Kariman Gamal Tamam Ahmed, Shimada Yoshiaki, Horiguchi Masayuki
Department of Ophthalmology, Sohag University, Sohag, Egypt.
Department of Ophthalmology, Fujita Health University Banbuntane Hotokukai Hospital, Otobashi 3-6-10, Nakagawa-Ku, Nagoya, Aichi, 454-8509, Japan.
Doc Ophthalmol. 2016 Oct;133(2):121-128. doi: 10.1007/s10633-016-9562-x. Epub 2016 Sep 21.
To investigate the characteristics of the late foveal response component (lfrc) that presents on the first slice of the second-order kernel (K2.1) in multifocal electroretinograms (mfERGs).
mfERGs with 37 hexagonal stimulus elements were obtained from 27 healthy subjects under a stimulus intensity of 2.67 cds/m, base rate of 75 Hz, and a net recording time of 1 min 49.2 s, using bipolar contact lens electrodes. The responses on the centermost hexagon (with a diameter of 4.5°-5.2°) were designated as foveal mfERGs.
The foveal mfERG of the first-order kernel (K1) was shaped similarly to the K1 of the surrounding mfERGs. The foveal mfERG of K2.1 differed from the K2.1s of the surrounding mfERGs. This difference varied among subjects; however, the potential (0.34 ± 0.10 µV: mean ± SD) of the lfrc acutely changed at approximately 50 ms (range 48.56 ± 1.02-56.86 ± 1.99 ms). Whereas the amplitudes of the other major components of K1 and K2.1 significantly decreased with increasing refractive error, the amplitude of lfrc was not significantly correlated with refraction in this cohort.
The lfrc was obtained only on the centermost hexagon within an appropriate recording time (<2 min). This finding reflects the particular structure and peculiar adaptiveness of the fovea, a specialized area of the human retina, and enables the estimation of foveal function in clinical practice.
研究多焦视网膜电图(mfERG)中二阶核(K2.1)第一切片上出现的中央凹晚期反应成分(lfrc)的特征。
使用双极隐形眼镜电极,从27名健康受试者身上获得了具有37个六边形刺激单元的mfERG,刺激强度为2.67cds/m,基础频率为75Hz,净记录时间为1分49.2秒。将最中心六边形(直径4.5°-5.2°)上的反应指定为中央凹mfERG。
一阶核(K1)的中央凹mfERG形状与周围mfERG的K1相似。K2.1的中央凹mfERG与周围mfERG的K2.1不同。这种差异在受试者之间有所不同;然而,lfrc的电位(0.34±0.10µV:平均值±标准差)在大约50ms(范围48.56±1.02-56.86±1.99ms)时急剧变化。虽然K1和K2.1的其他主要成分的振幅随着屈光不正的增加而显著降低,但在该队列中,lfrc的振幅与屈光度没有显著相关性。
lfrc仅在适当的记录时间(<2分钟)内最中心的六边形上获得。这一发现反映了人视网膜特殊区域中央凹的特殊结构和独特适应性,并能够在临床实践中评估中央凹功能。