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小鼠内侧前额叶皮层第1层中间神经元的异质性

Heterogeneity of Layer 1 Interneurons in the Mouse Medial Prefrontal Cortex.

作者信息

Shen Chen, Cui Wanpeng, Xiong Wen-Cheng, Mei Lin

机构信息

Department of Neurosciences, School of Medicine, Case Western Reserve University, Cleveland, Ohio, USA.

Louis Stokes Cleveland Veterans Affairs Medical Center, Cleveland, Ohio, USA.

出版信息

J Comp Neurol. 2025 Mar;533(3):e70030. doi: 10.1002/cne.70030.

Abstract

Cortical Layer 1 (L1) acts as a critical relay for processing long-range inputs. GABAergic inhibitory interneurons (INs) in this layer (Layer 1 interneurons [L1INs]) function as inhibitory gates, regulating these inputs and modulating the activity of deeper cortical layers. However, their characteristics and circuits in the medial prefrontal cortex (mPFC) remain poorly understood. Using biocytin labeling, we identified three distinct morphological types of mPFC L1INs: neurogliaform cells (NGCs), elongated NGCs (eNGCs), and single-bouquet cell-like (SBC-like) cells. Whole-cell recordings revealed distinct firing patterns across these subtypes: NGCs and eNGCs predominantly exhibited late-spiking (LS) patterns, and SBC-like cells displayed a higher prevalence of non-LS (NLS) patterns. We observed both electrical and chemical connections among mPFC L1INs. Optogenetic activation of NDNF L1INs demonstrated broad inhibitory effects on deeper layer neurons. The strength of inhibition on pyramidal neurons (PyNs) and INs displayed layer-specific preference. These findings highlight the functional diversity of L1INs in modulating mPFC circuits and suggest their potential role in supporting higher order cognitive functions.

摘要

皮层第1层(L1)作为处理远距离输入的关键中继站。该层中的γ-氨基丁酸(GABA)能抑制性中间神经元(INs)(第1层中间神经元[L1INs])起到抑制门的作用,调节这些输入并调节更深层皮层的活动。然而,它们在内侧前额叶皮层(mPFC)中的特征和回路仍知之甚少。通过生物素标记,我们确定了mPFC L1INs的三种不同形态类型:神经胶质样细胞(NGC)、细长神经胶质样细胞(eNGC)和单束状细胞样(SBC样)细胞。全细胞记录揭示了这些亚型之间不同的放电模式:NGC和eNGC主要表现出晚发放(LS)模式,而SBC样细胞表现出更高比例的非LS(NLS)模式。我们观察到mPFC L1INs之间存在电连接和化学连接。对NDNF L1INs的光遗传学激活显示出对深层神经元具有广泛的抑制作用。对锥体神经元(PyNs)和INs的抑制强度表现出层特异性偏好。这些发现突出了L1INs在调节mPFC回路中的功能多样性,并表明它们在支持高阶认知功能方面的潜在作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b26f/11877257/bfea977baf2e/CNE-533-e70030-g002.jpg

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