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Organization of inhibitory synaptic circuits in layer 4 of ferret visual cortex related to direction preference maps

机译:与方向偏好图有关的雪貂视觉皮层第4层中抑制性突触回路的组织

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Simple cells in layer 4 of the primary visual cortex are the first neurons in the visual pathway showing orientation and direction selective responses. The precise role of intracortical excitatory and inhibitory connections in generating these properties is still unclear. Intracortical inhibitory processes have been shown to be crucial to the generation of direction selective responses. In vivo, excitatory and inhibitory layer 4 cells differ in their receptive field properties: excitatory (regular spiking) neurons are orientation- and direction selective whereas inhibitory (fast spiking) neurons are orientation-, but poorly direction tuned. This difference in direction tuning could be due to differences in intracortical inhibitory synaptic input patterns. To address this question we have optically recorded orientation and direction maps from ferret primary visual cortex. Subsequently the imaged brain region was removed and tangential slices prepared. Whole cell patch clamp recordings from individual layer 4 neurons were done and synaptic inputs were scanned by local photolysis of caged glutamate. Postsynaptic cells were filled with biocytin and histological sections were aligned with the synaptic input maps and the optical images obtained in vivo to determine the spatial distribution of presynaptic inputs. The majority (68%) of excitatory inputs to both spiny (excitatory) and aspiny (inhibitory) stellate cells originated from cortical regions preferring the same orientation and direction as the postsynaptic cell. However, the inhibitory input patterns were significantly different for the two cell populations: excitatory layer 4 cells received two populations of inhibitory inputs, about 50% originated in iso-direction domains whereas the remaining inputs originated in cortical regions preferring the opposite direction of stimulus motion. This indicates that specific inhibitory connections originating in regions tuned to the opposite direction are important for direction tuning of cortical neurons and that differences in response properties in different populations of cortical neurons might be explained by their different intracortical connectivity patterns.
机译:主要视觉皮层第4层中的简单细胞是视觉通路中显示方向和方向选择性反应的第一个神经元。尚不清楚皮质内兴奋性和抑制性连接在产生这些特性中的确切作用。皮质内抑制过程已被证明对方向选择性反应的产生至关重要。在体内,兴奋性和抑制性第4层细胞在感受野特性上有所不同:兴奋性(规则峰值)神经元具有方向和方向选择性,而抑制性(快速峰值)神经元具有方向性,但方向调整较差。方向调整的这种差异可能是由于皮质内抑制突触输入模式的差异所致。为了解决这个问题,我们从雪貂的初级视觉皮层中光学记录了方向图和方向图。随后,去除成像的大脑区域并准备切向切片。完成了来自单个第4层神经元的全细胞膜片钳记录,并通过笼中谷氨酸的局部光解扫描了突触输入。突触后细胞充满生物胞嘧啶,组织切片与突触输入图对齐,并在体内获得光学图像,以确定突触前输入的空间分布。棘突(兴奋性)和棘突(抑制性)星状细胞的大多数兴奋性输入都来自皮质区域,它们的方向和方向与突触后细胞相同。但是,两种细胞群的抑制性输入模式显着不同:兴奋性第4层细胞接受了两种抑制性输入,大约50%的细胞来自等方向域,而其余的输入来自皮质区域,而它们的刺激方向相反。这表明起源于调谐到相反方向的区域的特定抑制性连接对于皮层神经元的方向调节很重要,并且不同皮层神经元群体的响应特性差异可能由其不同的皮层内连通性模式来解释。

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