Evaluation of rat retina by histopathological examination and spectral domain high-resolution optical coherence tomography
LIU Lu1, MO Bin1, JIAO Jian2, LIU Wu1
1. Beijing Tongren Eye Center, Beijing Tonren Hospital, Capital Medical University, Beijing Ophthalmology & Visual Science Key Laboratory; Beijing 100730, China; 2. Department of Ophthalmology, Beijing Chaoyang Hospital, Capital Medical University, Beijing 100020, China
LIU Lu, MO Bin, JIAO Jian, LIU Wu. Evaluation of rat retina by histopathological examination and spectral domain high-resolution optical coherence tomography[J]. Ophthalmology in China, 2013, 22(5): 344-348.
[1] Ruggeri M, Wehbe H, Jiao S, et al. In vivo three dimensional high resolution imaging of rodent retina with spectral domain optical coherence tomography. Invest Ophthalmol Vis Sci, 2007, 48: 1808-1814.[2] Li Q, Timmers AM, Hunter K, et al. Noninvasive imaging by optical coherence tomography to monitor retinal degeneration in the mouse. Invest Ophthalmol Vis Sci, 2001, 42: 2981-2989.[3] 李和, 周莉. 组织化学与免疫组织化学. 北京: 人民卫生出版社, 2008: 9.[4] Huang D, Swanson E, Lin C, et al. Optical coherence tomography. Science, 1991, 254: 1178-1181.[5] Sho K, Takahashi K, Fukuchi T, et al. Quantitative evaluation of ischemia-reperfusion injury by optical coherence tomography in the rat retina. Jpn J Ophthalmol, 2005, 49: 109-113.[6] Anger EM, Unterhuber A, Hermann B, et al. Ultrahigh resolution optical coherence tomography of the monkey fovea.Identification of retinal sublayers by correlation with semithin histology sections. Exp Eye Res, 2004, 78: 1117-1125. [7] Dot C, Parier V, Behar-Cohen F, et al. Influence of age on retinochoroidal healing processes after Argon photocoagulation in C57bl/6j mice. Mol Vis, 2009, 15: 670-684.