Electronics‐Free Visual Monitoring of Dry Eye Disease‐Related Tear Biomarkers Using Smart Scleral Lenses

Dry eye disease (DED) is a prevalent ocular condition characterized by tear film instability, hyperosmolarity, inflammation, and neurosensory abnormalities. Its episodic and fluctuating nature complicates diagnosis and management, as conventional clinical assessments often fail to capture transient tear film changes. Although emerging tear-sensing technologies show promise, many rely on trained personnel, only sporadic measurements, external readers, or integrated electronics, limiting their practicality for in-eye applications. Here, we present an electronics-free scleral lens platform for wearable monitoring of DED-related tear biomarker changes using passive colorimetric sensors integrated within the lens tear reservoir. This configuration enables visual and smartphone-assisted readout of chloride ions, pH, and ocular surface temperature within physiologically relevant ranges while avoiding direct contact with the corneal surface. The vaulted scleral lens geometry forms a stable, self-replenishing tear reservoir that concentrates biomarkers while shielding sensors from corneal contact and eyelid pressure. Sensor color changes are directly observable and quantifiable via a smartphone without specialized readers or user-specific calibration. Validated using artificial tear fluids, human tear samples, and in vivo models, this platform enables wearable monitoring of DED-related biomarkers within physiologically relevant ranges, offering a simple and clinically viable approach for tracking ocular surface conditions and associated treatment efficacy.

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Publication Details

Journal
Advanced Science
Published
2026-08-27
DOI
https://doi.org/10.1002/advs.77399
Primary Topic
Ocular Surface and Contact Lens
Type
article
Field-Weighted Citation Impact
0.00

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article

Electronics‐Free Visual Monitoring of Dry Eye Disease‐Related Tear Biomarkers Using Smart Scleral Lenses

Gillian C. Shaw, Pete Kollbaum, Taewoong Park, Young L. Kim et al.
Advanced Science
Ocular Surface and Contact Lens
article

Electronics‐Free Visual Monitoring of Dry Eye Disease‐Related Tear Biomarkers Using Smart Scleral Lenses

Gillian C. Shaw, Pete Kollbaum, Taewoong Park, Young L. Kim, Sang Mok Park, Dawn Meyer, Feiyang Li, Shin Ae Park, Chi Hwan Lee, Tianhao Yu, Ziheng Wang, Yumin Dai, Tristan Michael Long, Dawn Meyer, Oluwabunmi T. Oladele, Jason Gerard Jedlicka, Sang Mok Park, Jason Gerard Jedlicka
article en

Abstract

Dry eye disease (DED) is a prevalent ocular condition characterized by tear film instability, hyperosmolarity, inflammation, and neurosensory abnormalities. Its episodic and fluctuating nature complicates diagnosis and management, as conventional clinical assessments often fail to capture transient tear film changes. Although emerging tear-sensing technologies show promise, many rely on trained personnel, only sporadic measurements, external readers, or integrated electronics, limiting their practicality for in-eye applications. Here, we present an electronics-free scleral lens platform for wearable monitoring of DED-related tear biomarker changes using passive colorimetric sensors integrated within the lens tear reservoir. This configuration enables visual and smartphone-assisted readout of chloride ions, pH, and ocular surface temperature within physiologically relevant ranges while avoiding direct contact with the corneal surface. The vaulted scleral lens geometry forms a stable, self-replenishing tear reservoir that concentrates biomarkers while shielding sensors from corneal contact and eyelid pressure. Sensor color changes are directly observable and quantifiable via a smartphone without specialized readers or user-specific calibration. Validated using artificial tear fluids, human tear samples, and in vivo models, this platform enables wearable monitoring of DED-related biomarkers within physiologically relevant ranges, offering a simple and clinically viable approach for tracking ocular surface conditions and associated treatment efficacy.

Advanced Science
University of Wisconsin–Madison (US), Purdue University West Lafayette (US), Indiana University Bloomington (US)
Purdue University, Ministry of Trade, Industry and Energy, Korea Institute for Advancement of Technology, National Institutes of Health, National Eye Institute
Openalex Percentile: Top 8%
Ocular Surface and Contact Lens
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