Harkany Tibor, Holmgren Carl, Härtig Wolfgang, Qureshi Tayyaba, Chaudhry Farrukh A, Storm-Mathisen Jon, Dobszay Marton B, Berghuis Paul, Schulte Gunnar, Sousa Kyle M, Fremeau Robert T, Edwards Robert H, Mackie Ken, Ernfors Patrik, Zilberter Yuri
Unit of Molecular Neurobiology, Department of Medical Biochemistry and Biophysics, Karolinska Institutet, S-17177 Stockholm, Sweden.
J Neurosci. 2004 May 26;24(21):4978-88. doi: 10.1523/JNEUROSCI.4884-03.2004.
Recent studies implicate dendritic endocannabinoid release from subsynaptic dendrites and subsequent inhibition of neurotransmitter release from nerve terminals as a means of retrograde signaling in multiple brain regions. Here we show that type 1 cannabinoid receptor-mediated endocannabinoid signaling is not involved in the retrograde control of synaptic efficacy at inhibitory synapses between fast-spiking interneurons and pyramidal cells in layer 2/3 of the neocortex. Vesicular neurotransmitter transporters, such as vesicular glutamate transporters (VGLUTs) 1 and 2, are localized to presynaptic terminals and accumulate neurotransmitters into synaptic vesicles. A third subtype of VGLUTs (VGLUT3) was recently identified and found localized to dendrites of various cell types. We demonstrate, using multiple immunofluorescence labeling and confocal laser-scanning microscopy, that VGLUT3-like immunoreactivity is present in dendrites of layer 2/3 pyramidal neurons in the rat neocortex. Electron microscopy analysis confirmed that VGLUT3-like labeling is localized to vesicular structures, which show a tendency to accumulate in close proximity to postsynaptic specializations in dendritic shafts of pyramidal cells. Dual whole-cell recordings revealed that retrograde signaling between fast-spiking interneurons and pyramidal cells was enhanced under conditions of maximal efficacy of VGLUT3-mediated glutamate uptake, whereas it was reduced when glutamate uptake was inhibited by incrementing concentrations of the nonselective VGLUT inhibitor Evans blue (0.5-5.0 microm) or intracellular Cl- concentrations (4-145 mm). Our results present further evidence that dendritic vesicular glutamate release, controlled by novel VGLUT isoforms, provides fast negative feedback at inhibitory neocortical synapses, and demonstrate that glutamate can act as a retrograde messenger in the CNS.
近期研究表明,突触下树突释放内源性大麻素以及随后抑制神经末梢释放神经递质,是多个脑区逆行信号传导的一种方式。在此我们表明,1型大麻素受体介导的内源性大麻素信号传导不参与新皮层第2/3层快速放电中间神经元与锥体细胞之间抑制性突触处突触效能的逆行控制。囊泡神经递质转运体,如囊泡谷氨酸转运体(VGLUTs)1和2,定位于突触前终末,并将神经递质积累到突触小泡中。最近鉴定出VGLUTs的第三种亚型(VGLUT3),并发现其定位于多种细胞类型的树突中。我们使用多重免疫荧光标记和共聚焦激光扫描显微镜证明,VGLUT3样免疫反应性存在于大鼠新皮层第2/3层锥体细胞的树突中。电子显微镜分析证实,VGLUT3样标记定位于囊泡结构,这些结构倾向于在锥体细胞树突干中靠近突触后特化的位置积累。双细胞全记录显示,在VGLUT3介导的谷氨酸摄取最大效能的条件下,快速放电中间神经元与锥体细胞之间的逆行信号传导增强,而当通过增加非选择性VGLUT抑制剂伊文思蓝(0.5 - 5.0微米)浓度或细胞内氯离子浓度(4 - 145毫米)抑制谷氨酸摄取时,逆行信号传导减弱。我们的结果进一步证明,由新型VGLUT异构体控制的树突囊泡谷氨酸释放,在抑制性新皮层突触处提供快速负反馈,并证明谷氨酸可作为中枢神经系统中的逆行信使。