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Adrian C Au

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Open access Aug 2026

Ability of Large Language Models to Answer Patients’ Questions and Generate Educational Materials for Uncommon Retinal Conditions

Purpose: To assess the ability of large language models to accurately and comprehensively respond to frequently asked questions and generate patient education materials related to uncommon retinal conditions. Methods: A total of 50 frequently asked questions related to 10 uncommon retinal conditions were input into 3 large language models: ChatGPT-4o1, Google Gemini 2.0 Flash, and Microsoft Copilot (updated January 7, 2025). The accuracy and completeness of responses to frequently asked questions were evaluated by retina specialists using a Likert scale ranging from 1 (very inaccurate/not at all complete) to 5 (very accurate/completely complete), while readability was assessed using validated indices. The large language models were also instructed to generate patient education materials at specific reading levels, which were again evaluated for accuracy, completeness, and readability. Results: Responses to patient frequently asked questions were written at mean grade levels of 15.3 ± 1.4 (ChatGPT), 15.7 ± 1.9 (Gemini), and 14.6 ± 1.3 (Copilot), respectively (P = .02). Mean accuracy scores were 4.02 ± 0.7, 4.16 ± 0.7, and 3.81 ± 0.8. Accuracy scores for large language models-generated patient education materials were 4.70 ± 0.7 (ChatGPT), 4.85 ± 0.4 (Gemini), and 4.30 ± 0.8 (Copilot). When instructed to revise educational materials to improve understandability, all large language models significantly reduced reading levels by 4.8 (ChatGPT), 6.9 (Gemini), and 3.8 (Copilot) grade levels (P < .001) without compromising accuracy. Conclusions: Large language models can accurately respond to patients’ frequently asked questions related to uncommon retinal conditions. Furthermore, large language models can effectively improve the readability of existing education materials for patients with varying levels of health literacy. A deeper understanding of large language model applications may facilitate their integration into clinical practice.

Samuel A. Cohen, P. Tailor, Adrian C Au et al. · 0 citations
Aug 2026

Vitrectomy for Proliferative Diabetic Retinopathy with Asteroid Hyalosis: Contemporary Outcomes and Challenges.

PURPOSE To evaluate the diagnostic and therapeutic outcomes of pars plana vitrectomy (PPV) in eyes with proliferative diabetic retinopathy (PDR) complicated by asteroid hyalosis (AH) in the modern small-gauge era. METHODS This retrospective series included 12 eyes of 12 patients with AH who underwent PPV for PDR-related complications between July 2023 and August 2025 at a county-based tertiary center. Data collected included systemic comorbidities, surgical indication, preoperative best-corrected visual acuity (BCVA), posterior vitreous detachment (PVD) status, intraoperative events, and postoperative outcomes. RESULTS Mean age was 60.1 years (median 58.5; interquartile range [IQR] 51.3-66.5). All patients had diabetes; hypertension and hyperlipidemia were present in 91.7% and 66.7%. Surgical indications included vitreous hemorrhage in 9 eyes (75.0%) and tractional retinal detachment in 8 (66.7%). A spontaneous PVD was absent in 4 eyes (33.3%), and retinal breaks occurred in 6 (50.0%). At a mean of 10.7-month follow-up (median 8.5, IQR 5-12.3), 11 eyes (91.7%) remained attached. Final BCVA was 20/200 or better in 7 eyes (58.3%). CONCLUSION AH increases vitreoretinal adhesion and intraoperative risk during PPV for PDR but does not preclude favorable anatomic outcomes with modern techniques. Fluorescein angiography is a valuable adjunct for detecting occult neovascularization and guiding timely surgical intervention when visualization is limited.

Justin S. Yun, E. NaPier, Hamid Hosseini et al. · 0 citations

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