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脂蛋白脂肪酶与脂解作用:在脂蛋白代谢和动脉粥样硬化形成中的核心作用

Lipoprotein lipase and lipolysis: central roles in lipoprotein metabolism and atherogenesis.

作者信息

Goldberg I J

机构信息

Department of Medicine, Columbia University College of Physicians and Surgeons, New York, NY 10032.

出版信息

J Lipid Res. 1996 Apr;37(4):693-707.

PMID:8732771
Abstract

Although it has been known for over 50 years that lipoprotein lipase (LPL) hydrolyzes triglyceride in chylomicrons, during the past half decade there has been a reinterest in the physiologic and pathophysiologic actions of this enzyme. In part, this has coincided with clinical studies implicating increased postprandial lipemia as a risk factor for atherosclerosis development. In addition, the recent creation of genetically altered mice with hypertriglyceridemia has focused the interest of geneticists and physiologists on the pathophysiology of triglyceride metabolism. As reviewed in this article, it is apparent that the lipolysis reaction is only partially understood. Several factors other than LPL are critical modulators of this process, in part, because the reaction requires the lipoproteins to interact with the arterial or capillary wall. Among the factors that affect this are the apolipoprotein composition of the particles, the size of the lipoproteins, and how LPL is displayed along the endothelial luminal surface. Zilversmit's observation that LPL activity is found in greater amounts in atherosclerotic than normal arteries has led to a large number of experiments linking LPL with atherogenesis. In medium and large arteries LPL is found on the luminal endothelial surface and in macrophage-rich areas within the plaque. LPL actions in both of these locations probably have major effects on the biology of the blood vessel. Possible atherogenic actions for this LPL based on in vitro experiments are reviewed.

摘要

尽管50多年前就已知道脂蛋白脂肪酶(LPL)可水解乳糜微粒中的甘油三酯,但在过去的五年里,人们对这种酶的生理和病理生理作用又重新产生了兴趣。部分原因是,这与一些临床研究相吻合,这些研究表明餐后血脂升高是动脉粥样硬化发展的一个危险因素。此外,最近通过基因改造培育出的高甘油三酯血症小鼠,使遗传学家和生理学家将兴趣集中在了甘油三酯代谢的病理生理学上。正如本文所综述的,很明显脂解反应仅得到了部分理解。除LPL外,还有几个因素是这一过程的关键调节因子,部分原因是该反应需要脂蛋白与动脉或毛细血管壁相互作用。影响这一过程的因素包括颗粒的载脂蛋白组成、脂蛋白的大小以及LPL在内皮腔表面的展示方式。齐尔弗斯米特观察到,与正常动脉相比,动脉粥样硬化动脉中的LPL活性含量更高,这引发了大量将LPL与动脉粥样硬化形成联系起来的实验。在中、大动脉中,LPL存在于腔内皮表面以及斑块内富含巨噬细胞的区域。LPL在这两个位置的作用可能对血管生物学有重大影响。本文综述了基于体外实验的这种LPL可能的致动脉粥样硬化作用。

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