Joint Modeling of Longitudinal Visual Field Changes and Time to Detect Progression in Glaucoma Patients: A Secondary Data Analysis.

IF 1.5 Q2 MEDICINE, GENERAL & INTERNAL
Samaneh Sabouri, Elham Haem, Masoumeh Masoumpour, Hans G Lemij, Koenraad A Vermeer, Siamak Yousefi, Saeedeh Pourahmad
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Abstract

Background: Glaucoma causes irreversible damage to the optic nerve and can lead to blindness if it is not treated appropriately. Evaluation of longitudinal changes in the visual field (VF) and detecting progression in a timely manner are critical for effective disease management. This study aimed to identify factors associated with VF impairment and disease progression using a Bayesian joint model.

Methods: A total of 129 glaucoma patients (228 eyes) were recruited from an ongoing cohort study initiated in 1998 at the Rotterdam Eye Hospital in the Netherlands. Standard Automated Perimetry (SAP) was performed for each patient at regular 6-month follow-up intervals. Covariates included sex, age at baseline, mean intraocular pressure (IOP), and disease severity. A Bayesian joint model was employed, integrating a linear mixed effects model (LMM) for longitudinal mean deviation (MD) values and a Cox proportional hazards model for progression time. The statistical analyses were conducted using R software and the 'JMbayes2' package.

Results: Progression was observed in 33.8% of eyes. A significant association was found between MD changes and progression risk (α=-0.39, P<0.001). Older age (P=0.01), early-stage disease (P<0.001), and higher mean IOP (P<0.001) were associated with an increased risk of progression.

Conclusion: Considering longitudinal MD changes, age at baseline, mean IOP, and disease severity were significantly associated with the time to progression detection. Sex was not found to be a significant factor in glaucoma progression.

Abstract Image

青光眼患者纵向视野变化和检测进展时间的联合建模:一项次要数据分析。
背景:青光眼会对视神经造成不可逆的损害,如果治疗不当可能导致失明。评估纵向变化的视野(VF)和检测进展及时的方式是有效的疾病管理的关键。本研究旨在使用贝叶斯关节模型确定与VF损伤和疾病进展相关的因素。方法:从1998年荷兰鹿特丹眼科医院开始的一项正在进行的队列研究中招募了129名青光眼患者(228只眼睛)。每例患者定期随访6个月,进行标准自动视野检查(SAP)。协变量包括性别、基线年龄、平均眼压(IOP)和疾病严重程度。采用贝叶斯联合模型,整合纵向平均偏差(MD)值的线性混合效应模型(LMM)和进展时间的Cox比例风险模型。使用R软件和JMbayes2软件包进行统计分析。结果:33.8%的眼出现进展。结论:考虑到MD的纵向变化,基线年龄、平均眼压和疾病严重程度与检测到进展的时间显著相关。性别并不是青光眼发展的重要因素。
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来源期刊
Iranian Journal of Medical Sciences
Iranian Journal of Medical Sciences MEDICINE, GENERAL & INTERNAL-
CiteScore
3.20
自引率
0.00%
发文量
84
审稿时长
12 weeks
期刊介绍: The Iranian Journal of Medical Sciences (IJMS) is an international quarterly biomedical publication, which is sponsored by Shiraz University of Medical Sciences. The IJMS intends to provide a scientific medium of com­muni­cation for researchers throughout the globe. The journal welcomes original clinical articles as well as clinically oriented basic science re­search experiences on prevalent diseases in the region and analysis of various regional problems.
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