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源自梨状皮层半月细胞的皮层内回路的光遗传学图谱

Optogenetic Mapping of Intracortical Circuits Originating from Semilunar Cells in the Piriform Cortex.

作者信息

Choy Julian M C, Suzuki Norimitsu, Shima Yasuyuki, Budisantoso Timotheus, Nelson Sacha B, Bekkers John M

机构信息

Eccles Institute of Neuroscience, The John Curtin School of Medical Research, The Australian National University, Canberra, ACT 2601, Australia.

Department of Biology and National Center for Behavioral Genomics, Brandeis University, Waltham, MA 02453, USA.

出版信息

Cereb Cortex. 2017 Jan 1;27(1):589-601. doi: 10.1093/cercor/bhv258.

Abstract

Despite its comparatively simple trilaminar architecture, the primary olfactory (piriform) cortex of mammals is capable of performing sophisticated sensory processing, an ability that is thought to depend critically on its extensive associational (intracortical) excitatory circuits. Here, we used a novel transgenic mouse model and optogenetics to measure the connectivity of associational circuits that originate in semilunar (SL) cells in layer 2a of the anterior piriform cortex (aPC). We generated a mouse line (48L) in which channelrhodopsin-2 (ChR) could be selectively expressed in a subset of SL cells. Light-evoked excitatory postsynaptic currents (EPSCs) could be evoked in superficial pyramidal cells (17.4% of n = 86 neurons) and deep pyramidal cells (33.3%, n = 9) in the aPC, but never in ChR- SL cells (0%, n = 34). Thus, SL cells monosynaptically excite pyramidal cells, but not other SL cells. Light-evoked EPSCs were also selectively elicited in 3 classes of GABAergic interneurons in layer 3 of the aPC. Our results show that SL cells are specialized for providing feedforward excitation of specific classes of neurons in the aPC, confirming that SL cells comprise a functionally distinctive input layer.

摘要

尽管哺乳动物的初级嗅觉(梨状)皮质具有相对简单的三层结构,但其仍能够执行复杂的感觉处理,这种能力被认为关键取决于其广泛的联合(皮质内)兴奋性回路。在此,我们使用一种新型转基因小鼠模型和光遗传学方法来测量源自前梨状皮质(aPC)2a层半月形(SL)细胞的联合回路的连接性。我们构建了一个小鼠品系(48L),其中通道视紫红质-2(ChR)可在一部分SL细胞中选择性表达。光诱发的兴奋性突触后电流(EPSCs)可在前梨状皮质的浅层锥体细胞(n = 86个神经元中的17.4%)和深层锥体细胞(33.3%,n = 9)中诱发,但在ChR-SL细胞中从未诱发(0%,n = 34)。因此,SL细胞单突触地兴奋锥体细胞,但不兴奋其他SL细胞。光诱发的EPSCs也在前梨状皮质3层的3类GABA能中间神经元中被选择性诱发。我们的结果表明,SL细胞专门用于对前梨状皮质中的特定类型神经元提供前馈兴奋,证实SL细胞构成一个功能独特的输入层。

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