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5-Hydroxydecanoate is metabolised in mitochondria and creates a rate-limiting bottleneck for β-oxidation of fatty acids

机译:5-羟基癸酸酯在线粒体内代谢并为脂肪酸的β-氧化创造了限速瓶颈

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摘要

5-Hydroxydecanoate (5-HD) blocks pharmacological and ischaemic preconditioning, and has been postulated to be a specific inhibitor of mitochondrial ATP-sensitive K+ (KATP) channels. However, recent work has shown that 5-HD is activated to 5-hydroxydecanoyl-CoA (5-HD-CoA), which is a substrate for the first step of β-oxidation. We have now analysed the complete β-oxidation of 5-HD-CoA using specially synthesised (and purified) substrates and enzymes, as well as isolated rat liver and heart mitochondria, and compared it with the metabolism of the physiological substrate decanoyl-CoA. At the second step of β-oxidation, catalysed by enoyl-CoA hydratase, enzyme kinetics were similar using either decenoyl-CoA or 5-hydroxydecenoyl-CoA as substrate. The last two steps were investigated using l-3-hydroxyacyl-CoA dehydrogenase (HAD) coupled to 3-ketoacyl-CoA thiolase. Vmax for the metabolite of 5-HD (3,5-dihydroxydecanoyl-CoA) was fivefold slower than for the corresponding metabolite of decanoate (l-3-hydroxydecanoyl-CoA). The slower kinetics were not due to accumulation of d-3-hydroxyoctanoyl-CoA since this enantiomer did not inhibit HAD. Molecular modelling of HAD complexed with 3,5-dihydroxydecanoyl-CoA suggested that the 5-hydroxyl group could decrease HAD turnover rate by interacting with critical side chains. Consistent with the kinetic data, 5-hydroxydecanoyl-CoA alone acted as a weak substrate in isolated mitochondria, whereas addition of 100 μm 5-HD-CoA inhibited the metabolism of decanoyl-CoA or lauryl-carnitine. In conclusion, 5-HD is activated, transported into mitochondria and metabolised via β-oxidation, albeit with rate-limiting kinetics at the penultimate step. This creates a bottleneck for β-oxidation of fatty acids. The complex metabolic effects of 5-HD invalidate the use of 5-HD as a blocker of mitochondrial KATP channels in studies of preconditioning.
机译:5-羟基癸酸酯(5-HD)可以阻断药理和缺血预处理,并且被认为是线粒体ATP敏感K + (KATP)通道的特异性抑制剂。但是,最近的研究表明5-HD被激活为5-羟基癸酰基-CoA(5-HD-CoA),后者是β-氧化第一步的底物。现在,我们使用特殊合成的(和纯化的)底物和酶,以及分离的大鼠肝脏和心脏线粒体,分析了5-HD-CoA的完全β-氧化作用,并将其与生理学底物癸酰基-CoA的代谢进行了比较。在由烯酰辅酶A水合酶催化的β-氧化的第二步,使用癸烯酰辅酶A或5-羟基癸烯酰辅酶A作为底物,酶动力学相似。使用与3-酮酰基-CoA硫解酶偶联的1-3-羟基酰基-CoA脱氢酶(HAD)研究了最后两个步骤。 5-HD(3,5-二羟基癸酰基-CoA)代谢产物的Vmax比相应的癸酸酯(1-3-羟基癸酰基-CoA)代谢产物的Vmax慢五倍。较慢的动力学不是由于d-3-羟基辛酰基-CoA的积累,因为该对映异构体不抑制HAD。与3,5-二羟基癸酰基-CoA配合的HAD分子模型表明,5-羟基可通过与关键侧链相互作用降低HAD周转率。与动力学数据一致,单独的5-羟基癸酰辅酶A在分离的线粒体中充当弱底物,而添加100μm5-HD-CoA则抑制了癸酰辅酶A或月桂酰肉碱的代谢。总之,尽管在倒数第二步具有限速动力学,但是5-HD被激活,转运到线粒体并通过β-氧化代谢。这产生了脂肪酸β-氧化的瓶颈。 5-HD的复杂代谢作用在预处理研究中使5-HD不能用作线粒体KATP通道的阻滞剂。

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