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Moxifloxacin-Based Extended Depth-of-Field Fluorescence Microscopy for Real-Time Conjunctival Goblet Cell Examination SCIE SCOPUS

Title
Moxifloxacin-Based Extended Depth-of-Field Fluorescence Microscopy for Real-Time Conjunctival Goblet Cell Examination
Authors
Lee, JungbinKim, SeonghanKim, JeonghoSon, Byeong JaeYoon, Chang HoKim, Hong KyunKim, Ki Hean
Date Issued
2022-02
Publisher
Institute of Electrical and Electronics Engineers
Abstract
Conjunctival goblet cells (CGCs) are mucin-secreting cells in the eye and play essential roles for ocular surface homeostasis. Since various ocular surface pathologies are related to CGC dysfunction, CGC examination is important for the evaluation of ocular surface conditions. Recently we introduced moxifloxacin-based fluorescence microscopy (MBFM) for non-invasive CGC imaging. However, the imaging speed was up to 1 frame per second (fps) and needed to be improved for clinical applications. In this study, we developed a high-speed moxifloxacin-based, extended depth-of-field (EDOF) microscopy system that operates at a maximum imaging speed of 15 fps. The system used a deformable mirror for the high-speed axial sweeping of focal plane during single-frame acquisitions. The acquired images contained both in-focus and out-of-focus information, and deconvolution was used to filter the in-focus information. The system had a DOF of 800 μm, field-of-view of 1.2 mm × 1.2 mm, and resolution of 2.3 μm. Its performance was demonstrated by real-time, breathing-motion-insensitive CGC imaging of mouse and rabbit models, in vivo. High-speed EDOF microscopy has potentials for non-invasive, real-time CGC examinations of human subjects.
URI
https://oasis.postech.ac.kr/handle/2014.oak/109578
DOI
10.1109/tmi.2022.3151944
ISSN
0278-0062
Article Type
Article
Citation
IEEE Transactions on Medical Imaging, vol. 41, no. 8, page. 2004 - 2008, 2022-02
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김기현KIM, KI HEAN
Dept of Mechanical Enginrg
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