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葡萄糖进入下丘脑的限速步骤是跨越血 - 下丘脑界面。

The rate-limiting step for glucose transport into the hypothalamus is across the blood-hypothalamus interface.

作者信息

Poitry-Yamate Carol, Lei HongXia, Gruetter Rolf

机构信息

Institute of Physics for Complex Matter, Centre d'Imagerie Biomédicale (CIBM), Laboratory for Functional and Metabolic Imaging, Ecole Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

出版信息

J Neurochem. 2009 May;109 Suppl 1(Suppl 1):38-45. doi: 10.1111/j.1471-4159.2009.05934.x.

Abstract

Specialized glucosensing neurons are present in the hypothalamus, some of which neighbor the median eminence, where the blood-brain barrier has been reported leaky. A leaky blood-brain barrier implies high tissue glucose levels and obviates a role for endothelial glucose transporters in the control of hypothalamic glucose concentration, important in understanding the mechanisms of glucose sensing We therefore addressed the question of blood-brain barrier integrity at the hypothalamus for glucose transport by examining the brain tissue-to-plasma glucose ratio in the hypothalamus relative to other brain regions. We also examined glycogenolysis in hypothalamus because its occurrence is unlikely in the potential absence of a hypothalamus-blood interface. Across all regions the concentration of glucose was comparable at a given plasma glucose concentration and was a near linear function of plasma glucose. At steady-state, hypothalamic glucose concentration was similar to the extracellular hypothalamic glucose concentration reported by others. Hypothalamic glycogen fell at a rate of approximately 1.5 micromol/g/h and remained present in substantial amounts. We conclude for the hypothalamus, a putative primary site of brain glucose sensing that: the rate-limiting step for glucose transport into brain cells is at the blood-hypothalamus interface, and that glycogenolysis is consistent with a substantial blood -to- intracellular glucose concentration gradient.

摘要

下丘脑存在专门的葡萄糖感应神经元,其中一些邻近正中隆起,据报道该部位的血脑屏障存在渗漏。血脑屏障渗漏意味着组织葡萄糖水平较高,这使得内皮葡萄糖转运体在控制下丘脑葡萄糖浓度方面不再起作用,而这对于理解葡萄糖感应机制很重要。因此,我们通过检测下丘脑相对于其他脑区的脑组织与血浆葡萄糖比值,来探讨下丘脑处血脑屏障完整性对葡萄糖转运的问题。我们还研究了下丘脑的糖原分解,因为在可能不存在下丘脑 - 血液界面的情况下,糖原分解不太可能发生。在所有区域,给定血浆葡萄糖浓度下的葡萄糖浓度相当,并且是血浆葡萄糖的近似线性函数。在稳态下,下丘脑葡萄糖浓度与其他人报道的下丘脑细胞外葡萄糖浓度相似。下丘脑糖原以约1.5微摩尔/克/小时的速率下降,并且仍大量存在。我们得出结论,对于下丘脑这个假定的脑葡萄糖感应主要部位而言:葡萄糖转运进入脑细胞的限速步骤位于血液 - 下丘脑界面,并且糖原分解与显著的血液到细胞内葡萄糖浓度梯度一致。

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