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Membrane location of apocytochrome c and cytochrome c determined from lipid-protein spin exchange interactions by continuous wave saturation electron spin resonance.

机译:通过连续波饱和电子自旋共振从脂质-蛋白质自旋交换相互作用确定脱辅细胞色素c和细胞色素c的膜位置。

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摘要

Apocytochrome c derived from horse heart cytochrome c was spin-labeled on the cysteine residue at position 14 or 17 in the N-terminal region of the primary sequence, and cytochrome c from yeast was spin-labeled on the single cysteine residue at sequence position 102 in the C-terminal region. The spin-labeled apocytochrome c and cytochrome c were bound to fluid bilayers composed of different negatively charged phospholipids that also contained phospholipid probes that were spin-labeled either in the headgroup or at different positions in the sn-2 acyl chain. The location of the spin-labeled cysteine residues on the lipid-bound proteins was determined relative to the spin-label positions in the different spin-labeled phospholipids by the influence of spin-spin interactions on the microwave saturation properties of the spin-label electron spin resonance spectra. The enhanced spin relaxation observed in the doubly labeled systems arises from Heisenberg spin exchange, which is determined by the accessibility of the spin-label group on the protein to that on the lipid. It is found that the labeled cysteine groups in horse heart apocytochrome c are located closest to the 14-C atom of the lipid acyl chain when the protein is bound to dimyristoyl- or dioleoyl-phosphatidylglycerol, and to that of the 5-C atom when the protein is bound to a dimyristoylphosphatidylglycerol/dimyristoylphosphatidylcholine (15:85 mol/mol mixture. On binding to dioleoylphosphatidylglycerol, the labeled cysteine residue in yeast cytochrome c is located closest to the phospholipid headgroups but possibly between the polar group region and the 5-C atom of the acyl chains. These data determine the extent to which the different regions of the proteins are able to penetrate negatively charged phospholipid bilayers.
机译:将源自马心脏细胞色素c的脱辅基细胞色素c旋转标记在一级序列N末端区域第14或17位的半胱氨酸残基上,并将来自酵母的细胞色素c旋转标记在序列位置102的单个半胱氨酸残基上在C末端区域。旋转标记的载脂细胞色素c和细胞色素c结合到由不同的带负电荷的磷脂组成的液体双层上,该流体也包含在头部或在sn-2酰基链中不同位置处被旋转标记的磷脂探针。通过自旋-自旋相互作用对自旋标记电子的微波饱和特性的影响,确定脂质结合蛋白上自旋标记的半胱氨酸残基的位置相对于不同自旋标记的磷脂中自旋标记的位置自旋共振谱。在双标记系统中观察到的增强的自旋弛豫源自海森堡自旋交换,这取决于蛋白质上自旋标记基团与脂质上自旋标记基团的可及性。发现当蛋白质与二肉豆蔻酰基-或油酰基-磷脂酰甘油结合时,马心脏脱细胞色素c中标记的半胱氨酸基团最靠近脂质酰基链的14-C原子,而当蛋白质结合到5-C原子时,则标记为5-C原子。该蛋白质与二肉豆蔻酰基磷脂酰甘油/二肉豆蔻酰基磷脂酰胆碱(15:85 mol / mol混合​​物)结合。与二油酰基磷脂酰甘油结合后,酵母细胞色素c中标记的半胱氨酸残基最靠近磷脂头基,但可能位于极性基团区域和5-C之间这些数据确定了蛋白质不同区域能够穿透带负电荷的磷脂双层的程度。

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  • 作者

    Snel, M M; Marsh, D;

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  • 年度 1994
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  • 原文格式 PDF
  • 正文语种 en
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