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过氧化物酶体β-氧化中的多功能蛋白:拟南芥蛋白 MFP2 的结构和底物特异性。

The multifunctional protein in peroxisomal beta-oxidation: structure and substrate specificity of the Arabidopsis thaliana protein MFP2.

机构信息

Protein Chemistry Group, Carlsberg Laboratory, Gamle Carlsberg Vej 10, DK-2500 Valby, Denmark.

出版信息

J Biol Chem. 2010 Jul 30;285(31):24066-77. doi: 10.1074/jbc.M110.106005. Epub 2010 May 12.

Abstract

Plant fatty acids can be completely degraded within the peroxisomes. Fatty acid degradation plays a role in several plant processes including plant hormone synthesis and seed germination. Two multifunctional peroxisomal isozymes, MFP2 and AIM1, both with 2-trans-enoyl-CoA hydratase and l-3-hydroxyacyl-CoA dehydrogenase activities, function in mouse ear cress (Arabidopsis thaliana) peroxisomal beta-oxidation, where fatty acids are degraded by the sequential removal of two carbon units. A deficiency in either of the two isozymes gives rise to a different phenotype; the biochemical and molecular background for these differences is not known. Structure determination of Arabidopsis MFP2 revealed that plant peroxisomal MFPs can be grouped into two families, as defined by a specific pattern of amino acid residues in the flexible loop of the acyl-binding pocket of the 2-trans-enoyl-CoA hydratase domain. This could explain the differences in substrate preferences and specific biological functions of the two isozymes. The in vitro substrate preference profiles illustrate that the Arabidopsis AIM1 hydratase has a preference for short chain acyl-CoAs compared with the Arabidopsis MFP2 hydratase. Remarkably, neither of the two was able to catabolize enoyl-CoA substrates longer than 14 carbon atoms efficiently, suggesting the existence of an uncharacterized long chain enoyl-CoA hydratase in Arabidopsis peroxisomes.

摘要

植物脂肪酸可以完全在过氧化物酶体中降解。脂肪酸降解在几种植物过程中发挥作用,包括植物激素合成和种子萌发。两种多功能过氧化物酶体同工酶,MFP2 和 AIM1,都具有 2-反式烯酰-CoA 水合酶和 l-3-羟基酰基-CoA 脱氢酶活性,在拟南芥过氧化物酶体β-氧化中发挥作用,其中脂肪酸通过连续去除两个碳单位进行降解。这两种同工酶中的任何一种缺乏都会导致不同的表型;这些差异的生化和分子背景尚不清楚。拟南芥 MFP2 的结构测定表明,植物过氧化物酶体 MFPs 可以分为两个家族,这是由 2-反式烯酰-CoA 水合酶结构域酰基结合口袋的柔性环中特定的氨基酸残基模式定义的。这可以解释两种同工酶在底物偏好和特定生物学功能上的差异。体外底物偏好谱表明,与拟南芥 MFP2 水合酶相比,拟南芥 AIM1 水合酶对短链酰基辅酶 A 具有偏好性。值得注意的是,这两种酶都不能有效地代谢长于 14 个碳原子的烯酰-CoA 底物,这表明拟南芥过氧化物体中存在一种未被表征的长链烯酰-CoA 水合酶。

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