Institute of Biomedical Engineering, College of Medicine and College of Engineering, National Taiwan University, Taipei, Taiwan.
Department of Ophthalmology, Chang Gung Memorial Hospital, Linkou, Taiwan.
Exp Eye Res. 2019 May;182:194-201. doi: 10.1016/j.exer.2019.02.016. Epub 2019 Feb 27.
The purpose of this study is to provide an intravital noninvasive multiphoton microscopic platform for long-term ocular imaging in transgenic fluorescent mice with subcellular resolution. A multiphoton microscopic system with tunable laser output was employed. We designed a mouse holder incorporated with stereotaxic motorized stage for in vivo three-dimensional imaging of ocular surface in 3 transgenic mouse line with fluorescent protein (FP) expression to visualize distinct structures. With our imaging platform and the expression of FPs, we obtained the three-dimensional images across the whole cornea from epithelium to endothelium and in conjunctiva with subcellular resolution in vivo. Specified EGFP expression in corneal epithelium of K5-H2B-EGFP mice helped to identify both corneal and limbal epithelial cells while ubiquitous nuclear FP expression in R26R-GR mice allowed us to visualized nuclei of all cell types. Universal membrane-localized FP in mT/mG mice outlined all cell boundaries, nerve fibers, and capillaries. The simultaneously collected second harmonic generation signals from collagenous stroma provided architectural contrast. Time-lapsed recording enabled monitoring the mitotic activity of corneal epithelial cells and limbal epithelial cells. We developed an intravital multiphoton microscopic stereotaxic imaging platform and showed that, by incorporating FP-expressing transgenic mice, this platform enables in vivo 4-dimensional ophthalmic study at subcellular resolution.
本研究旨在提供一种用于具有亚细胞分辨率的转荧光蛋白(FP)转基因荧光小鼠的活体非侵入性多光子显微镜平台,用于长期眼部成像。我们使用了具有可调谐激光输出的多光子显微镜系统。我们设计了一个带有立体定向电动载物台的小鼠固定器,用于对 3 种具有 FP 表达的转基因小鼠品系的眼表进行三维活体成像,以可视化不同的结构。通过我们的成像平台和 FP 的表达,我们获得了整个角膜从上皮到内皮的三维图像,以及具有亚细胞分辨率的活体结膜。K5-H2B-EGFP 小鼠角膜上皮中特定的 EGFP 表达有助于识别角膜和角膜缘上皮细胞,而 R26R-GR 小鼠中普遍存在的核 FP 表达使我们能够可视化所有细胞类型的细胞核。mT/mG 小鼠中普遍存在的膜定位 FP 勾勒出所有细胞的边界、神经纤维和毛细血管。同时采集的来自胶原基质的二次谐波产生信号提供了结构对比。时程记录能够监测角膜上皮细胞和角膜缘上皮细胞的有丝分裂活性。我们开发了一种活体多光子显微镜立体定向成像平台,并表明通过结合表达 FP 的转基因小鼠,该平台能够以亚细胞分辨率进行体内 4 维眼科研究。