Nasretdinov Azat, Jappy David, Vazetdinova Alina, Valiullina-Rakhmatullina Fliza, Rozov Andrei
Laboratory of Neurobiology, Kazan Federal University, Kazan, Russia.
Federal Center of Brain Research and Neurotechnologies, Moscow, Russia.
Front Cell Neurosci. 2023 Dec 7;17:1327909. doi: 10.3389/fncel.2023.1327909. eCollection 2023.
Feed-forward inhibition is vital in the transfer and processing of synaptic information within the hippocampal-entorhinal loop by controlling the strength and direction of excitation flow between different neuronal populations and individual neurons. While the cellular targets in the hippocampus that receive excitatory inputs from the entorhinal cortex have been well studied, and the role of feedforward inhibitory neurons has been attributed to neurogliafom cells, the cortical interneurons providing feed-forward control over receiving layer V in the entorhinal cortex remain unknown. We used sharp-wave ripple oscillations as a natural excitatory stimulus of the entorhinal cortex, driven by the hippocampus, to study the function of synaptic interactions between neurons in the deep layers of the entorhinal cortex. We discovered that CB1R-expressing interneurons in the deep layers of the entorhinal cortex constitute the major relay station that translates hippocampal excitation into efficient inhibition of cortical pyramidal cells. The impact of inhibition provided by these interneurons is under strong endocannabinoid control and can be drastically reduced either by enhanced activity of postsynaptic targets or by stress-induced elevation of cannabinoids.
前馈抑制在海马-内嗅环路内突触信息的传递和处理过程中至关重要,它通过控制不同神经元群体和单个神经元之间兴奋流的强度和方向来实现这一功能。虽然海马中接受内嗅皮质兴奋性输入的细胞靶点已得到充分研究,并且前馈抑制性神经元的作用已归因于神经胶质样细胞,但在内嗅皮质中对第V层接受层提供前馈控制的皮质中间神经元仍然未知。我们利用由海马驱动的尖波涟漪振荡作为内嗅皮质的自然兴奋性刺激,来研究内嗅皮质深层神经元之间突触相互作用的功能。我们发现,内嗅皮质深层中表达CB1R的中间神经元构成了主要中继站,将海马的兴奋转化为对皮质锥体细胞的有效抑制。这些中间神经元提供的抑制作用受到强大的内源性大麻素控制,并且可以通过突触后靶点活性增强或应激诱导的大麻素升高而大幅降低。