青光眼患者的神经节细胞复合体分析:它能告诉我们什么?

IF 3.1 Q1 OPHTHALMOLOGY
Eye and Brain Pub Date : 2020-01-31 eCollection Date: 2020-01-01 DOI:10.2147/EB.S226319
Gianluca Scuderi, Serena Fragiotta, Luca Scuderi, Clemente Maria Iodice, Andrea Perdicchi
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引用次数: 36

摘要

青光眼是一组视神经病变,其特征是视网膜神经节细胞(RGCs)及其轴突的进行性变性,在视野上检测到功能改变之前。黄斑神经节细胞复合体(GCC),可用于商业傅里叶域光学相干断层扫描,允许定量视网膜最内层,可能涉及青光眼损伤,包括视网膜神经纤维(RNFL),神经节细胞和内丛状层。GCC平均厚度及其相关参数是检测眼前青光眼损伤的可靠生物标志物。最准确的GCC参数由平均和较差的GCC厚度表示,它们可能与进行性视野丧失有关。虽然青光眼损伤越严重,信号强度值越高,诊断准确率越高,但不受轴长增加的影响,相对于传统的RNFL厚度,对近视眼青光眼损伤的诊断准确率更高。结构-功能关系分析显示,视网膜敏感性的丧失与GCC厚度有很好的一致性。使用10-2°视野网格,调整解剖RGCs位移,更准确地描述了RGCs厚度与视野灵敏度损失之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ganglion Cell Complex Analysis in Glaucoma Patients: What Can It Tell Us?

Ganglion Cell Complex Analysis in Glaucoma Patients: What Can It Tell Us?

Ganglion Cell Complex Analysis in Glaucoma Patients: What Can It Tell Us?

Glaucoma is a group of optic neuropathies characterized by a progressive degeneration of retina ganglion cells (RGCs) and their axons that precedes functional changes detected on the visual field. The macular ganglion cell complex (GCC), available in commercial Fourier-domain optical coherence tomography, allows the quantification of the innermost retinal layers that are potentially involved in the glaucomatous damage, including the retinal nerve fiber (RNFL), ganglion cell and inner plexiform layers. The average GCC thickness and its related parameters represent a reliable biomarker in detecting preperimetric glaucomatous damage. The most accurate GCC parameters are represented by average and inferior GCC thicknesses, and they can be associated with progressive visual field loss. Although the diagnostic accuracy increases with more severe glaucomatous damage and higher signal strength values, it is not affected by increasing axial length, resulting in a more accurate discrimination of glaucomatous damage in myopic eyes with respect to the traditional RNFL thickness. The analysis of the structure-function relationship revealed a good agreement between the loss in retinal sensitivity and GCC thickness. The use of a 10-2° visual field grid, adjusted for the anatomical RGCs displacement, describes more accurately the relationship between RGCs thickness and visual field sensitivity loss.

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来源期刊
Eye and Brain
Eye and Brain OPHTHALMOLOGY-
CiteScore
7.90
自引率
2.30%
发文量
12
审稿时长
16 weeks
期刊介绍: Eye and Brain is an international, peer-reviewed, open access journal focusing on basic research, clinical findings, and expert reviews in the field of visual science and neuro-ophthalmology. The journal’s unique focus is the link between two well-known visual centres, the eye and the brain, with an emphasis on the importance of such connections. All aspects of clinical and especially basic research on the visual system are addressed within the journal as well as significant future directions in vision research and therapeutic measures. This unique journal focuses on neurological aspects of vision – both physiological and pathological. The scope of the journal spans from the cornea to the associational visual cortex and all the visual centers in between. Topics range from basic biological mechanisms to therapeutic treatment, from simple organisms to humans, and utilizing techniques from molecular biology to behavior. The journal especially welcomes primary research articles or review papers that make the connection between the eye and the brain. Specific areas covered in the journal include: Physiology and pathophysiology of visual centers, Eye movement disorders and strabismus, Cellular, biochemical, and molecular features of the visual system, Structural and functional organization of the eye and of the visual cortex, Metabolic demands of the visual system, Diseases and disorders with neuro-ophthalmic manifestations, Clinical and experimental neuro-ophthalmology and visual system pathologies, Epidemiological studies.
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