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Lipid Bilayer Topology of the Transmembrane α-Helix of M13 Major Coat Protein and Bilayer Polarity Profile by Site-Directed Fluorescence Spectroscopy

机译:M13主要外壳蛋白跨膜α-螺旋的脂质双层拓扑结构和定点荧光光谱法的双层极性分布

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摘要

This article presents a new formalism to perform a quantitative fluorescence analysis using the Stokes shift of AEDANS-labeled cysteine mutants of M13 major coat protein incorporated in lipid bilayers. This site-directed fluorescence spectroscopy approach enables us to obtain the topology of the bilayer-embedded transmembrane α-helix from the orientation and tilt angles, and relative bilayer location. Both in pure dioleoylphosphatidylcholine and dioleoylphosphatidylcholine/dioleoylphosphatidylglycerol (4:1 mol/mol) bilayers, which have a similar bilayer thickness, the tilt angle of the transmembrane helix of the coat protein turns out to be 23° ± 4. Upon decreasing the hydrophobic thickness on going from dieicosenoylphosphatidylcholine to dimyristoylphosphatidylcholine, the tilt angle and orientation angle of the transmembrane α-helix change. The protein responds to an increase of hydrophobic stress by increasing the tilt angle so as to keep much of its hydrophobic part inside the bilayer. At the same time, the transmembrane helix rotates at its long axis so as to optimize the hydrophobic and electrostatic interactions of the C-terminal phenylalanines and lysines, respectively. The increase of tilt angle cannot completely keep the hydrophobic protein section within the bilayer, but the C-terminal part remains anchored at the acyl-chain/glycerol backbone interface at the cost of the N-terminal section. In addition, our analysis results in the profile of the dielectric constant of the hydrophobic domain of the bilayer. For all phospholipid bilayers studied the profile has a concave shape, with a value of the dielectric constant of 4.0 in the center of the bilayer. The dielectric constant increases on approaching the headgroup region with a value of 12.4 at the acyl-chain/glycerol backbone interface for the various phosphatidylcholines with different chain lengths. For dioleoylphosphatidylcholine/dioleoylphosphatidylglycerol (4:1 mol/mol) bilayers the value of the dielectric constant at the acyl-chain/glycerol backbone interface is 18.6. In conclusion, the consistency of our analysis shows that the applied cysteine-scanning mutagenesis method with AEDANS labeling of a helical transmembrane protein in combination with a quantitative formalism offers a reliable description of the lipid bilayer topology of the protein and bilayer properties. This also indicates that the spacer link between the protein and AEDANS label is long enough to monitor the local polarity of the lipid environment and not that of the amino-acid residues of the protein, and short enough to have the topology of the protein imposing on the fluorescence properties of the AEDANS label.
机译:本文提出了一种新的形式化方法,可使用脂质双分子层中掺入的AEDANS标记的M13主要外壳蛋白的半胱氨酸突变体的斯托克斯位移进行定量荧光分析。这种定点荧光光谱法使我们能够从取向和倾斜角以及相对双层位置获得双层嵌入式跨膜α-螺旋的拓扑。在具有相似双层厚度的纯二油酰磷脂酰胆碱和二油酰磷脂酰胆碱/二油酰磷脂酰甘油(4:1 mol / mol)双层中,外壳蛋白的跨膜螺旋的倾斜角被证明是23°±4。从二烯二十碳酰磷脂酰胆碱转变为二豆蔻酰磷脂酰胆碱时,跨膜α-螺旋的倾斜角和取向角发生变化。蛋白质通过增加倾斜角来响应疏水应力的增加,从而将其大部分疏水部分保留在双层中。同时,跨膜螺旋在其长轴上旋转,以分别优化C端苯丙氨酸和赖氨酸的疏水和静电相互作用。倾斜角的增加不能将疏水性蛋白质部分完全保留在双层中,但是C末端部分仍然锚定在酰基链/甘油主链界面处,但以N末端部分为代价。另外,我们的分析导致双层疏水域的介电常数分布。对于所研究的所有磷脂双层,其轮廓均为凹形,双层中心的介电常数为4.0。在具有不同链长的各种磷脂酰胆碱的酰基链/甘油主链界面处,介电常数在接近头基区域时以12.4的值增加。对于二油酰基磷脂酰胆碱/二油酰基磷脂酰甘油(4:1 mol / mol)双层,在酰基链/甘油主链界面处的介电常数值为18.6。总而言之,我们分析的一致性表明,应用的半胱氨酸扫描诱变方法结合螺旋形式的跨膜蛋白的AEDANS标记和定量形式,为该蛋白的脂质双层拓扑和双层性质提供了可靠的描述。这也表明蛋白质和AEDANS标记之间的间隔子连接足够长,可以监测脂质环境的局部极性,而不是蛋白质氨基酸残基的局部极性,并且足够短,可以使蛋白质的拓扑结构位于AEDANS标签的荧光特性。

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