Correlation of retinal fluid and photoreceptor and RPE loss in neovascular AMD by automated quantification, a real-world FRB! analysis.

IF 3 3区 医学 Q1 OPHTHALMOLOGY Acta Ophthalmologica Pub Date : 2024-11-14 DOI:10.1111/aos.16799
Virginia Mares, Gregor S Reiter, Markus Gumpinger, Oliver Leigang, Hrvoje Bogunovic, Daniel Barthelmes, Marcio B Nehemy, Ursula Schmidt-Erfurth
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Abstract

Purpose: To quantify ellipsoid zone (EZ) loss during anti-VEGF therapy for neovascular age-related macular degeneration (nAMD) and correlate these findings with nAMD disease activity using artificial intelligence-based algorithms.

Methods: Spectral domain optical coherence tomography (Spectralis, Heidelberg Engineering) images from nAMD treatment-naïve patients from the Fight Retinal Blindness! (FRB!) Registry from Zürich, Switzerland were processed at baseline and over 3 years of follow-up. An approved deep learning algorithm (Fluid Monitor, RetInSight) was used to automatically quantify intraretinal fluid (IRF), subretinal fluid (SRF) and pigment epithelial detachment (PED). An ensemble U-net deep learning algorithm was used to automated quantify EZ integrity based on EZ layer thickness. The impact of fluid volumes on EZ thickness and late-stages outcomes were calculated using Wilcoxon rank-sum tests, a linear mixed model and a longitudinal panel regression model.

Results: Two hundred and eleven eyes from 158 patients were included. The mean ± SD EZ loss area in the central 6 mm was 1.81 ± 2.68 mm2 at baseline and reached 6.21 ± 6.15 mm2 at month 36. Higher fluid volumes (top 25%) of IRF and PED in the central 1 and 6 mm of the macula were significantly associated with more advanced EZ thinning and loss compared to the low fluid volume subgroup. The high SRF subgroup in the linear regression model showed no statistically significant association with EZ integrity in the central macula; however, the longitudinal analysis revealed an increased EZ thickness with no additional loss.

Conclusions: Intraretinal fluid and PED volumes and their resolution pattern have an impact on alteration of the underlying EZ layer. AI-supported quantifications are helpful in quantifying early signs of macular atrophy and providing individual risk profiles as a basis for tailored therapies for optimized visual outcomes.

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自动定量分析新生血管性黄斑变性症中视网膜积液与感光细胞和 RPE 损失的相关性,真实世界 FRB!分析。
目的:量化抗血管内皮生长因子(VEGF)治疗新生血管性老年黄斑变性(nAMD)期间的椭圆形区(EZ)损失,并使用基于人工智能的算法将这些发现与 nAMD 疾病活动相关联:方法:光谱域光学相干断层扫描(Spectralis,海德堡工程公司)图像来自 "对抗视网膜失明"(FRB!(FRB!) 注册中心(瑞士苏黎世)的 nAMD 治疗无效患者在基线和 3 年随访期间的图像进行了处理。使用一种经认可的深度学习算法(Fluid Monitor,RetInSight)自动量化视网膜内积液(IRF)、视网膜下积液(SRF)和色素上皮脱落(PED)。利用集合 U-net 深度学习算法,根据 EZ 层厚度自动量化 EZ 的完整性。使用 Wilcoxon 秩和检验、线性混合模型和纵向面板回归模型计算了液体量对 EZ 厚度和晚期结果的影响:结果:共纳入 158 名患者的 211 只眼睛。基线时,中心 6 mm 的平均 ± SD EZ 损失面积为 1.81 ± 2.68 mm2,第 36 个月时达到 6.21 ± 6.15 mm2。与低液量亚组相比,黄斑中央 1 毫米和 6 毫米处 IRF 和 PED 的液量较高(前 25%)与 EZ 变薄和脱失程度较深有显著相关性。在线性回归模型中,高SRF亚组与黄斑中央的EZ完整性没有明显的统计学关联;但是,纵向分析显示EZ厚度增加,但没有额外的损失:结论:视网膜内积液和 PED 的体积及其分辨率模式对底层 EZ 的改变有影响。人工智能支持的量化有助于量化黄斑萎缩的早期迹象,并提供个体风险概况,为优化视觉效果的定制疗法奠定基础。
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来源期刊
Acta Ophthalmologica
Acta Ophthalmologica 医学-眼科学
CiteScore
7.60
自引率
5.90%
发文量
433
审稿时长
6 months
期刊介绍: Acta Ophthalmologica is published on behalf of the Acta Ophthalmologica Scandinavica Foundation and is the official scientific publication of the following societies: The Danish Ophthalmological Society, The Finnish Ophthalmological Society, The Icelandic Ophthalmological Society, The Norwegian Ophthalmological Society and The Swedish Ophthalmological Society, and also the European Association for Vision and Eye Research (EVER). Acta Ophthalmologica publishes clinical and experimental original articles, reviews, editorials, educational photo essays (Diagnosis and Therapy in Ophthalmology), case reports and case series, letters to the editor and doctoral theses.
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