Center for Neural Science, New York University, New York, New York 10003.
J Neurosci. 2013 Sep 25;33(39):15333-42. doi: 10.1523/JNEUROSCI.2385-13.2013.
The medial prefrontal cortex (mPFC) plays a critical role in the control of cognition and emotion. Reciprocal circuits between the mPFC and basolateral amygdala (BLA) are particularly important for emotional control. However, the neurons and synapses that link these brain regions remain largely unknown. Here we examine long-range connections between the mouse mPFC and BLA, using whole-cell recordings, optogenetics, and two-photon microscopy. We first identify two non-overlapping populations of layer 2 pyramidal neurons that directly project to either the BLA or contralateral mPFC. We then show that pyramidal neurons projecting to the BLA receive much stronger excitatory inputs from this same brain region. We next assess the contributions of both presynaptic and postsynaptic mechanisms to this cell-type and input-specific connectivity. We use two-photon mapping to reveal differences in both the synaptic density and subcellular targeting of BLA inputs. Finally, we simulate and experimentally validate how the number, volume, and location of active spines all contribute to preferential synaptic drive. Together, our findings reveal a novel and strong reciprocal circuit that is likely to be important for how the mPFC controls cognition and emotion.
内侧前额叶皮层(mPFC)在认知和情绪控制中起着关键作用。mPFC 和基底外侧杏仁核(BLA)之间的相互回路对于情绪控制尤为重要。然而,将这些脑区联系起来的神经元和突触在很大程度上仍然未知。在这里,我们使用全细胞记录、光遗传学和双光子显微镜检查了小鼠 mPFC 和 BLA 之间的长程连接。我们首先确定了直接投射到 BLA 或对侧 mPFC 的两个不重叠的 2 层锥体神经元群体。然后我们表明,投射到 BLA 的锥体神经元从同一脑区接收到更强的兴奋性输入。接下来,我们评估了前后突触机制对这种细胞类型和输入特异性连接的贡献。我们使用双光子映射来揭示 BLA 输入的突触密度和亚细胞靶向的差异。最后,我们模拟并实验验证了活跃棘突的数量、体积和位置如何共同促进优先的突触驱动。总之,我们的发现揭示了一种新颖而强大的相互回路,这可能对于 mPFC 如何控制认知和情绪很重要。