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4-羟基壬烯醛的生化反应基本方面。

Basic aspects of the biochemical reactivity of 4-hydroxynonenal.

作者信息

Schaur R J

机构信息

Institute of Molecular Biology, Biochemistry and Microbiology, University of Graz, Schubertstrasse 1, 8010 Graz, Austria.

出版信息

Mol Aspects Med. 2003 Aug-Oct;24(4-5):149-59. doi: 10.1016/s0098-2997(03)00009-8.

Abstract

4-hydroxynonenal (HNE), a major lipid peroxidation product of n-6 polyunsaturated fatty acids, which was discovered by the late Hermann Esterbauer, is a remarkable trifunctional molecule. Both the hydroxy group and the conjugated system consisting of a C=C double bond and a carbonyl group contribute to the high reactivity of HNE. Most of the biochemical effects of HNE can be explained by its rapid reactions with thiol and amino groups. Among the primary reactants for HNE are the amino acids cysteine, histidine and lysine, which--either free or protein-bound--undergo readily Michael additions to the C=C bond. After this primary reaction, which confers rotational freedom to the C2-C3 bond, secondary reactions may occur involving the carbonyl and the hydroxy group. Primary amines may alternatively react with the carbonyl group to form Schiff bases. Reactions which do not fit into this scheme are the oxidation and the reduction respective of the carbonyl group and the epoxidation of the C=C double bond. Examples will be presented for the interaction of HNE with various classes of biomolecules such as proteins and peptides, lipids and nucleic acids and the biochemical consequences will be discussed.

摘要

4-羟基壬烯醛(HNE)是n-6多不饱和脂肪酸的主要脂质过氧化产物,由已故的赫尔曼·埃斯特鲍尔发现,是一种显著的三功能分子。羟基以及由碳碳双键和羰基组成的共轭体系都导致了HNE的高反应活性。HNE的大多数生化效应可以通过其与硫醇和氨基的快速反应来解释。HNE的主要反应物包括氨基酸半胱氨酸、组氨酸和赖氨酸,它们无论是游离的还是与蛋白质结合的,都很容易对碳碳双键进行迈克尔加成反应。在这个赋予C2-C3键旋转自由度的初级反应之后,可能会发生涉及羰基和羟基的二级反应。伯胺也可能与羰基反应形成席夫碱。不符合此反应模式的反应是羰基的氧化和还原以及碳碳双键的环氧化。将给出HNE与各类生物分子(如蛋白质和肽、脂质和核酸)相互作用的例子,并讨论其生化后果。

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