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阿片类药物和大麻素对躯体抑制的互补调节作用。

Complementary modulation of somatic inhibition by opioids and cannabinoids.

作者信息

Glickfeld Lindsey L, Atallah Bassam V, Scanziani Massimo

机构信息

Neurosciences Graduate Program, Neurobiology Section, University of California, San Diego, La Jolla, California 92093-0634, USA.

出版信息

J Neurosci. 2008 Feb 20;28(8):1824-32. doi: 10.1523/JNEUROSCI.4700-07.2008.

Abstract

Somatic inhibition, which is critical for determining the spike output of principal cells, is mediated by two physiologically distinct classes of GABAergic interneurons called basket cells. In the hippocampus, despite both targeting the somatic membrane of CA1 pyramidal cells, these two classes of basket cells are active at different times. Differential modulation of these two types of basket cells could hence be important for regulating the activity patterns of CA1 pyramidal cells at very specific periods during ongoing activity. Indeed, cannabinoids selectively suppress the output of one class of basket cell. Whether opioids, another major modulator of inhibition in the hippocampus, also selectively suppress somatic inhibition is not known. Here, we show that basket cells are selectively modulated by either opioids or cannabinoids, but not both. We also find that basket cells are integrated into specific inhibitory subnetworks that are themselves under differential control of opioids and cannabinoids. Furthermore, because the two interneuron types are activated at different times, opioids and cannabinoids suppress different epochs of inhibition. This cell-type specific sensitivity to neuromodulators allows for a fine control of the temporal structure of hippocampal activity.

摘要

体细胞抑制对于确定主细胞的动作电位输出至关重要,它由两类生理上不同的γ-氨基丁酸能中间神经元介导,即篮状细胞。在海马体中,尽管这两类篮状细胞都靶向CA1锥体细胞的体细胞,但它们在不同时间活跃。因此,对这两种篮状细胞的差异调节对于在持续活动的非常特定时期调节CA1锥体细胞的活动模式可能很重要。事实上,大麻素选择性地抑制一类篮状细胞的输出。海马体中另一种主要的抑制调节因子阿片类物质是否也选择性地抑制体细胞抑制尚不清楚。在这里,我们表明篮状细胞被阿片类物质或大麻素选择性调节,但不是两者都调节。我们还发现篮状细胞被整合到特定的抑制性子网中,这些子网本身受到阿片类物质和大麻素的差异控制。此外,由于这两种中间神经元类型在不同时间被激活,阿片类物质和大麻素抑制不同时期的抑制。这种对神经调节因子的细胞类型特异性敏感性允许对海马体活动的时间结构进行精细控制。

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