Synaptic Targets and Cellular Sources of CB1 Cannabinoid Receptor and Vesicular Glutamate Transporter-3 Expressing Nerve Terminals in Relation to GABAergic Neurons in the Human Cerebral Cortex

IF 2.7 4区 医学 Q3 NEUROSCIENCES European Journal of Neuroscience Pub Date : 2025-01-14 DOI:10.1111/ejn.16652
Peter Somogyi, Sawa Horie, Istvan Lukacs, Emily Hunter, Barbara Sarkany, Tim James Viney, James Livermore, Puneet Plaha, Richard Stacey, Olaf Ansorge, Salah El Mestikawy, Qianru Zhao
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Abstract

Cannabinoid receptor 1 (CB1) regulates synaptic transmission through presynaptic receptors in nerve terminals, and its physiological roles are of clinical relevance. The cellular sources and synaptic targets of CB1-expressing terminals in the human cerebral cortex are undefined. We demonstrate a variable laminar pattern of CB1-immunoreactive axons and electron microscopically show that CB1-positive GABAergic terminals make type-2 synapses innervating dendritic shafts (69%), dendritic spines (20%) and somata (11%) in neocortical layers 2–3. Of the CB1-immunopositive GABAergic terminals, 25% were vesicular-glutamate-transporter-3 (VGLUT3)-immunoreactive, suggesting GABAergic/glutamatergic co-transmission on dendritic shafts. In vitro recorded and labelled VGLUT3 or CB1-positive GABAergic interneurons expressed cholecystokinin, vasoactive-intestinal-polypeptide and calretinin, had diverse firing, axons and dendrites, and included rosehip, neurogliaform and basket cells, but not double bouquet or axo-axonic cells. CB1-positive interneurons innervated pyramidal cells and GABAergic interneurons. Glutamatergic synaptic terminals formed type-1 synapses and some were positive for CB1 receptor with a distribution that appeared different from that in GABAergic terminals. From the sampled VGLUT3-positive terminals, 60% formed type-1 synapses with dendritic spines (80%) or shafts (20%) and 52% were also positive for VGLUT1, suggesting intracortical origin. Some VGLUT3-positive terminals were immunopositive for vesicular-monoamine-transporter-2, suggesting 5-HT/glutamate co-transmission. Overall, the results show that CB1 regulates GABA release mainly to dendritic shafts of both pyramidal cells and interneurons and predict CB1-regulated co-release of GABA and glutamate from single cortical interneurons. We also demonstrate the co-existence of multiple vesicular glutamate transporters in a select population of terminals probably originating from cortical neurons and innervating dendritic spines in the human cerebral cortex.

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CB1大麻素受体和泡状谷氨酸转运蛋白-3表达神经末梢与gaba能神经元的突触靶点和细胞来源
大麻素受体1 (Cannabinoid receptor 1, CB1)通过神经末梢突触前受体调控突触传递,其生理作用具有临床意义。人类大脑皮层cb1表达末端的细胞来源和突触靶点尚不清楚。我们证明了cb1免疫反应轴突的可变层流模式,电镜下显示cb1阳性gaba能终端在新皮层2-3层形成支配树突轴(69%)、树突棘(20%)和体细胞(11%)的2型突触。在cb1免疫阳性的gabaergy末端中,25%是囊泡-谷氨酸转运体-3 (VGLUT3)免疫反应性的,表明gabaergy / glutamergy在树突轴上共同传递。体外记录和标记的VGLUT3或cb1阳性gaba能间神经元表达胆囊收缩素、血管活性肠多肽和calretinin,具有不同的发射、轴突和树突,包括玫瑰果细胞、神经胶质细胞和篮状细胞,但不包括双束或轴-轴突细胞。cb1阳性中间神经元支配锥体细胞和gaba能中间神经元。谷氨酸能突触末端形成1型突触,部分CB1受体阳性,其分布与gaba能末端不同。在vglut3阳性的末端,60%形成了树突棘(80%)或轴(20%)的1型突触,52%的VGLUT1也呈阳性,提示其起源于皮层内。部分vglut3阳性终末囊泡单胺转运体-2免疫阳性,提示5-HT/谷氨酸共传递。综上所述,CB1主要调控GABA向锥体细胞和中间神经元的树突轴释放,并预测CB1调控的GABA和谷氨酸在单个皮质中间神经元的共同释放。我们还证明了多种囊泡谷氨酸转运蛋白共存于一个选择的终末群体中,可能起源于皮层神经元和支配人类大脑皮层树突棘的神经。
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来源期刊
European Journal of Neuroscience
European Journal of Neuroscience 医学-神经科学
CiteScore
7.10
自引率
5.90%
发文量
305
审稿时长
3.5 months
期刊介绍: EJN is the journal of FENS and supports the international neuroscientific community by publishing original high quality research articles and reviews in all fields of neuroscience. In addition, to engage with issues that are of interest to the science community, we also publish Editorials, Meetings Reports and Neuro-Opinions on topics that are of current interest in the fields of neuroscience research and training in science. We have recently established a series of ‘Profiles of Women in Neuroscience’. Our goal is to provide a vehicle for publications that further the understanding of the structure and function of the nervous system in both health and disease and to provide a vehicle to engage the neuroscience community. As the official journal of FENS, profits from the journal are re-invested in the neuroscientific community through the activities of FENS.
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