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钠钾ATP酶泵的非优先供能

Non-preferential fuelling of the Na(+)/K(+)-ATPase pump.

作者信息

Fernández-Moncada Ignacio, Barros L Felipe

机构信息

*Centro de Estudios Científicos (CECs), Av. Arturo Prat 514, Casilla 1469, Valdivia, Chile.

出版信息

Biochem J. 2014 Jun 15;460(3):353-61. doi: 10.1042/BJ20140003.

Abstract

There is abundant evidence that glycolysis and the Na(+)/K(+)-ATPase pump are functionally coupled, and it is thought that the nature of the coupling is energetic, with glycolysis providing the ATP that fuels the pump. This notion has been instrumental to current models of brain energy metabolism. However, structural and biophysical considerations suggest that the pump should also have access to mitochondrial ATP, which is much more abundant. In the present study, we have investigated the source of ATP that fuels the Na(+) pump in astrocytes, taking advantage of the high temporal resolution of recently available FRET nanosensors for glucose, lactate and ATP. The activity of the Na(+) pump was assessed in parallel with the Na(+)-sensitive dye SBFI AM (Na(+)-binding benzofuran isophthalate acetoxymethyl ester). OXPHOS (oxidative phosphorylation) inhibition resulted in bulk ATP depletion and a 5-fold stimulation of glycolytic flux, in spite of which Na(+) pumping was inhibited by 90%. Mathematical modelling of ATP dynamics showed that the observed pump failure is inconsistent with preferential fuelling of the Na(+) pump by glycolytic ATP. We conclude that the nature of the functional coupling between the Na(+) pump and the glycolytic machinery is not energetic and that the pump is mainly fuelled by mitochondrial ATP.

摘要

有大量证据表明糖酵解与钠钾ATP酶泵在功能上相互关联,人们认为这种关联的本质是能量方面的,即糖酵解提供为泵供能的ATP。这一观点对当前的脑能量代谢模型起到了重要作用。然而,从结构和生物物理角度考虑,泵也应该能够获取更为丰富的线粒体ATP。在本研究中,我们利用最近可用的用于检测葡萄糖、乳酸和ATP的FRET纳米传感器的高时间分辨率,研究了星形胶质细胞中为钠泵供能的ATP来源。同时使用对钠敏感的染料SBFI AM(钠结合苯并呋喃间苯二甲酸乙酰氧基甲酯)评估钠泵的活性。尽管氧化磷酸化(OXPHOS)抑制导致大量ATP消耗以及糖酵解通量增加了5倍,但钠泵的活性仍被抑制了90%。ATP动态的数学模型表明,观察到的泵功能失效与糖酵解产生的ATP优先为钠泵供能的情况不一致。我们得出结论,钠泵与糖酵解机制之间功能耦合的本质并非能量方面的,并且该泵主要由线粒体ATP供能。

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