首页> 美国卫生研究院文献>The Journal of Neuroscience >Vision Loss Shifts the Balance of Feedforward and Intracortical Circuits in Opposite Directions in Mouse Primary Auditory and Visual Cortices
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Vision Loss Shifts the Balance of Feedforward and Intracortical Circuits in Opposite Directions in Mouse Primary Auditory and Visual Cortices

机译:视力丧失在小鼠原发性听觉和视觉皮层的相反方向上移动前馈和皮层内电路的平衡

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摘要

Loss of a sensory modality leads to widespread changes in synaptic function across sensory cortices, which are thought to be the basis for cross-modal adaptation. Previous studies suggest that experience-dependent cross-modal regulation of the spared sensory cortices may be mediated by changes in cortical circuits. Here, we report that loss of vision, in the form of dark exposure (DE) for 1 week, produces laminar-specific changes in excitatory and inhibitory circuits in the primary auditory cortex (A1) of adult mice to promote feedforward (FF) processing and also strengthens intracortical inputs to primary visual cortex (V1). Specifically, DE potentiated FF excitatory synapses from layer 4 (L4) to L2/3 in A1 and recurrent excitatory inputs in A1–L4 in parallel with a reduction in the strength of lateral intracortical excitatory inputs to A1–L2/3. This suggests a shift in processing in favor of FF information at the expense of intracortical processing. Vision loss also strengthened inhibitory synaptic function in L4 and L2/3 of A1, but via laminar specific mechanisms. In A1–L4, DE specifically potentiated the evoked synaptic transmission from parvalbumin-positive inhibitory interneurons to principal neurons without changes in spontaneous miniature IPSCs (mIPSCs). In contrast, DE specifically increased the frequency of mIPSCs in A1–L2/3. In V1, FF excitatory inputs were unaltered by DE, whereas lateral intracortical connections in L2/3 were strengthened, suggesting a shift toward intracortical processing. Our results suggest that loss of vision produces distinct circuit changes in the spared and deprived sensory cortices to shift between FF and intracortical processing to allow adaptation.
机译:感觉模态的丧失导致跨感觉皮质的突触功能的广泛变化,这被认为是交叉模态适应的基础。以前的研究表明,多余的感觉皮质的经验依赖的交叉模式调节可能是由皮质回路的变化介导的。在这里,我们报告失明,以黑暗暴露(DE)形式持续1周,会在成年小鼠的初级听觉皮层(A1)中产生兴奋性和抑制性回路的层流特定变化,从而促进前馈(FF)加工并且还加强了对初级视觉皮层(V1)的皮质内输入。具体来说,DE增强了A1中第4层(L4)到L2 / 3的FF兴奋性突触,而A1-L4中的反复性兴奋性输入同时降低了侧向皮层内兴奋性输入至A1-L2 / 3的强度。这表明以皮质内处理为代价,有利于FF信息的处理发生了转变。视力丧失还增强了A1的L4和L2 / 3的抑制性突触功能,但通过层流特异性机制。在A1-L4中,DE专门增强了从小白蛋白阳性抑制性中间神经元到主要神经元的诱发突触传递,而没有改变自发微型IPSC(mIPSC)。相反,DE专门增加了A1-L2 / 3中mIPSC的频率。在V1中,FF的兴奋性输入不受DE的影响,而L2 / 3的侧向皮层内连接得到增强,表明向皮层内加工的转变。我们的结果表明,视力丧失会在多余的和剥夺的感觉皮层中产生明显的电路改变,从而在FF和皮层内处理之间转移,从而实现适应。

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