首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >In situ coexpression of glucose and monocarboxylate transporter mRNAs in metabolic-sensitive caudal dorsal vagal complex catecholaminergic neurons: transcriptional reactivity to insulin-induced hypoglycemia and caudal hindbrain glucose or lactate repletion during insulin-induced hypoglycemia.
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In situ coexpression of glucose and monocarboxylate transporter mRNAs in metabolic-sensitive caudal dorsal vagal complex catecholaminergic neurons: transcriptional reactivity to insulin-induced hypoglycemia and caudal hindbrain glucose or lactate repletion during insulin-induced hypoglycemia.

机译:代谢敏感的尾背迷走神经复杂儿茶酚胺能神经元中葡萄糖和单羧酸转运蛋白mRNA的原位共表达:胰岛素诱导的低血糖过程中对胰岛素诱导的低血糖和尾后脑葡萄糖或乳酸充盈的转录反应。

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摘要

The neurochemical phenotype(s) of metabolic sensing neurons in the dorsal vagal complex (DVC) remains unclear. These studies utilized single-cell quantitative real-time RT-PCR, in conjunction with laser-catapult microdissection, to address the hypothesis that DVC A2 neurons express genes that encode the characterized metabolic transducers, e.g. glucokinase (GCK) and the energy-dependent potassium channel, K(ATP). Studies show that either glucose or lactate alters synaptic firing of DVC chemosensory neurons, and that delivery of the latter fuel into the caudal hindbrain amplifies insulin-induced hypoglycemia (IIH) and elevates neuronal glucose and monocarboxylate transporter, GCK, and sulfonylurea-1 mRNA in the DVC. We thus examined the additional premise that IIH modifies A2 substrate transporter and metabolic transducer gene profiles, and that such transcriptional responses may be reversed by exogenous lactate and/or glucose. Individual tyrosine hydroxylase (TH)-immunoreactive (-ir) A2 neurons were microdissected from the caudal DVC 2 h after injection of insulin or saline, and continuous caudal fourth ventricular (CV4) infusion of lactate, glucose, or artificial cerebrospinal fluid. The data show that IIH decreased MCT2, but elevated GLUT3, GLUT4, GCK, and SUR-1 transcripts in A2 neurons. Blood glucose levels in insulin-injected rats were further reduced by CV4 infusion of either lactate or glucose. Lactate plus insulin reversed hypoglycemic reductions in MCT2 mRNA and further augmented GLUT3 transcripts in A2 neurons, whereas glucose infusion in insulin-injected rats further increased GLUT3 and GCK gene profiles. The present results demonstrate that caudal DVC A2 neurons express molecular markers for metabolic sensing, and genes that encode glucose and monocarboxylate transporters. Evidence that IIH reduces A2 MCT2, but elevates GLUT3 and GLUT4 gene profiles suggests that glucose may be a primary energy source to these cells during hypoglycemia, while decreased lactate uptake, alone or relative to glucose uptake, may be a critical manifestation of systemic glucose deficiency at the cellular level. Findings that singular fuel repletion does not normalize hypoglycemic patterns of glucose transporter, GCK, or SUR-1 mRNA expression in A2 neurons imply that sufficient supply of both energy substrates is required for metabolic balance, and that cellular adaptation to the prevalence of either fuel may increase cellular dependence on glucose-specific metabolites or other products.
机译:迷走神经背复合体(DVC)中的代谢敏感神经元的神经化学表型仍然不清楚。这些研究利用单细胞定量实时RT-PCR结合激光催化显微切割技术来解决DVC A2神经元表达编码特征性代谢转化子的基因的假说。葡萄糖激酶(GCK)和能量依赖性钾通道K(ATP)。研究表明,葡萄糖或乳酸会改变DVC化学感觉神经元的突触放电,而后者的燃料向尾后脑的输送会放大胰岛素诱导的低血糖(IIH),并升高神经元葡萄糖和单羧酸盐转运蛋白,GCK和磺酰脲类1 mRNA的表达。 DVC。因此,我们检查了IIH修饰A2底物转运蛋白和代谢换能器基因概况的另一个前提,并且这种转录反应可能被外源性乳酸和/或葡萄糖逆转。注射胰岛素或生理盐水并连续输注乳酸,葡萄糖或人工脑脊髓液至尾第四脑室(CV4)2 h后,从尾DVC显微解剖单个酪氨酸羟化酶(TH)-免疫反应性(-ir)A2神经元。数据显示IIH降低了A2神经元中的MCT2,但升高了GLUT3,GLUT4,GCK和SUR-1转录物。通过CV4乳酸或葡萄糖输注可以进一步降低胰岛素注射大鼠的血糖水平。乳酸加胰岛素逆转了MCT2 mRNA的降血糖减少,并进一步增加了A2神经元中的GLUT3转录,而注射胰岛素的大鼠中的葡萄糖输注进一步增加了GLUT3和GCK基因谱。目前的结果表明,尾部DVC A2神经元表达用于代谢传感的分子标记,以及编码葡萄糖和单羧酸盐转运蛋白的基因。 IIH降低A2 MCT2,但升高GLUT3和GLUT4基因谱的证据表明,葡萄糖可能是低血糖期间这些细胞的主要能源,而单独或相对于葡萄糖摄取的乳酸摄取减少可能是系统性葡萄糖缺乏的重要表现。在蜂窝级别。发现单一的燃料补充不能使A2神经元中的葡萄糖转运蛋白,GCK或SUR-1 mRNA表达的降血糖模式正常化,这表明代谢平衡需要同时提供两种能量底物,并且细胞适应其中任一燃料的流行可能增加细胞对葡萄糖特异性代谢产物或其他产物的依赖性。

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