Delevich Kristen, Tucciarone Jason, Huang Z Josh, Li Bo
Cold Spring Harbor Laboratory, Cold Spring Harbor, New York 11724, Watson School of Biological Sciences, Cold Spring Harbor Laboratory, Cold Spring Harbor, New York 11724, and.
Cold Spring Harbor Laboratory, Cold Spring Harbor, New York 11724, MSTP/Neuroscience Graduate Program, Stony Brook University, Stony Brook, New York 11790.
J Neurosci. 2015 Apr 8;35(14):5743-53. doi: 10.1523/JNEUROSCI.4565-14.2015.
Although the medial prefrontal cortex (mPFC) is classically defined by its reciprocal connections with the mediodorsal thalamic nucleus (MD), the nature of information transfer between MD and mPFC is poorly understood. In sensory thalamocortical pathways, thalamic recruitment of feedforward inhibition mediated by fast-spiking, putative parvalbumin-expressing (PV) interneurons is a key feature that enables cortical neurons to represent sensory stimuli with high temporal fidelity. Whether a similar circuit mechanism is in place for the projection from the MD (a higher-order thalamic nucleus that does not receive direct input from the periphery) to the mPFC is unknown. Here we show in mice that inputs from the MD drive disynaptic feedforward inhibition in the dorsal anterior cingulate cortex (dACC) subregion of the mPFC. In particular, we demonstrate that axons arising from MD neurons directly synapse onto and excite PV interneurons that in turn mediate feedforward inhibition of pyramidal neurons in layer 3 of the dACC. This feedforward inhibition in the dACC limits the time window during which pyramidal neurons integrate excitatory synaptic inputs and fire action potentials, but in a manner that allows for greater flexibility than in sensory cortex. These findings provide a foundation for understanding the role of MD-PFC circuit function in cognition.
尽管内侧前额叶皮质(mPFC)传统上是由其与丘脑背内侧核(MD)的相互连接所定义,但MD与mPFC之间信息传递的本质却知之甚少。在感觉丘脑皮质通路中,由快速放电、假定表达小白蛋白(PV)的中间神经元介导的丘脑前馈抑制的募集是一个关键特征,它使皮质神经元能够以高时间保真度表征感觉刺激。从MD(一个不接受来自外周直接输入的高级丘脑核)到mPFC的投射是否存在类似的回路机制尚不清楚。在这里,我们在小鼠中表明,来自MD的输入驱动mPFC背侧前扣带皮质(dACC)亚区的双突触前馈抑制。具体而言我们证明,MD神经元发出的轴突直接与PV中间神经元形成突触并使其兴奋,而这些PV中间神经元继而介导dACC第3层锥体神经元的前馈抑制。dACC中的这种前馈抑制限制了锥体神经元整合兴奋性突触输入并产生动作电位的时间窗口,但这种方式比感觉皮质具有更大的灵活性。这些发现为理解MD-PFC回路功能在认知中的作用提供了基础。