Binns A M, Mortlock K E, North R V
School of Optometry and Vision Sciences, Cardiff University, Maindy Road, Cardiff CF24 4LU, UK.
Doc Ophthalmol. 2011 Feb;122(1):39-52. doi: 10.1007/s10633-010-9257-7. Epub 2011 Jan 18.
The aim of this study was to investigate the relationship between stimulus intensity and response amplitude for the photopic negative response (PhNR) of the flash ERG. Specific aims were (i) to determine whether a generalized Naka-Rushton function provided a good fit to the intensity-response data and (ii) to determine the variability of the parameters of the best-fitting Naka-Rushton models. Electroretinograms were recorded in 18 participants, on two occasions, using both DTL fibre and skin active electrodes, in response to Ganzfeld red stimuli (Lee filter "terry red") ranging in stimulus strength from -1.30 to 0.53 log cd.s.m(-2) (0.28-2.11 log phot td.s) presented over a steady blue background (Schott glass filter BG28; 3.9 log scot td). PhNR amplitude was measured from b-wave peak and from pre-stimulus baseline. The Naka-Rushton function was fitted to all intensity-response data, and parameters, 'n', 'Vmax' and 'K' were obtained. Coefficients of variation (CoV), and inter-ocular and inter-session limits of agreement (LoA) were calculated for both Naka-Rushton parameters. A generalized Naka-Rushton function was found to provide a good fit to the intensity-response data, except at the highest stimulus intensity, where a reduction in amplitude occurred in many individuals. The 'Vmax' parameter was less variable than 'K' for all intensity-response data. Variability was lower for DTL than skin electrodes, and for peak-to-trough PhNR measurements, compared to baseline-to-trough. This study has demonstrated for the first time that the Naka-Rushton model provides a useful means of quantifying the intensity-response relationship of the PhNR.
本研究的目的是调查闪光视网膜电图明视负反应(PhNR)的刺激强度与反应幅度之间的关系。具体目标为:(i)确定广义的中谷-拉什顿函数是否能很好地拟合强度-反应数据;(ii)确定最佳拟合中谷-拉什顿模型参数的变异性。对18名参与者在两种情况下使用DTL纤维电极和皮肤活性电极记录视网膜电图,以响应在稳定蓝色背景(肖特玻璃滤光片BG28;3.9 log scot td)上呈现的强度范围为-1.30至0.53 log cd·s·m⁻²(0.28 - 2.11 log phot td·s)的全视野红色刺激(李氏滤光片“特里红”)。PhNR幅度从b波峰值和刺激前基线进行测量。将中谷-拉什顿函数拟合到所有强度-反应数据,并获得参数“n”、“Vmax”和“K”。计算了中谷-拉什顿两个参数的变异系数(CoV)以及眼间和不同测量时段的一致性界限(LoA)。发现广义的中谷-拉什顿函数能很好地拟合强度-反应数据,但在最高刺激强度时除外,此时许多个体的反应幅度出现下降。对于所有强度-反应数据,“Vmax”参数的变异性小于“K”。与皮肤电极相比,DTL电极的变异性更低,并且与基线到波谷的测量相比,峰到谷的PhNR测量变异性更低。本研究首次证明中谷-拉什顿模型为量化PhNR的强度-反应关系提供了一种有用的方法。