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大鼠内侧内嗅皮层浅层投射神经元的特性
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作者 谭钢 张亮 陈伯成 《广西医科大学学报》 CAS 2013年第5期660-663,共4页
目的:研究大鼠内侧内嗅皮层浅层主要神经元的形态学和电生理特性。方法:选用出生后14~21d的SD乳鼠,麻醉后迅速断头取脑,切取脑片,用全细胞膜片钳技术记录大鼠内侧内嗅皮层内浅层两类主要投射神经元的电生理特性。结果:内嗅皮层... 目的:研究大鼠内侧内嗅皮层浅层主要神经元的形态学和电生理特性。方法:选用出生后14~21d的SD乳鼠,麻醉后迅速断头取脑,切取脑片,用全细胞膜片钳技术记录大鼠内侧内嗅皮层内浅层两类主要投射神经元的电生理特性。结果:内嗅皮层浅层星型神经元呈星状或方枕型,其超极化激活的HCN通道所产生的电位“Sag”和“Ih”电流显著大于三角形的锥体神经元。结论:在膜片钳实验中可以从形态学和电生理特性上区分内嗅皮层浅层两类主要神经元,为两类细胞在海马依赖性学习和记忆的研究提供前期实验基础。 展开更多
关键词 内侧内嗅皮层 HCN通道 Ih电流 星型神经元细胞 锥体神经元细胞 静息膜电位
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Population Bursts of Parvalbumin-Positive Interneurons Inhibit Spiking Pyramidal Cells in Spontaneously Active Cortical in Vitro Networks
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作者 Tom Reimer Werner Baumann Jan Gimsa 《Journal of Chemistry and Chemical Engineering》 2012年第11期1033-1042,共10页
Author present the interplay between different neuron types in the spontaneous electrical activity of low density cortical in vitro networks grown on MEA (multielectrode arrays) of glass neurochips. In 10% of the ne... Author present the interplay between different neuron types in the spontaneous electrical activity of low density cortical in vitro networks grown on MEA (multielectrode arrays) of glass neurochips. In 10% of the networks, the continuously spiking activity of some neurons was inhibited by synchronous bursts or superbursts of the majority of the other neurons. Immunohistochemical staining subsequent to MEA recordings suggest that the synchronously bursting neurons are parvalbumin-positive interneurons with abundant axonal ramifications. Blocking chemical synaptic transmission by Ca2+-free medium revealed that the curbed spiking neurons are intrinsically active. It is assumed that these neurons are pyramidal cells which may be inhibited by groups of synchronously bursting interneurons. It is propose that the observed burst-induced inhibition is an important principle in the temporal organization of neuronal activity as well as in the restriction of excitation, and thus essential for information processing in the cerebral cortex. 展开更多
关键词 NEUROCHIP MEA cerebral cortex cortical networks spontaneous activity inhibitory interaction PARVALBUMIN interneurons.
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Contributions of distinct prefrontal neuron classes in reward processing 被引量:2
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作者 PAN XiaoChuan FAN HongWei +1 位作者 WANG RuBin SAKAGAMI Masamichi 《Science China(Technological Sciences)》 SCIE EI CAS 2014年第6期1257-1268,共12页
The prefrontal cortex(PFC)is thought to be involved in higher order cognitive functions,such as in working memory,abstract categorization,and reward processing.It has been reported that two distinct neuron classes(put... The prefrontal cortex(PFC)is thought to be involved in higher order cognitive functions,such as in working memory,abstract categorization,and reward processing.It has been reported that two distinct neuron classes(putative pyramidal cells and interneurons)in the PFC played different functional roles in neural circuits involved in forming working memory and abstract categories.However,it remains elusive how the two types of neurons process reward information in the PFC.To investigate this issue,the activity of single neurons was extracellularly recorded in the PFC of the monkey performing a reward predicting task.PFC neurons were classified into putative pyramidal cells and interneurons,respectively,based on the waveforms of action potentials.Both the two types of neurons encoded reward information and discriminated two reward conditions(the preferred reward condition vs.the nonpreferred reward condition).However,the putative pyramidal neurons had better and more reliable discriminability than the putative interneurons.Also,the pyramidal cells represented reward information in the preferred reward condition,but not in the nonpreferred reward condition by raising their firing rates relative to the baseline rates.In contrast,the interneurons encoded reward information in the nonpreferred reward condition,but not in the preferred reward condition by inhibiting their discharge rates relative to the baseline rates.These results suggested that the putative pyramidal cells and interneurons had complementary functions in reward processing.These findings may help to clarify individual functions of each type of neurons in PFC neuronal circuits involved in reward processing. 展开更多
关键词 prefrontal cortex REWARD pyramidal neuron INTERNEURON MONKEY single-unit activity
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