Here, we describe a sorbitol-based optical clearing method, called modified Sca/eS that can be used to image all hair cells (HCs) in the mouse cochlea. This modification of Sca/eS is defined by three steps: decalcification, de-lipidation, and refractive index matching, which can all be completed within 72 h. Furthermore, we established automated analysis programs that perform machine learning-based pattern recognition. These programs generate 1) a linearized image of HCs, 2) the coordinates of HCs, 3) a holocochleogram, and 4) clusters of HC loss. In summary, a novel approach that integrates modified Sca/eS and programs based on machine learning facilitates quantitative and comprehensive analysis of the physiological and pathological properties of all HCs.
A Novel Technique for Imaging and Analysis of Hair Cells in the Organ of Corti Using Modified Sca/eS and Machine Learning.
利用改进的Sca/eS和机器学习技术对柯蒂氏器中的毛细胞进行成像和分析的新技术
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作者:Urata Shinji, Iida Tadatsune, Suzuki Yuri, Lin Shiou-Yuh, Mizushima Yu, Fujimoto Chisato, Matsumoto Yu, Yamasoba Tatsuya
| 期刊: | Bio-protocol | 影响因子: | 1.100 |
| 时间: | 2019 | 起止号: | 2019 Aug 20; 9(16):e3342 |
| doi: | 10.21769/BioProtoc.3342 | 研究方向: | 细胞生物学 |
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