In Vivo Noncontact Imaging of Conjunctival Goblet Cells with Customized Widefield Fluorescence Microscopy

IF 4.6 Q1 OPHTHALMOLOGY Ophthalmology science Pub Date : 2025-05-01 Epub Date: 2025-01-12 DOI:10.1016/j.xops.2025.100712
Yushuang Liu MS , Zhengyu Duan PhD , Zhongzhou Luo BEng, Runze Zhang MS, Jiaxiong Li MS, Jinze Zhang PhD, Zeyu Meng MS, Bowen Wang MD, PhD, Jin Yuan MD, PhD, Peng Xiao PhD
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Abstract

Purpose

Conjunctival goblet cells (CGCs) play a crucial role in maintaining ocular surface health by producing mucins. However, assessing CGC changes in ocular diseases remains limited by invasive techniques and subjective evaluations. This study aims to develop a noncontact cellular resolution fluorescence microscopy for in vivo CGC imaging and investigate CGC dynamics in a dry eye disease (DED) mouse model.

Design

Experimental study.

Subjects

Freshly ex vivo porcine eyes, New Zealand white rabbits, and C57BL/6 mice.

Methods

Based on the intrinsic fluorescence properties of moxifloxacin, a high-resolution noncontact widefield fluorescence microscopy (WFFM) was customized with an all-in-focus algorithm to optimize in vivo CGC imaging over the curved conjunctival surface. A DED mouse model was established by topically applying 0.2% benzalkonium chloride (BAC) to the ocular surface daily for 7 days, followed by a 7-day recovery period without BAC. In vivo CGC alterations were assessed using WFFM on days 0, 3, 7, and 14. Additional assessments included the phenol red thread tear test, corneal sodium fluorescein staining, and periodic acid–Schiff (PAS) assay.

Main Outcome Measures

Conjunctival goblet cell density and area ratio.

Results

The WFFM system achieved a cellular resolution of 1 μm and a field of view of 1.4 mm × 1.4 mm. Imaging validation in mice and rabbits allowed for the distinguishing and quantitative assessment of individual CGCs or clusters on the curved conjunctival surface in vivo. Significant reductions in CGC density and area ratio on days 3 and 7 after BAC induction were observed in DED mouse in vivo with WFFM, with their values returning to the baseline 7 days after BAC removal, which was consistent with PAS staining results.

Conclusions

The customized WFFM enables in vivo cellular imaging of CGCs, offering a safe and accurate method for continuous monitoring of CGC pathophysiology in ocular surface diseases such as DED.

Financial Disclosures

Proprietary or commercial disclosure may be found in the Footnotes and Disclosures at the end of this article.
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利用定制宽场荧光显微镜对结膜上皮细胞进行体内非接触式成像
目的第二结膜杯状细胞(cgc)通过分泌黏液蛋白在维持眼表健康中起重要作用。然而,评估眼部疾病的CGC变化仍然受到侵入性技术和主观评价的限制。本研究旨在开发一种非接触式细胞分辨率荧光显微镜,用于干眼病(DED)小鼠模型的体内CGC成像,并研究CGC动力学。DesignExperimental研究。实验对象:新鲜离体猪眼、新西兰大白兔、C57BL/6小鼠。方法基于莫西沙星的固有荧光特性,采用全聚焦算法定制高分辨率非接触式宽视场荧光显微镜(WFFM),优化在弯曲结膜表面的体内CGC成像。采用0.2%苯扎氯铵(benzalkonium chloride, BAC)每日局部涂抹于眼表,连续7 d建立DED小鼠模型,并给予7 d无BAC恢复期。在第0、3、7和14天使用WFFM评估体内CGC变化。其他评估包括酚红线撕裂试验、角膜荧光素钠染色和周期性酸希夫(PAS)试验。主要观察指标:结膜杯状细胞密度和面积比。结果WFFM系统的元胞分辨率为1 μm,视野为1.4 mm × 1.4 mm。小鼠和家兔的成像验证允许在体内对弯曲结膜表面上的单个cgc或簇进行区分和定量评估。在体内使用WFFM的DED小鼠中,CGC密度和面积比在BAC诱导后第3天和第7天显著降低,在去除BAC后第7天恢复到基线值,这与PAS染色结果一致。结论定制化WFFM可实现CGC的体内细胞成像,为连续监测DED等眼表疾病的CGC病理生理提供了一种安全、准确的方法。财务披露专有或商业披露可在本文末尾的脚注和披露中找到。
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来源期刊
Ophthalmology science
Ophthalmology science Ophthalmology
CiteScore
3.40
自引率
0.00%
发文量
0
审稿时长
89 days
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