption contrast is a powerful tool for label-free imaging of tendons. A pulsed near-infrared fiber-based laser with a centered wavelength of 780 nm was used for the imaging, and this system successfully provided a 3D image of mouse tendons with a wide field of view (5 × 5 mm).
肌腱是坚韧、灵活且无处不在的组织,将肌肉与骨骼连接起来。肌腱损伤是一种常见的肌肉骨骼损伤,影响所有患者的 7%,并涉及美国多达 50%的与运动相关的损伤。各种成像方式可用于评估肌腱,磁共振成像和超声都用于临床评估肌腱,具有非侵入性和非电离辐射。然而,这些方式无法提供 3 维(3D)结构图像,并且受到角度依赖性的限制。此外,各向异性是肌肉骨骼系统特有的伪影。因此,在肌腱成像时应格外小心。本研究评估了一种用于无标记体内肌腱成像的功能性光声显微镜系统。肌腱中交联的三螺旋结构(干重胶原 65-80%,蛋白聚糖水基质中 1-2%弹性蛋白)的 1 型胶原密度较高,在近红外光谱中提供了清晰的内源性吸收对比。因此,对吸收对比具有高灵敏度的光声成像是无标记肌腱成像的有力工具。使用中心波长为 780nm 的基于脉冲近红外光纤的激光器进行成像,该系统成功地提供了具有宽视野(5×5mm)的小鼠肌腱的 3D 图像。