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Networking of glucagon-like peptide-1 axons with GnRH neurons in the basal forebrain of male mice revealed by 3DISCO-based immunocytochemistry and optogenetics

机译:基于3Disco的免疫细胞化学和邻戈替莫特的雄性小鼠的基础前脑中具有GNRH神经元的GNRH神经元的胰高血糖素肽-1轴颈的网络

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Glucagon-like peptide-1 (GLP-1) regulates reproduction centrally, although, the neuroanatomical basis of the process is unknown. Therefore, the putative networking of the central GLP-1 and gonadotropin-releasing hormone (GnRH) systems was addressed in male mice using whole mount immunocytochemistry and optogenetics. Enhanced antibody penetration and optical clearing procedures applied to 500-1000 mu m thick basal forebrain slices allowed the simultaneous visualization of the two distinct systems in the basal forebrain. Beaded GLP-1-IR axons innervated about a quarter of GnRH neurons (23.2 +/- 1.4%) forming either single or multiple contacts. GnRH dendrites received a more intense GLP-1 innervation (64.6 +/- 0.03%) than perikarya (35.4 +/- 0.03%). The physiological significance of the innervation was examined by optogenetic activation of channelrhodopsin-2 (ChR2)-expressing axons of preproglucagon (GCG) neurons upon the firing of GnRH neurons by patch clamp electrophysiology in acute brain slices of triple transgenic mice (Gcg-cre/ChR2/GFP-GnRH). High-frequency laser beam stimulation (20 Hz, 10 ms pulse width, 3 mW laser power) of ChR2-expressing GCG axons in the mPOA increased the firing rate of GnRH neurons (by 75 +/- 17.3%, p = 0.0007). Application of the GLP-1 receptor antagonist, Exendin-3-(9-39) (1 mu M), prior to the photo-stimulation, abolished the facilitatory effect. In contrast, low-frequency trains of laser pulses (0.2 Hz, 60 pulses) had no effect on the spontaneous postsynaptic currents of GnRH neurons. The findings indicate a direct wiring of GLP-1 neurons with GnRH cells which route is excitatory for the GnRH system. The pathway may relay metabolic signals to GnRH neurons and synchronize metabolism with reproduction.
机译:胰高血糖素类肽-1(GLP-1)规范中央繁殖,虽然,过程的神经杀菌基础是未知的。因此,使用全山免疫细胞化学和邻光学,在雄性小鼠中寻址了GLP-1和促性腺激素释放激素(GNRH)系统的推定网络。增强的抗体渗透和光学清除程序适用于500-1000 mu m厚的基础前脑切片,允许同时可视化基础前脑中的两个不同系统。串珠GLP-1-IR轴突在形成单一或多个触点的GNRH神经元(23.2 +/- 1.4%)中接管约四分之一。 GNRH Dendrites接受了比Perikarya(35.4 +/- 0.03%)更强烈的GLP-1内脏(64.6 +/- 0.03%)。通过在急性脑切片三重转基因小鼠中的抗癌电生理学在GnRH神经元射击到GnRH神经元的射击后葡萄糖蛋白-2(GCG)神经元的透视率-2(CHR2)-Excring轴突的透明激活来检查金属化活化的生理意义。(GCG-CRE / CHR2 / GFP-GNRH)。在MPOA中,高频激光束刺激(20Hz,10ms脉冲宽度,3mW激光功率,3mW激光功率)增加了GnRH神经元的烧制率(通过75 +/- 17.3%,P = 0.0007)。在光刺激之前,GLP-1受体拮抗剂,Exendin-3-(9-39)(1μm)的应用废除了促进作用。相反,激光脉冲(0.2Hz,60个脉冲)的低频火车对GnRH神经元的自发突触突触线没有影响。该发现表明GLP-1神经元的直接布线与GNRH细胞的GNRH细胞,该途径是GNRH系统的兴奋性。该途径可以将代谢信号中继到GnRH神经元并与再生中的代谢同步。

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