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利用光学相干断层扫描血管造影术评估面肩肱型肌营养不良症视网膜血管病变的人工智能:病例系列

Artificial Intelligence for Evaluation of Retinal Vasculopathy in Facioscapulohumeral Dystrophy Using OCT Angiography: A Case Series.

作者信息

Maceroni Martina, Monforte Mauro, Cariola Rossella, Falsini Benedetto, Rizzo Stanislao, Savastano Maria Cristina, Martelli Francesco, Ricci Enzo, Bortolani Sara, Tasca Giorgio, Minnella Angelo Maria

机构信息

Institute of Ophthalmology, Università Cattolica del Sacro Cuore, 00168 Rome, Italy.

UOC di Oculistica, Fondazione Policlinico Universitario A. Gemelli-IRCCS, 00168 Rome, Italy.

出版信息

Diagnostics (Basel). 2023 Mar 4;13(5):982. doi: 10.3390/diagnostics13050982.

Abstract

Facioscapulohumeral muscular dystrophy (FSHD) is a slowly progressive muscular dystrophy with a wide range of manifestations including retinal vasculopathy. This study aimed to analyse retinal vascular involvement in FSHD patients using fundus photographs and optical coherence tomography-angiography (OCT-A) scans, evaluated through artificial intelligence (AI). Thirty-three patients with a diagnosis of FSHD (mean age 50.4 ± 17.4 years) were retrospectively evaluated and neurological and ophthalmological data were collected. Increased tortuosity of the retinal arteries was qualitatively observed in 77% of the included eyes. The tortuosity index (TI), vessel density (VD), and foveal avascular zone (FAZ) area were calculated by processing OCT-A images through AI. The TI of the superficial capillary plexus (SCP) was increased ( < 0.001), while the TI of the deep capillary plexus (DCP) was decreased in FSHD patients in comparison to controls ( = 0.05). VD scores for both the SCP and the DCP results increased in FSHD patients ( = 0.0001 and = 0.0004, respectively). With increasing age, VD and the total number of vascular branches showed a decrease ( = 0.008 and < 0.001, respectively) in the SCP. A moderate correlation between VD and EcoRI fragment length was identified as well (r = 0.35, = 0.048). For the DCP, a decreased FAZ area was found in FSHD patients in comparison to controls (t (53) = -6.89, = 0.01). A better understanding of retinal vasculopathy through OCT-A can support some hypotheses on the disease pathogenesis and provide quantitative parameters potentially useful as disease biomarkers. In addition, our study validated the application of a complex toolchain of AI using both ImageJ and Matlab to OCT-A angiograms.

摘要

面肩肱型肌营养不良症(FSHD)是一种缓慢进展的肌营养不良症,临床表现多样,包括视网膜血管病变。本研究旨在通过眼底照片和光学相干断层扫描血管造影(OCT-A)扫描,利用人工智能(AI)分析FSHD患者的视网膜血管受累情况。对33例诊断为FSHD的患者(平均年龄50.4±17.4岁)进行回顾性评估,并收集神经学和眼科数据。在纳入研究的眼睛中,77%定性观察到视网膜动脉迂曲增加。通过AI处理OCT-A图像计算迂曲指数(TI)、血管密度(VD)和黄斑无血管区(FAZ)面积。与对照组相比,FSHD患者浅表毛细血管丛(SCP)的TI升高(<0.001),而深部毛细血管丛(DCP)的TI降低(=0.05)。FSHD患者SCP和DCP的VD评分均升高(分别为=0.0001和=0.0004)。随着年龄增长,SCP中的VD和血管分支总数减少(分别为=0.008和<0.001)。还发现VD与EcoRI片段长度之间存在中度相关性(r=0.35,=0.048)。与对照组相比,FSHD患者DCP的FAZ面积减小(t(53)=-6.89,=0.01)。通过OCT-A更好地了解视网膜血管病变可以支持一些关于疾病发病机制的假设,并提供可能作为疾病生物标志物的定量参数。此外,我们的研究验证了使用ImageJ和Matlab的复杂AI工具链在OCT-A血管造影上的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c56/10001401/6396b86c3f80/diagnostics-13-00982-g001.jpg

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