[Vasopressin and angiogenesis].

Journal de la Societe de biologie Pub Date : 2009-01-01 Epub Date: 2009-04-10 DOI:10.1051/jbio:2009005
Gérard Alonso
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引用次数: 5

Abstract

In adult mammals, the CNS vasculature remains essentially quiescent, excepted for specific pathologies. In the seventies, it was reported that proliferation of astrocytes and endothelial cells occurs within the hypothalamic magnocellular nuclei when strong metabolic activation of the vasopressinergic and oxytocinergic neurons was induced by prolonged hyperosmotic stimulation. Using more appropriate techniques, we first demonstrated that in these nuclei, the proliferative response to osmotic stimulus is essentially associated with local angiogenesis. We then showed that hypothalamic magnocellular neurons express vascular endothelial growth factor (VEGF), a potent angiogenic factor, that plays a major rôle in the angiogenesis induced by osmotic stimuli. We then demonstrated a correlation between increased VEGF secretion and local hypoxia. In AVP-deficient Brattleboro rats, the dramatic activation of magnocellular hypothalamic neurons failed to induce hypoxia, VEGF expression or angiogenesis suggesting a major role of hypothalamic AVP. Lastly we showed that 1) hypoxia and angiogenesis were not observed in non-osmotically stimulated Wistar rats in which circulating AVP was increased by the prolonged infusion of exogenous AVP, 2) contractile arterioles afferent to the magnocellular nuclei were strongly constricted by the perivascular application of AVP via V1a receptors (V1a-R) stimulation, and 3) following the intracerebral administration of selective V1a-R antagonist to osmotically stimulated rats, hypothalamic hypoxia and angiogenesis were inhibited. Together, these data strongly suggest that the angiogenesis induced by osmotic stimulation relates to tissue hypoxia resulting from the constriction of local arterioles, via the stimulation of perivascular V1a-R by AVP locally released from dendrites.

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抗利尿激素与血管生成。
在成年哺乳动物中,除了特殊的病理外,中枢神经系统基本上保持静止。七十年代有报道称,当长时间高渗刺激引起抗利尿激素和催产素能神经元的强烈代谢激活时,下丘脑大细胞核内会出现星形胶质细胞和内皮细胞的增殖。使用更合适的技术,我们首先证明了在这些细胞核中,渗透刺激的增殖反应本质上与局部血管生成有关。我们随后发现下丘脑大细胞神经元表达血管内皮生长因子(VEGF),这是一种有效的血管生成因子,在渗透刺激诱导的血管生成中起主要rôle作用。然后我们证明了VEGF分泌增加与局部缺氧之间的相关性。在AVP缺乏的Brattleboro大鼠中,下丘脑大细胞神经元的剧烈激活未能诱导缺氧、VEGF表达或血管生成,这表明下丘脑AVP的主要作用。最后,我们发现1)在非渗透刺激的Wistar大鼠中,长时间输注外源性AVP可使循环AVP增加,但未观察到缺氧和血管生成;2)通过V1a受体(V1a- r)刺激AVP在血管周围应用,可使传入大细胞核的收缩性小动脉强烈收缩;3)在渗透刺激大鼠脑内给予选择性V1a- r拮抗剂后。下丘脑缺氧和血管生成受到抑制。总之,这些数据有力地表明,渗透刺激诱导的血管生成与局部小动脉收缩导致的组织缺氧有关,通过局部树突释放的AVP刺激血管周围的V1a-R。
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