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磷脂酶对N-酰基磷脂酰乙醇胺的活性严重依赖于N-酰基链的长度。

Phospholipase activity on N-acyl phosphatidylethanolamines is critically dependent on the N-acyl chain length.

作者信息

Caramelo Julio J, Florin-Christensen Jorge, Delfino José M

机构信息

Institute of Biophysics and Biochemistry (IQUIFIB, UBA-CONICET), School of Pharmacy and Biochemistry, University of Buenos Aires, Junín 956, RA-1113, Buenos Aires, Argentina.

出版信息

Biochem J. 2003 Aug 15;374(Pt 1):109-15. doi: 10.1042/BJ20021840.

Abstract

We have recently shown that an endogenous phospholipase A2 from bovine erythrocytes does not hydrolyse NAPEs (N-acyl L-alpha-phosphatidylethanolamines), which accumulate remarkably in this system [Florin-Christensen, Suarez, Florin-Christensen, Wainszelbaum, Brown, McElwain and Palmer (2001) Proc. Natl. Acad. Sci. U.S.A. 98, 7736-7741]. Here we investigate the causes underlying this resistance. N-acylation of PE (L-alpha-phosphatidylethanolamine) results in alteration of charge, head-group volume and conformation, the last two features depending on the N-acyl chain length. To evaluate each effect separately, we synthesized NAPEs with selected N-acyl chain length. We found that phospholipase A2 has considerable activity against N-acetyl PE, but is poorly active against N-butanoyl PE and only marginally active against N-hexanoyl PE, whereas the activity is completely lost when N-hexadecanoyl PE is presented as a substrate. On the other hand, N-hexanoyl PE does not inhibit phospholipase A2 activity, suggesting that this substrate fails to enter the hydrophobic channel. Phospholipase C presents a similar, but less sharp pattern. Molecular dynamics simulations of the polar head group of selected NAPEs reveal a substantially increased conformational variability as the N-acyl chain grows. This larger conformational space represents an increased impairment limiting the access of these molecules to the active site. Our data indicate that, whereas a change in charge contributes to diminished activity, the most relevant effects come from steric hindrance related to the growth of the N-acyl chain.

摘要

我们最近发现,来自牛红细胞的一种内源性磷脂酶A2不会水解N-酰基磷脂酰乙醇胺(NAPEs),而NAPEs在该系统中会大量积累[弗洛林-克里斯滕森、苏亚雷斯、弗洛林-克里斯滕森、温斯泽尔鲍姆、布朗、麦克尔韦恩和帕尔默(2001年)《美国国家科学院院刊》98卷,7736 - 7741页]。在此,我们研究这种抗性背后的原因。磷脂酰乙醇胺(PE)的N-酰化会导致电荷、头部基团体积和构象发生改变,后两个特征取决于N-酰基链的长度。为了分别评估每种效应,我们合成了具有选定N-酰基链长度的NAPEs。我们发现,磷脂酶A2对N-乙酰基PE具有相当高的活性,但对N-丁酰基PE活性较差,对N-己酰基PE仅具有微弱活性,而当以N-十六酰基PE作为底物时,活性则完全丧失。另一方面,N-己酰基PE不会抑制磷脂酶A2的活性,这表明该底物无法进入疏水通道。磷脂酶C呈现出类似但不太明显的模式。对选定NAPEs的极性头部基团进行分子动力学模拟显示,随着N-酰基链的增长,构象变异性显著增加。这种更大的构象空间代表了一种增加的阻碍,限制了这些分子进入活性位点。我们的数据表明,虽然电荷变化会导致活性降低,但最相关的影响来自与N-酰基链增长相关的空间位阻。

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