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Identification of amino acid residues that determine the substrate specificity of mammalian membrane-bound front-end fatty acid desaturases

机译:确定决定哺乳动物膜结合的前端脂肪酸去饱和酶的底物特异性的氨基酸残基

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摘要

Membrane-bound desaturases are physiologically and industrially important enzymes that are involved in the production of diverse fatty acids such as polyunsaturated fatty acids and their derivatives. Here, we identified amino acid residues that determine the substrate specificity of rat Δ6 desaturase (D6d) acting on linoleoyl-CoA by comparing its amino acid sequence with that of Δ5 desaturase (D5d), which converts dihomo-γ-linolenoyl-CoA. The N-terminal cytochrome b5-like domain was excluded as a determinant by domain swapping analysis. Substitution of eight amino acid residues (Ser209, Asn211, Arg216, Ser235, Leu236, Trp244, Gln245, and Val344) of D6d with the corresponding residues of D5d by site-directed mutagenesis switched the substrate specificity from linoleoyl-CoA to dihomo-γ-linolenoyl-CoA. In addition, replacement of Leu323 of D6d with Phe323 on the basis of the amino acid sequence of zebra fish Δ5/6 bifunctional desaturase was found to render D6d bifunctional. Homology modeling of D6d using recent crystal structure data of human stearoyl-CoA (Δ9) desaturase revealed that Arg216, Trp244, Gln245, and Leu323 are located near the substrate-binding pocket. To our knowledge, this is the first report on the structural basis of the substrate specificity of a mammalian front-end fatty acid desaturase, which will aid in efficient production of value-added fatty acids.
机译:膜结合的去饱和酶是生理和工业上重要的酶,其参与多种脂肪酸如多不饱和脂肪酸及其衍生物的生产。在这里,我们通过比较其氨基酸序列与Δ5脱氢酶(D5d)的氨基酸序列,从而确定了作用于亚油酰-CoA的大鼠Δ6脱氢酶(D6d)的底物特异性,确定了氨基酸残基,该氨基酸转化了二高-γ-亚油酰基-CoA。通过结构域交换分析,将N末端细胞色素b5样结构域排除为决定因素。通过定点诱变将D6d的8个氨基酸残基(Ser209,Asn211,Arg216,Ser235,Leu236,Trp244,Gln245和Val344)替换为D5d的相应残基,将底物特异性从亚油酰基-CoA切换为二高γ-γ-亚油酰基-CoA。另外,发现基于斑马鱼Δ5/ 6双功能去饱和酶的氨基酸序列,用Phe323替换D6d的Leu323,使得D6d具有双功能。使用人类硬脂酰-CoA(Δ9)去饱和酶的最新晶体结构数据对D6d进行同源性建模,发现Arg216,Trp244,Gln245和Leu323位于底物结合口袋附近。据我们所知,这是关于哺乳动物前端脂肪酸去饱和酶底物特异性的结构基础的首次报道,这将有助于有效生产增值脂肪酸。

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