近视的光学和视觉饮食。

IF 4.7 2区 医学 Q1 OPHTHALMOLOGY
Susana Marcos
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引用次数: 0

摘要

近现代近视发病率的惊人增长归因于影响年轻人的环境变化。视觉场景由眼睛的光学元件投射到视网膜上,并由视网膜感光器进行采样,形成空间、时间和颜色的“视觉饮食”,提供给视觉系统。这些输入为适当的近视提供了必要的信号,并且在发展为近视的眼睛中,触发了导致过度轴向伸长的级联事件。本文提供了建立近视眼计算模型的基本组成部分,并重点介绍了现有的和需要的光学和结构数据,以构建近视和发展中的纵向三维光学眼模型。这些广角眼模型,在放松和调节状态下,将有助于了解眼睛在近视发生时所经历的变化,并有可能探索近视发展中的因果关系。年龄和屈光相关的眼睛模型也可以作为测试近视控制的新型光学治疗与视网膜上产生的模糊模式的耦合的平台。颜色、空间和时间刺激被探索为似是而非的都市化线索。文章还回顾了已发表的关于编码离焦符号和触发轴向伸长机制的理论。用于眼部几何、生物和光学评估的完全定量技术,以及用于监测环境物理特征的技术,对于收集能够实现预测模型的多维数据集至关重要。鉴于户外活动时间是近视发展的主要因素,探索光暴露与近视之间的联系机制至关重要。本文还回顾了目前提出的与视网膜多巴胺能通路、黑视素信号功能障碍和昼夜节律中断相关的机制——人工照明和长时间使用数字显示器改变了现代生活方式中的因素。了解不同环境属性(如光强、空间频率分布、模糊、光谱特征)与眼部光学滤光效应之间的相互作用,将有助于阐明关键的近视形成信号,并有可能揭示与近视治疗相关的复杂的多因素机制。此外,文章的附件还讨论了近视研究中尚未解决的问题和有希望的研究方向,并借鉴了专家的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical and Visual Diet in Myopia.

The alarming increase in myopia prevalence in modern times is attributed to environmental changes affecting young individuals. Visual scenes are projected onto the retina by the eye's optical components and sampled by retinal photoreceptors, shaping the spatial, temporal, and chromatic "visual diet" fed to the visual system. These inputs provide essential signaling for proper emmetropization and, in eyes that develop myopia, trigger the cascade of events leading to excessive axial elongation. This article offers foundational components for formulating computational models of myopic eyes and highlights available and needed optical and structural data to construct longitudinal three-dimensional optical eye models in emmetropes and developing myopes. These wide-angle eye models, in both relaxed and accommodated states, will enable understanding of the changes the eye undergoes at myopia onset and potentially allow exploration of cause-effect relationships in myopia development. Age- and refractive-dependent eye models also serve as platforms to test the coupling of novel optical treatments for myopia control with the resulting blur patterns across the retina. Chromatic, spatial, and temporal stimuli are explored as plausible cues for emmetropization. The article also reviews published theories on mechanisms for encoding the sign of defocus and triggering axial elongation. Fully quantitative technologies for ocular geometrical, biometric, and optical evaluation, as well as for monitoring physical features of the environment, are critical for collecting multidimensional data sets that enable predictive models. Given that time spent outdoors is a major factor associated with myopia development, exploring mechanisms that connect light exposure with myopia is paramount. The article also reviews current proposed mechanisms linked to retinal dopaminergic pathways, dysfunction of melanopsin signaling, and disruption of circadian rhythms-factors altered in modern lifestyles by artificial illumination and prolonged use of digital displays. Understanding the interplay between distinct environmental attributes (e.g., light intensity, spatial frequency distribution, blur, spectral characteristics) and the filtering effects of ocular optics will help elucidate pivotal myopiagenic signals and potentially unveil the complex, multifactorial mechanisms relevant for myopia management. Additionally, an annex appended to the article discusses unresolved inquiries and promising research directions in myopia research, drawing from expert insights.

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来源期刊
CiteScore
6.90
自引率
4.50%
发文量
339
审稿时长
1 months
期刊介绍: Investigative Ophthalmology & Visual Science (IOVS), published as ready online, is a peer-reviewed academic journal of the Association for Research in Vision and Ophthalmology (ARVO). IOVS features original research, mostly pertaining to clinical and laboratory ophthalmology and vision research in general.
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