Martel Catherine, Yao Junjie, Huang Chih-Hsien, Zou Jun, Randolph Gwendalyn J, Wang Lihong V
Washington University School of Medicine, Department of Pathology and Immunology, 425 S Euclid, St. Louis, Missouri 63110, United StatesbUniversité de Montréal, Faculty of Medicine; Montreal Heart Institute, 5000 Belanger Street, Montreal, Quebec H1T 1C8.
Washington University in St. Louis, Department of Biomedical Engineering, 1 Brookings Drive, St. Louis, Missouri 63130, United States.
J Biomed Opt. 2014 Nov;19(11):116009. doi: 10.1117/1.JBO.19.11.116009.
Despite its critical function in coordinating the egress of inflammatory and immune cells out of tissues and maintaining fluid balance, the causative role of lymphatic network dysfunction in pathological settings is still understudied. Engineered-animal models and better noninvasive high spatial-temporal resolution imaging techniques in both preclinical and clinical studies will help to improve our understanding of different lymphatic-related pathologic disorders. Our aim was to take advantage of our newly optimized noninvasive wide-field fast-scanning photoacoustic (PA) microcopy system to coordinately image the lymphatic vasculature and its flow dynamics, while maintaining high resolution and detection sensitivity. Here, by combining the optical-resolution PA microscopy with a fast-scanning water-immersible microelectromechanical system scanning mirror, we have imaged the lymph dynamics over a large field-of-view, with high spatial resolution and advanced detection sensitivity. Depending on the application, lymphatic vessels (LV) were spectrally or temporally differentiated from blood vessels. Validation experiments were performed on phantoms and in vivo to identify the LV. Lymphatic flow dynamics in nonpathological and pathological conditions were also visualized. These results indicate that our newly developed PA microscopy is a promising tool for lymphatic-related biological research.
尽管淋巴管网络在协调炎症和免疫细胞从组织中流出以及维持液体平衡方面具有关键作用,但其在病理情况下的致病作用仍未得到充分研究。临床前和临床研究中的工程动物模型以及更好的非侵入性高时空分辨率成像技术将有助于提高我们对不同淋巴相关病理疾病的理解。我们的目标是利用我们新优化的非侵入性宽场快速扫描光声(PA)显微镜系统,在保持高分辨率和检测灵敏度的同时,对淋巴管系统及其流动动力学进行协同成像。在此,通过将光学分辨率PA显微镜与快速扫描水浸微机电系统扫描镜相结合,我们在大视野范围内对淋巴动力学进行了成像,具有高空间分辨率和先进的检测灵敏度。根据应用情况,淋巴管(LV)在光谱或时间上与血管区分开来。在体模和体内进行了验证实验以识别LV。还可视化了非病理和病理条件下的淋巴流动动力学。这些结果表明,我们新开发的PA显微镜是淋巴相关生物学研究的一个有前途的工具。