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Anterior Thalamic Excitation and Feedforward Inhibition of Presubicular Neurons Projecting to Medial Entorhinal Cortex

机译:前丘脑兴奋和前馈神经元投射到内侧内嗅皮层的前馈抑制。

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摘要

The presubiculum contains head direction cells that are crucial for spatial orientation. Here, we examined the connectivity and strengths of thalamic inputs to presubicular layer 3 neurons projecting to the medial entorhinal cortex in the mouse. We recorded pairs of projection neurons and interneurons while optogenetically stimulating afferent fibers from the anterior thalamic nuclei. Thalamic input differentially affects presubicular neurons: layer 3 pyramidal neurons and fast-spiking parvalbumin-expressing interneurons are directly and monosynaptically activated, with depressing dynamics, whereas somatostatin-expressing interneurons are indirectly excited, during repetitive anterior thalamic nuclei activity. This arrangement ensures that the thalamic excitation of layer 3 cells is often followed by disynaptic inhibition. Feedforward inhibition is largely mediated by parvalbumin interneurons, which have a high probability of connection to presubicular pyramidal cells, and it may enforce temporally precise head direction tuning during head turns. Our data point to the potential contribution of presubicular microcircuits for fine-tuning thalamic head direction signals transmitted to medial entorhinal cortex.>SIGNIFICANCE STATEMENT How microcircuits participate in shaping neural inputs is crucial to understanding information processing in the brain. Here, we show how the presubiculum may process thalamic head directional information before transmitting it to the medial entorhinal cortex. Synaptic inputs from the anterior thalamic nuclei excite layer 3 pyramidal cells and parvalbumin interneurons, which mediate disynaptic feedforward inhibition. Somatostatin interneurons are excited indirectly. Presubicular circuits may switch between two regimens depending on the angular velocity of head movements. During immobility, somatostatin-pyramidal cell interactions could support maintained head directional firing with attractor-like dynamics. During rapid head turns, in contrast, parvalbumin-mediated feedforward inhibition may act to tune the head direction signal transmitted to medial entorhinal cortex.
机译:前房包含对空间定向至关重要的头部方向细胞。在这里,我们检查了丘脑输入到投射到小鼠内侧内嗅皮层的亚丘脑前第3层神经元的连通性和强度。我们记录了成对的投射神经元和中间神经元,同时以光遗传学方式刺激丘脑前核的传入纤维。丘脑输入有不同程度地影响子前神经元:在反复的前丘脑前核活动期间,第3层锥体神经元和快速表达小白蛋白的中间神经元被直接和单突触激活,并具有降低的动力,而表达生长抑素的中间神经元被间接地激发。这种安排确保了丘脑激发第3层细胞后常常会发生突触抑制。前馈抑制作用主要由小白蛋白中间神经元介导,小白蛋白中间神经元与次亚前锥体细胞连接的可能性很高,并且它可能在转头时强制进行时间精确的头向调整。我们的数据指出了亚微前亚微电路可能对微调丘脑头部方向信号传递到内侧内嗅皮层的潜在作用。>意义声明微电路如何参与塑造神经输入对理解大脑中的信息处理至关重要。在这里,我们展示了前丘脑如何在将丘脑头方向信息传输到内侧内嗅皮层之前对其进行处理。来自丘脑前核兴奋层3锥体细胞和小白蛋白中间神经元的突触输入,其介导突触前馈抑制。生长抑素中间神经元被间接激发。子前回路可以根据头部运动的角速度在两种方案之间切换。在固定期间,生长抑素-锥体细胞相互作用可以支持具有吸引子样动力学的维持头部定向发射。相反,在快速头转弯过程中,小白蛋白介导的前馈抑制作用可能是调节传送到内侧内嗅皮层的头方向信号。

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