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黄素接触残基αArg249和βTyr16在人电子传递黄素蛋白中的功能。

The functions of the flavin contact residues, alphaArg249 and betaTyr16, in human electron transfer flavoprotein.

作者信息

Dwyer T M, Zhang L, Muller M, Marrugo F, Frerman F

机构信息

Department of Pediatrics and the Program in Cellular and Developmental Biology, The University of Colorado School of Medicine, 4200 E. Ninth Avenue, Denver, CO 80262, USA.

出版信息

Biochim Biophys Acta. 1999 Aug 17;1433(1-2):139-52. doi: 10.1016/s0167-4838(99)00139-9.

Abstract

Arg249 in the large (alpha) subunit of human electron transfer flavoprotein (ETF) heterodimer is absolutely conserved throughout the ETF superfamily. The guanidinium group of alphaArg249 is within van der Waals contact distance and lies perpendicular to the xylene subnucleus of the flavin ring, near the region proposed to be involved in electron transfer with medium chain acyl-CoA dehydrogenase. The backbone amide hydrogen of alphaArg249 is within hydrogen bonding distance of the carbonyl oxygen at the flavin C(2). alphaArg249 may modulate the potentials of the two flavin redox couples by hydrogen bonding the carbonyl oxygen at C(2) and by providing delocalized positive charge to neutralize the anionic semiquinone and anionic hydroquinone of the flavin. The potentials of the oxidized/semiquinone and semiquinone/hydroquinone couples decrease in an alphaR249K mutant ETF generated by site directed mutagenesis and expression in Escherichia coli, without major alterations of the flavin environment as judged by spectral criteria. The steady state turnover of medium chain acyl-CoA dehydrogenase and glutaryl-CoA dehydrogenase decrease greater than 90% as a result of the alphaR249Ks mutation. In contrast, the steady state turnover of short chain acyl-CoA dehydrogenase was decreased about 38% when alphaR249K ETF was the electron acceptor. Stopped flow absorbance measurements of the oxidation of reduced medium chain acyl-CoA dehydrogenase/octenoyl-CoA product complex by wild type human ETF at 3 degrees C are biphasic (t(1/2)=12 ms and 122 ms). The rate of oxidation of this reduced binary complex of the dehydrogenase by the alphaR249K mutant ETF is extremely slow and could not be reasonably estimated. alphaAsp253 is proposed to function with alphaArg249 in the electron transfer pathway from medium chain acyl-CoA dehydrogenase to ETF. The steady state kinetic constants of the dehydrogenase were not altered when ETF containing an alphaD253A mutant was the substrate. However, t(1/2) of the rapid phase of oxidation of the reduced medium chain acyl-CoA dehydrogenase/octenoyl-CoA charge transfer complex almost doubled. betaTyr16 lies on a loop near the C(8) methyl group, and is also near the proposed site for interflavin electron transfer with medium chain acyl-CoA dehydrogenase. The tyrosine residue makes van der Waals contact with the C(8) methyl group of the flavin in human ETF and Paracoccus denitrificans ETF (as betaTyr13) and lies at a 30 degrees C angle with the plane of the flavin. Human betaTyr16 was substituted with leucine and alanine residues to investigate the role of this residue in the modulation of the flavin redox potentials and in electron transfer to ETF. In betaY16L ETF, the potentials of the flavin were slightly reduced, and steady state kinetic constants were modestly altered. Substitution of an alanine residue for betaTyr16 yields an ETF with potentials very similar to the wild type but with steady state kinetic properties similar to betaY16L ETF. It is unlikely that the beta methyl group of the alanine residue interacts with the flavin C(8) methyl. Neither substitution of betaTyr16 had a large effect on the fast phase of ETF reduction by medium chain acyl-CoA dehydrogenase.

摘要

人电子传递黄素蛋白(ETF)异二聚体大亚基(α亚基)中的精氨酸249在整个ETF超家族中绝对保守。α亚基精氨酸249的胍基处于范德华接触距离内,且垂直于黄素环的二甲苯亚核,靠近推测与中链酰基辅酶A脱氢酶进行电子传递的区域。α亚基精氨酸249的主链酰胺氢与黄素C(2)处的羰基氧处于氢键距离内。α亚基精氨酸249可能通过与C(2)处的羰基氧形成氢键以及提供离域正电荷来中和黄素的阴离子半醌和阴离子对苯二酚,从而调节两个黄素氧化还原对的电位。通过定点诱变并在大肠杆菌中表达产生的αR249K突变体ETF中,氧化型/半醌型和半醌型/对苯二酚型氧化还原对的电位降低,而根据光谱标准判断,黄素环境没有重大改变。由于αR249K突变,中链酰基辅酶A脱氢酶和戊二酰辅酶A脱氢酶的稳态周转率降低超过90%。相比之下,当αR249K ETF作为电子受体时,短链酰基辅酶A脱氢酶的稳态周转率降低约38%。在3℃下,野生型人ETF对还原型中链酰基辅酶A脱氢酶/辛烯酰辅酶A产物复合物的氧化进行的停流吸光度测量是双相的(t(1/2)=12毫秒和122毫秒)。αR249K突变体ETF对该脱氢酶还原二元复合物的氧化速率极慢,无法合理估计。推测α天冬氨酸253在从中链酰基辅酶A脱氢酶到ETF的电子传递途径中与α亚基精氨酸249共同起作用。当含有αD253A突变体的ETF作为底物时,脱氢酶的稳态动力学常数没有改变。然而,还原型中链酰基辅酶A脱氢酶/辛烯酰辅酶A电荷转移复合物氧化快速相的t(1/2)几乎翻倍。β酪氨酸16位于靠近C(8)甲基的环上,也靠近推测的与中链酰基辅酶A脱氢酶进行黄素间电子传递的位点。该酪氨酸残基与人ETF和反硝化副球菌ETF(作为β酪氨酸13)中的黄素C(8)甲基形成范德华接触,且与黄素平面呈30℃角。将人β酪氨酸16替换为亮氨酸和丙氨酸残基,以研究该残基在调节黄素氧化还原电位以及向ETF电子传递中的作用。在βY16L ETF中,黄素电位略有降低,稳态动力学常数有适度改变。用丙氨酸残基替换β酪氨酸16产生的ETF电位与野生型非常相似,但稳态动力学性质与βY16L ETF相似。丙氨酸残基的β甲基不太可能与黄素C(8)甲基相互作用。β酪氨酸16的两种替换对中链酰基辅酶A脱氢酶对ETF还原的快速相均无大的影响。

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