Neuroscience Institute, Department of Neuroscience and Physiology, New York University Grossman School of Medicine, NYU Langone Health, New York, NY 10016, USA.
Institute of Molecular Biology and Biotechnology (IMBB), Foundation for Research and Technology-Hellas (FORTH), Heraklion, Crete 70013, Greece.
Cell Rep. 2023 Jan 31;42(1):111962. doi: 10.1016/j.celrep.2022.111962. Epub 2023 Jan 4.
The lateral entorhinal cortex (LEC) provides multisensory information to the hippocampus, directly to the distal dendrites of CA1 pyramidal neurons. LEC neurons perform important functions for episodic memory processing, coding for contextually salient elements of an environment or experience. However, we know little about the functional circuit interactions between the LEC and the hippocampus. We combine functional circuit mapping and computational modeling to examine how long-range glutamatergic LEC projections modulate compartment-specific excitation-inhibition dynamics in hippocampal area CA1. We demonstrate that glutamatergic LEC inputs can drive local dendritic spikes in CA1 pyramidal neurons, aided by the recruitment of a disinhibitory VIP interneuron microcircuit. Our circuit mapping and modeling further reveal that LEC inputs also recruit CCK interneurons that may act as strong suppressors of dendritic spikes. These results highlight a cortically driven GABAergic microcircuit mechanism that gates nonlinear dendritic computations, which may support compartment-specific coding of multisensory contextual features within the hippocampus.
外侧缰核(LEC)将多感觉信息直接传递给海马体的 CA1 锥体神经元的远端树突。LEC 神经元对情景记忆处理具有重要功能,对环境或体验中的上下文显著元素进行编码。然而,我们对 LEC 和海马体之间的功能回路相互作用知之甚少。我们结合功能回路映射和计算建模,研究长程谷氨酸能 LEC 投射如何调节海马体 CA1 区特定部位的兴奋-抑制动力学。我们证明谷氨酸能 LEC 输入可以在 CA1 锥体神经元中驱动局部树突棘,这得益于抑制性 VIP 中间神经元微电路的募集。我们的回路映射和建模进一步表明,LEC 输入还募集 CCK 中间神经元,它们可能作为树突棘的强抑制剂。这些结果突出了皮层驱动的 GABA 能微电路机制,该机制可以控制非线性树突计算,这可能支持海马体中多感觉上下文特征的特定部位编码。