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缺氧对离体仓鼠心脏中磷脂酰胆碱生物合成的影响。

Effect of hypoxia on phosphatidylcholine biosynthesis in the isolated hamster heart.

作者信息

Hatch G M, Choy P C

机构信息

Department of Biochemistry and Molecular Biology, Faculty of Medicine, University of Manitoba, Winnipeg, Canada.

出版信息

Biochem J. 1990 May 15;268(1):47-54. doi: 10.1042/bj2680047.

Abstract

In hamster heart, the majority of the phosphatidylcholine is synthesized via the CDP-choline pathway, and the rate-limiting step of this pathway is catalysed by CTP:phosphocholine cytidylyltransferase (EC 2.7.7.15). We have shown previously [Choy (1982) J. Biol. Chem. 257, 10928-10933] that, in the myopathic heart, the level of cardiac CTP was diminished during the development of the disease. In order to maintain the level of CDP-choline, and consequently the rate of phosphatidylcholine biosynthesis, cardiac cytidylyltransferase activity was increased. However, it was not clear if the same compensatory mechanism would occur when the cardiac CTP level was decreased rapidly. In this study, hypoxia of the hamster heart was produced by perfusion with buffer saturated with 95% N2. The heart was pulse-labelled with radioactive choline and then chased with non-radioactive choline for various periods under hypoxic conditions. There was a severe decrease in ATP and CTP levels within 60 min of hypoxic perfusion, with a corresponding fall in the rate of phosphatidylcholine biosynthesis. Analysis of the choline-containing metabolites revealed that the lowered ATP level did not affect the phosphorylation of choline to phosphocholine, but the lower CTP level resulted in the decreased conversion of phosphocholine to CDP-choline. Determination of enzyme activities revealed that hypoxic treatment resulted in the enhanced translocation of cytidylyltransferase from the cytosolic to the microsomal form. This enhanced translocation was probably caused by the accumulation of fatty acids in the heart during hypoxia. We postulate that the enhancement of translocation of the cytidylyltransferase to the microsomal form (a more active form) is a mechanism by which the heart can compensate for the decrease in CTP level during hypoxia in order to maintain phosphatidylcholine biosynthesis.

摘要

在仓鼠心脏中,大部分磷脂酰胆碱是通过CDP-胆碱途径合成的,该途径的限速步骤由CTP:磷酸胆碱胞苷转移酶(EC 2.7.7.15)催化。我们之前已经表明[Choy(1982年)《生物化学杂志》257卷,10928 - 10933页],在患心肌病的心脏中,疾病发展过程中心脏CTP水平降低。为了维持CDP-胆碱水平,进而维持磷脂酰胆碱生物合成的速率,心脏胞苷转移酶活性增加。然而,尚不清楚当心脏CTP水平迅速下降时是否会出现相同的补偿机制。在本研究中,通过用95%氮气饱和的缓冲液灌注来造成仓鼠心脏缺氧。心脏用放射性胆碱进行脉冲标记,然后在缺氧条件下用非放射性胆碱追踪不同时间段。缺氧灌注60分钟内ATP和CTP水平严重下降,同时磷脂酰胆碱生物合成速率相应下降。对含胆碱代谢物的分析表明,降低的ATP水平不影响胆碱磷酸化为磷酸胆碱,但较低的CTP水平导致磷酸胆碱向CDP-胆碱的转化减少。酶活性测定表明,缺氧处理导致胞苷转移酶从胞质形式向微粒体形式的易位增强。这种易位增强可能是由于缺氧期间心脏中脂肪酸的积累所致。我们推测,胞苷转移酶向微粒体形式(一种更具活性的形式)的易位增强是心脏在缺氧期间补偿CTP水平下降以维持磷脂酰胆碱生物合成的一种机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d1f/1131389/edba71cc79e0/biochemj00183-0053-a.jpg

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