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New research · Ophthalmology
Ophthalmology science · 5d
AI / informaticsOphthalmology science · 2026

Deep Learning-Based Quantification of Vitreous Hyperreflective Foci as a Biomarker for Intraocular Inflammation.

Yaniv Cohen, Maxime Usdin, Matthew McLeod … Marina Mesquida
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OphthalmologyAI / informatics

Artificial intelligence-measured vitreous debris density accurately identified eyes with concurrent intraocular inflammation.

Deep Learning-Based Quantification of Vitreous Hyperreflective Foci as a Biomarker for Intraocular Inflammation.

Yaniv Cohen … Marina Mesquida
Ophthalmology science · 2026
Purpose

To develop and validate an artificial intelligence (artificial intelligence)-driven pipeline to quantify vitreous hyperreflective foci (vHRF) from OCT images and assess their association with intraocular inflammation (intraocular inflammation).

Methods

SUBJECTS: A clinical analysis cohort of 369 patients from the GALLEGO clinical trial (Galegenimab vs. placebo in patients with geographic atrophy, clinical trial ID: NCT03972709).

n = 369 patients
Results

Higher vitreous cloudiness density on OCT scans distinguished inflamed from non-inflamed eyes (AUC 0.84).

67.7%
Sensitivity
89%
Specificity
More results

The U-Net Transformer model demonstrated strong segmentation performance.

In eye-clustered logistic generalized estimating equation models, 5 filtered biomarkers were significantly associated with inflammation, with the strongest association for filtered vHRF density [vHRF/μm 3 ] (odds ratio per standard deviation 1.62, 95% confidence interval 1.26-2.07, P < 0.001).

More results

At the optimal threshold for vHRF density, sensitivity was 67.7%, specificity 89.0%, and positive predictive value was 16.9% despite an intraocular inflammation prevalence of 3.2%.

“
Conclusion · 1 of 2

Our artificial intelligence-driven pipeline accurately quantified vHRF from OCT images, and the resulting metrics, particularly vHRF volume density, were significantly associated with concurrent intraocular inflammation.

Conclusion · 2 of 2

These findings support automated vHRF quantification as a promising imaging biomarker for inflammation assessment, although further validation in larger and more diverse datasets is needed.

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