Berntson A, Taylor W R
Division of Neuroscience and Centre for Visual Sciences, John Curtin School of Medical Research, Australian National University, Canberra, ACT 2600, Australia.
J Physiol. 2000 May 1;524 Pt 3(Pt 3):879-89. doi: 10.1111/j.1469-7793.2000.00879.x.
Voltage-clamp and current-clamp recordings were made from bipolar cells in dark-adapted mouse retinal slices. Light-evoked responses fell into three groups corresponding to the rod bipolar cells, on-cone bipolar cells and off-cone bipolar cells. The morphology of the recorded cells confirmed this classification. Intensity-response relations were well fitted by a Michaelis saturation function with Hill coefficients of 1.15 +/- 0.11 (n = 6) for rod bipolar cells and 2.33 +/- 0.06 (n = 4) for cone inputs onto on-cone bipolar cells. In the absence of antagonists for GABA or glycine receptors, light-evoked synaptic currents for all cells displayed linear current-voltage relations that reversed near 0 mV, indicating that very little inhibition was activated under dark-adapted recording conditions. Saturating light stimuli evoked conductances of 0.81 +/- 0.56 nS (n = 4) in rod bipolar cells and 1.1 +/- 0.8 nS (n = 4) in on-cone bipolar cells. Receptive field widths were estimated by flashing a vertical light bar at various locations along the slice. Rod and on-cone bipolar cells had receptive field widths of 67 +/- 16 micrometer (n = 6) and 43 +/- 7 microm (n = 5), respectively. The maximum spatial resolution of an array of such cone bipolar cells was estimated to be 0.3 cycles deg-1, compared with a maximum resolution of 0.5 cycles deg-1 obtained from behavioural studies in mice. Our results suggest that this limit to spatial resolution could be imposed early in the visual system by the size of the bipolar cell receptive fields.
在暗适应的小鼠视网膜切片中,对双极细胞进行了电压钳和电流钳记录。光诱发反应分为三组,分别对应于视杆双极细胞、on-视锥双极细胞和off-视锥双极细胞。记录细胞的形态证实了这种分类。强度-反应关系通过米氏饱和函数得到很好的拟合,视杆双极细胞的希尔系数为1.15±0.11(n = 6),on-视锥双极细胞上视锥输入的希尔系数为2.33±0.06(n = 4)。在没有GABA或甘氨酸受体拮抗剂的情况下,所有细胞的光诱发突触电流呈现线性电流-电压关系,在接近0 mV时反转,这表明在暗适应记录条件下激活的抑制作用非常小。饱和光刺激在视杆双极细胞中诱发的电导为0.81±0.56 nS(n = 4),在on-视锥双极细胞中为1.1±0.8 nS(n = 4)。通过在切片的不同位置闪烁垂直光条来估计感受野宽度。视杆和on-视锥双极细胞的感受野宽度分别为67±16微米(n = 6)和43±7微米(n = 5)。与从小鼠行为学研究中获得的最大分辨率0.5周/度相比,这种视锥双极细胞阵列的最大空间分辨率估计为0.3周/度。我们的结果表明,这种空间分辨率的限制可能在视觉系统早期就由双极细胞感受野的大小所施加。