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钝顶节旋藻Δ9去饱和酶的研究进展:多不饱和脂肪酸合成中的关键酶

Insight into Arthrospira platensis Δ9 desaturase: a key enzyme in poly-unsaturated fatty acid synthesis.

作者信息

Ben Amor Faten, Ben Hlima Hajer, Abdelkafi Slim, Fendri Imen

机构信息

Laboratoire de Biotechnologie Végétale Appliquée à l'Amélioration des Cultures, Faculty of Sciences of Sfax, University of Sfax, Sfax, 3000, Tunisia.

Unité de Biotechnologie des Algues, Biological Engineering Department, National School of Engineers of Sfax, University of Sfax, Sfax, 3038, Tunisia.

出版信息

Mol Biol Rep. 2018 Dec;45(6):1873-1879. doi: 10.1007/s11033-018-4333-2. Epub 2018 Aug 29.

Abstract

Membrane-bound Δ9 desaturase perform oxygenated desaturation reactions to insert the first double bonds within fatty acyl chains between C9 and C10 positions of most saturated substrates. Arthrospira platensis, a blue green microalga, is an important source of polyunsaturated fatty acids (PUFA) such as oleic, linoleic and linolenic acids lending benefits and functions in dietetics and therapeutic uses. In this paper, we report homology modeling and docking studies of a Δ9 desaturase from Arthrospira platensis strain. The protein model showed high topology resemblance compared to membrane-bound desaturases with a cytoplasmic core displaying the catalytic site and a transmembrane domain created by four α-helices. The cytoplasmic cap contained the three conserved-histidine boxes typical for all membrane bound desaturases. The protein model was used to perform protein-protein docking and the dimer structure was generated. The two monomers are tightly related with hydrophobic interactions between the transmembrane domain helices. The study highlighted also the potent role of a particular 53 residues sequence located at the N terminal end of the enzyme.

摘要

膜结合Δ9去饱和酶进行氧化去饱和反应,在大多数饱和底物的脂肪酸酰基链的C9和C10位置之间插入第一个双键。钝顶螺旋藻是一种蓝绿色微藻,是多不饱和脂肪酸(PUFA)如油酸、亚油酸和亚麻酸的重要来源,在饮食和治疗用途中具有益处和功能。在本文中,我们报道了钝顶螺旋藻菌株Δ9去饱和酶的同源建模和对接研究。与膜结合去饱和酶相比,该蛋白质模型显示出高度的拓扑相似性,其细胞质核心显示出催化位点,由四个α螺旋形成跨膜结构域。细胞质帽包含所有膜结合去饱和酶典型的三个保守组氨酸盒。该蛋白质模型用于进行蛋白质-蛋白质对接并生成二聚体结构。两个单体通过跨膜结构域螺旋之间的疏水相互作用紧密相连。该研究还强调了位于酶N末端的特定53个残基序列的重要作用。

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