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嗅觉皮层中生长抑素中间神经元的抑制作用

Inhibition by Somatostatin Interneurons in Olfactory Cortex.

作者信息

Large Adam M, Kunz Nicholas A, Mielo Samantha L, Oswald Anne-Marie M

机构信息

Department of Neuroscience and Center for the Neural Basis of Cognition, University of Pittsburgh Pittsburgh, PA, USA.

出版信息

Front Neural Circuits. 2016 Aug 17;10:62. doi: 10.3389/fncir.2016.00062. eCollection 2016.

Abstract

Inhibitory circuitry plays an integral role in cortical network activity. The development of transgenic mouse lines targeting unique interneuron classes has significantly advanced our understanding of the functional roles of specific inhibitory circuits in neocortical sensory processing. In contrast, considerably less is known about the circuitry and function of interneuron classes in piriform cortex, a paleocortex responsible for olfactory processing. In this study, we sought to utilize transgenic technology to investigate inhibition mediated by somatostatin (SST) interneurons onto pyramidal cells (PCs), parvalbumin (PV) interneurons, and other interneuron classes. As a first step, we characterized the anatomical distributions and intrinsic properties of SST and PV interneurons in four transgenic lines (SST-cre, GIN, PV-cre, and G42) that are commonly interbred to investigate inhibitory connectivity. Surprisingly, the distributions SST and PV cell subtypes targeted in the GIN and G42 lines were sparse in piriform cortex compared to neocortex. Moreover, two-thirds of interneurons recorded in the SST-cre line had electrophysiological properties similar to fast spiking (FS) interneurons rather than regular (RS) or low threshold spiking (LTS) phenotypes. Nonetheless, like neocortex, we find that SST-cells broadly inhibit a number of unidentified interneuron classes including putatively identified PV cells and surprisingly, other SST cells. We also confirm that SST-cells inhibit pyramidal cell dendrites and thus, influence dendritic integration of afferent and recurrent inputs to the piriform cortex. Altogether, our findings suggest that SST interneurons play an important role in regulating both excitation and the global inhibitory network during olfactory processing.

摘要

抑制性神经回路在皮层网络活动中起着不可或缺的作用。针对独特中间神经元类别的转基因小鼠品系的开发,极大地推动了我们对新皮层感觉处理中特定抑制性回路功能作用的理解。相比之下,对于梨状皮层(一种负责嗅觉处理的古皮层)中中间神经元类别的神经回路和功能,我们所知甚少。在本研究中,我们试图利用转基因技术来研究生长抑素(SST)中间神经元对锥体细胞(PC)、小白蛋白(PV)中间神经元和其他中间神经元类别的抑制作用。作为第一步,我们对四个常用于杂交以研究抑制性连接的转基因品系(SST-cre、GIN、PV-cre和G42)中SST和PV中间神经元的解剖分布和内在特性进行了表征。令人惊讶的是,与新皮层相比,GIN和G42品系中靶向的SST和PV细胞亚型在梨状皮层中的分布较为稀疏。此外,在SST-cre品系中记录的三分之二的中间神经元具有类似于快速发放(FS)中间神经元的电生理特性,而不是规则(RS)或低阈值发放(LTS)表型。尽管如此,与新皮层一样,我们发现SST细胞广泛抑制多种未明确的中间神经元类别,包括假定已识别的PV细胞,令人惊讶的是,还包括其他SST细胞。我们还证实SST细胞抑制锥体细胞树突,从而影响传入和反馈输入到梨状皮层的树突整合。总之,我们的研究结果表明,SST中间神经元在嗅觉处理过程中对调节兴奋和全局抑制性网络起着重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/621b/4987344/75e76bb91978/fncir-10-00062-g0001.jpg

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