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首页> 外文期刊>Ophthalmology >Effect of individualized compensation for anterior segment birefringence on retinal nerve fiber layer assessments as determined by scanning laser polarimetry.
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Effect of individualized compensation for anterior segment birefringence on retinal nerve fiber layer assessments as determined by scanning laser polarimetry.

机译:通过扫描激光旋光法确定前段双折射的个体化补偿对视网膜神经纤维层评估的影响。

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摘要

PURPOSE: Scanning laser polarimetry estimates retinal nerve fiber layer (RNFL) thickness through measurement of retardation of a polarized laser light passing through the naturally birefringent RNFL and cornea. The commercial instrument, the GDx Nerve Fiber Analyzer (Laser Diagnostic Technologies, Inc., San Diego, CA), uses an anterior segment compensator of fixed magnitude and slow polarization axis to eliminate the contribution of the cornea to the total signal. Previous studies have shown up to 30% of patients are not adequately compensated by this method. The aim of this study was to determine the effect of individualized anterior segment compensation using a newly designed variable compensator on estimates of retinal nerve fiber layer thickness compared with those as determined with the fixed compensator in the commercial device. DESIGN: Comparative, observational case series. PARTICIPANTS: Twenty-eight eyes from 14 normal participants and 24 eyes from 12 patients with bilateral glaucoma. METHODS:Using information derived from a scan of the macula, a newly designed variable anterior segment compensator for the GDx was set to neutralize anterior segment birefringence. Normal participants and patients with glaucoma underwent RNFL measurements using the standard (fixed) compensator and the variable compensator. The results were compared using Hotelling's generalized means test and Bonferroni's adjustment for multiple comparisons. MAIN OUTCOME MEASURES: Standard GDx modulation and thickness parameters as determined with the fixed and variable compensators. RESULTS: All thickness values were statistically significantly lower as determined with the variable compensator, with no discernible differences in any of the modulation parameters. CONCLUSIONS: Individualized anterior segment compensation lowers the RNFL thickness values as determined by scanning laser polarimetry compared with those determined with the standard fixed compensator. This may narrow the normal range and increase the discriminating ability of scanning laser polarimetry between normal and disease. However, modulation is less affected, and the modulation parameters may thus prove more useful for distinguishing between normal and glaucoma.
机译:目的:扫描激光偏振仪通过测量通过自然双折射RNFL和角膜的偏振激光的延迟来估计视网膜神经纤维层(RNFL)的厚度。商用仪器GDx神经纤维分析仪(加利福尼亚州圣地亚哥的激光诊断技术有限公司)使用固定幅度和慢偏振轴的前节补偿器来消除角膜对总信号的影响。先前的研究表明,多达30%的患者无法通过这种方法获得足够的补偿。这项研究的目的是确定与商业设备中固定补偿器相比,使用新设计的可变补偿器对视网膜神经纤维层厚度估算值进行个性化前段补偿的效果。设计:比较性观察病例系列。参与者:14名正常参与者的28只眼和12名双侧青光眼患者的24只眼。方法:利用从黄斑扫描获得的信息,设置新设计的GDx可变前段补偿器,以中和前段双折射。正常参与者和青光眼患者使用标准(固定)补偿器和可变补偿器进行RNFL测量。使用Hotelling的广义均值检验和Bonferroni校正对多个比较结果进行比较。主要观察指标:标准GDx调制和厚度参数,由固定和可变补偿器确定。结果:所有厚度值在统计学上均明显低于使用可变补偿器确定的值,在任何调制参数上均无明显差异。结论:与标准固定补偿器相比,通过扫描激光偏振法测定的个性化前段补偿降低了RNFL厚度值。这可能会缩小正常范围,并增加正常和疾病之间的扫描激光偏光鉴别能力。但是,调制受到的影响较小,因此调制参数对于区分正常和青光眼可能更有用。

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