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长时程抑制性突触传递的抑制作用由刺激时间依赖性可塑性诱导,需要内源性大麻素和毒蕈碱受体的共同激活。

Long-term depression of inhibitory synaptic transmission induced by spike-timing dependent plasticity requires coactivation of endocannabinoid and muscarinic receptors.

机构信息

Centro de Neurobiología y Plasticidad Cerebral, Departamento de Fisiología, Facultad de Ciencias, Universidad Valparaíso, Chile.

出版信息

Hippocampus. 2013 Dec;23(12):1439-52. doi: 10.1002/hipo.22196. Epub 2013 Sep 14.

Abstract

The precise timing of pre-postsynaptic activity is vital for the induction of long-term potentiation (LTP) or depression (LTD) at many central synapses. We show in synapses of rat CA1 pyramidal neurons in vitro that spike timing dependent plasticity (STDP) protocols that induce LTP at glutamatergic synapses can evoke LTD of inhibitory postsynaptic currents or STDP-iLTD. The STDP-iLTD requires a postsynaptic Ca(2+) increase, a release of endocannabinoids (eCBs), the activation of type-1 endocananabinoid receptors and presynaptic muscarinic receptors that mediate a decreased probability of GABA release. In contrast, the STDP-iLTD is independent of the activation of nicotinic receptors, GABAB Rs and G protein-coupled postsynaptic receptors at pyramidal neurons. We determine that the downregulation of presynaptic Cyclic adenosine monophosphate/protein Kinase A pathways is essential for the induction of STDP-iLTD. These results suggest a novel mechanism by which the activation of cholinergic neurons and retrograde signaling by eCBs can modulate the efficacy of GABAergic synaptic transmission in ways that may contribute to information processing and storage in the hippocampus.

摘要

在许多中枢突触中,前突触和后突触活动的精确时间对长时程增强(LTP)或长时程抑制(LTD)的诱导至关重要。我们在体外培养的大鼠 CA1 锥体神经元的突触中表明,在谷氨酸能突触中诱导 LTP 的依赖于尖峰时间的可塑性(STDP)方案可以引发抑制性突触后电流的 LTD 或 STDP-iLTD。STDP-iLTD 需要突触后 Ca(2+)增加、内源性大麻素(eCBs)的释放、1 型内源性大麻素受体的激活和介导 GABA 释放概率降低的突触前毒蕈碱受体。相比之下,STDP-iLTD 不依赖于烟碱型受体、GABAB Rs 和锥体神经元的 G 蛋白偶联突触后受体的激活。我们确定,突触前环磷酸腺苷/蛋白激酶 A 途径的下调对于诱导 STDP-iLTD 是必不可少的。这些结果表明了一种新的机制,即胆碱能神经元的激活和 eCB 的逆行信号可以调节 GABA 能突触传递的效能,这可能有助于海马体中的信息处理和存储。

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