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酰基辅酶A在肝脏中进行功能通道运输:酰基辅酶A合成酶的潜在作用。

Acyl-CoAs are functionally channeled in liver: potential role of acyl-CoA synthetase.

作者信息

Muoio D M, Lewin T M, Wiedmer P, Coleman R A

机构信息

Departments of Nutrition and Pediatrics, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-7400, USA.

出版信息

Am J Physiol Endocrinol Metab. 2000 Dec;279(6):E1366-73. doi: 10.1152/ajpendo.2000.279.6.E1366.

Abstract

Acyl-CoA synthetase (ACS) catalyzes the activation of long-chain fatty acids to acyl-CoAs, which can be metabolized to form CO(2), triacylglycerol (TAG), phospholipids (PL), and cholesteryl esters (CE). To determine whether inhibiting ACS affects these pathways differently, we incubated rat hepatocytes with [(14)C]oleate and the ACS inhibitor triacsin C. Triacsin inhibited TAG synthesis 70% in hepatocytes from fed rats and 40% in starved rats, but it had little effect on oleate incorporation into CE, PL, or beta-oxidation end products. Triacsin blocked [(3)H]glycerol incorporation into TAG and PL 33 and 25% more than it blocked [(14)C]oleate incorporation, suggesting greater inhibition of de novo TAG synthesis than reacylation. Triacsin did not affect oxidation of prelabeled intracellular lipid. ACS1 protein was abundant in liver microsomes but virtually undetectable in mitochondria. Refeeding increased microsomal ACS1 protein 89% but did not affect specific activity. Triacsin inhibited ACS specific activity in microsomes more from fed than from starved rats. These data suggest that ACS isozymes may be functionally linked to specific metabolic pathways and that ACS1 is not associated with beta-oxidation in liver.

摘要

酰基辅酶A合成酶(ACS)催化长链脂肪酸活化为酰基辅酶A,酰基辅酶A可被代谢形成二氧化碳、三酰甘油(TAG)、磷脂(PL)和胆固醇酯(CE)。为了确定抑制ACS是否对这些途径有不同影响,我们将大鼠肝细胞与[¹⁴C]油酸和ACS抑制剂三辛菌素C一起孵育。三辛菌素在喂食大鼠的肝细胞中抑制TAG合成70%,在饥饿大鼠中抑制40%,但对油酸掺入CE、PL或β-氧化终产物几乎没有影响。三辛菌素阻断[³H]甘油掺入TAG和PL的程度比阻断[¹⁴C]油酸掺入的程度分别高33%和25%,这表明与重新酰化相比,对从头合成TAG的抑制作用更大。三辛菌素不影响预先标记的细胞内脂质的氧化。ACS1蛋白在肝微粒体中含量丰富,但在线粒体中几乎检测不到。再次喂食使微粒体ACS1蛋白增加89%,但不影响比活性。三辛菌素对喂食大鼠微粒体中ACS比活性的抑制作用比对饥饿大鼠的更大。这些数据表明,ACS同工酶可能在功能上与特定的代谢途径相关联,并且ACS1与肝脏中的β-氧化无关。

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