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内源性大麻素在新皮质中间神经元→锥体神经元突触处介导快速逆行信号传递。

Endocannabinoids mediate rapid retrograde signaling at interneuron right-arrow pyramidal neuron synapses of the neocortex.

作者信息

Trettel Joseph, Levine Eric S

机构信息

Department of Pharmacology and Program in Neuroscience, University of Connecticut Health Center, Farmington, Connecticut 06030, USA.

出版信息

J Neurophysiol. 2003 Apr;89(4):2334-8. doi: 10.1152/jn.01037.2002.

DOI:10.1152/jn.01037.2002
PMID:12686587
Abstract

In the neocortex, inhibitory interneurons tightly regulate the firing patterns and integrative properties of pyramidal neurons (PNs). The endocannabinoid system of the neocortex may play an important role in the activity-dependent regulation of inhibitory (i.e., GABAergic) inputs received by PNs. In the present study, using whole cell recordings from layer 2/3 PNs in slices of mouse sensory cortex, we have identified a role for PN-derived endocannabinoids in the control of afferent inhibitory strength. Pairing evoked inhibitory currents with repeated epochs of postsynaptic depolarization led to a transient suppression of inhibition that was induced by a rise in postsynaptic Ca(2+) and was expressed as a reduction in presynaptic GABA release. An antagonist (AM251) of the type-1 cannabinoid receptor blocked the depolarization-induced suppression of evoked inhibitory postsynaptic currents (eIPSCs), and the cannabinoid WIN55,212-2 reduced eIPSC amplitude and occluded suppression. The degree of WIN55,212-2-mediated inhibition of eIPSCs was strongly correlated with the magnitude of depolarization-induced suppression of the eIPSCs, suggesting that the WIN-sensitive afferents are suppressed by PN depolarization. Moreover, blocking endocannabinoid uptake with AM404 strongly modulated the kinetics and magnitude of eIPSC suppression. We conclude that the release of endocannabinoids from PNs allows for the postsynaptic control of presynaptic inhibition and could have profound consequences for the integrative properties of neocortical PNs.

摘要

在新皮层中,抑制性中间神经元紧密调节锥体神经元(PNs)的放电模式和整合特性。新皮层的内源性大麻素系统可能在PNs接收的抑制性(即γ-氨基丁酸能)输入的活动依赖性调节中发挥重要作用。在本研究中,我们利用小鼠感觉皮层切片中第2/3层PNs的全细胞记录,确定了PNs衍生的内源性大麻素在控制传入抑制强度方面的作用。将诱发的抑制性电流与重复的突触后去极化时期配对,导致抑制的短暂抑制,这是由突触后Ca(2+)升高诱导的,并表现为突触前γ-氨基丁酸释放的减少。1型大麻素受体的拮抗剂(AM251)阻断了去极化诱导的诱发抑制性突触后电流(eIPSCs)的抑制,并且大麻素WIN55,212-2降低了eIPSC幅度并阻断了抑制。WIN55,212-2介导的对eIPSCs的抑制程度与去极化诱导的对eIPSCs的抑制幅度密切相关,表明WIN敏感的传入神经被PN去极化所抑制。此外,用AM404阻断内源性大麻素摄取强烈调节了eIPSC抑制的动力学和幅度。我们得出结论,PNs释放内源性大麻素允许对突触前抑制进行突触后控制,并且可能对新皮层PNs的整合特性产生深远影响。

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