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首页> 外文期刊>Experimental Physiology >AMP-activated protein kinase underpins hypoxic pulmonary vasoconstriction and carotid body excitation by hypoxia in mammals.
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AMP-activated protein kinase underpins hypoxic pulmonary vasoconstriction and carotid body excitation by hypoxia in mammals.

机译:在哺乳动物中,AMP激活的蛋白激酶支持低氧性肺血管收缩和低氧引起的颈动脉体兴奋。

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摘要

In order to maintain tissue partial pressure of oxygen (P(O(2))) within physiological limits, vital homeostatic mechanisms monitor O(2) supply and respond to a fall in P(O(2)) by altering respiratory and circulatory function, and the capacity of the blood to transport O(2). Two systems that are key to this process in the acute phase are the pulmonary arteries and the carotid bodies. Hypoxic pulmonary vasoconstriction is driven by mechanisms intrinsic to the pulmonary arterial smooth muscle and endothelial cells, and aids ventilation-perfusion matching in the lung by diverting blood flow from areas with an O(2) deficit to those that are rich in O(2). By contrast, a fall in arterial P(O(2)) precipitates excitation-secretion coupling in carotid body type I cells, increases sensory afferent discharge from the carotid body and thereby elicits corrective changes in breathing patterns via the brainstem. There is a general consensus that hypoxia inhibits mitochondrial oxidative phosphorylation in these O(2)-sensing cells over a range of P(O(2)) values that has no such effect on other cell types. However, the question remains as to the identity of the mechanism that underpins hypoxia-response coupling in O(2)-sensing cells. Here, I lay out the case in support of a primary role for AMP-activated protein kinase in mediating chemotransduction by hypoxia.
机译:为了将组织的氧气分压(P(O(2)))维持在生理范围内,重要的体内平衡机制监视O(2)的供应并通过改变呼吸和循环功能来应对P(O(2))的下降,以及血液运输O(2)的能力。在急性期,这一过程的关键两个系统是肺动脉和颈动脉体。缺氧性肺血管收缩受肺动脉平滑肌和内皮细胞固有的机制驱动,并通过将血流从O(2)缺乏的区域转移到O(2)丰富的区域来辅助肺中的通气-灌注匹配。相比之下,动脉P(O(2))的下降会在I型颈动脉体细胞中激发-分泌耦合,增加从颈动脉体的感觉传入放电,从而通过脑干引起呼吸模式的校正性变化。有一个普遍的共识,即低氧抑制了这些O(2)感应细胞中P(O(2))值范围内的线粒体氧化磷酸化作用,而对其他细胞类型没有这种影响。但是,仍然存在关于在O(2)感应细胞中支持低氧反应偶联的机制的身份的问题。在这里,我提出了支持AMP激活的蛋白激酶在通过缺氧介导化学转导中起主要作用的案例。

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