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首页> 外文期刊>Applied Magnetic Resonance >Self-Aggregation and Orientation of the Ion Channel-Forming Zervamicin IIA in the Membranes of ePC Vesicles Studied by cw EPR and ESEEM Spectroscopy
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Self-Aggregation and Orientation of the Ion Channel-Forming Zervamicin IIA in the Membranes of ePC Vesicles Studied by cw EPR and ESEEM Spectroscopy

机译:CW EPR和ESEEM光谱研究ePC囊泡膜中离子通道形成的Zervamicin IIA的自聚集和取向

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The ion channel-forming peptide antibiotic zervamicin A was studied in egg phosphocholin lipid membranes of large multilamellar vesicles (LMV) at 77 K. Continuous wave electron paramagnetic resonance (EPR) and electron spin echo envelope modulation (ESEEM) methods combined with site-specific electron spin labeling were used to study the aggregation and immersion depth of two analog molecules, i.e., each monolabeled either at the N- or C-terminal end of the helical molecule. Analysis of the shape of the EPR spectra indicates that zervamicin molecules form aggregates in which the dipolar interaction between the spin labels at the N-terminus is substantially larger than that between the labels at the C-terminus. The ESEEM method was used to study the interaction between the nitroxide radical spin labels of the zervamicin molecules and deuterium nuclei in LMV, which were prepared using a D2O buffer. It is established that the largest amplitude of deuterium modulation of the unpaired electron is observed for zervamicin molecules labeled at the N-terminus. Based on the analysis of the Fourier parameters of the deuterium modulated spectrum, a model of the immersion depth of the terminal ends of the zervamicin molecule in a lipid bilayer is formulated. All of the spin labels at the N-terminus are grouped at the lipid–water interface, whereas 60% of labels at the C-terminus are located at the lipid–water interface and 40% are more deeply inserted into the lipid bilayer.
机译:在77 K下对大型多层囊泡(LMV)的卵磷脂胆固醇膜中的离子通道形成肽抗生素zervamicin A进行了研究。结合位点特异性的连续波电子顺磁共振(EPR)和电子自旋回波包络调制(ESEEM)方法电子自旋标记用于研究两个类似分子的聚集和浸入深度,即每个单个标记在螺旋分子的N或C末端。对EPR光谱形状的分析表明,泽尔米霉素分子形成聚集体,其中在N末端的自旋标记之间的偶极相互作用显着大于在C末端的标记之间的偶极相互作用。用ESEEM方法研究了用D 2 O缓冲液制备的泽维菌素分子的氮氧自由基自旋标记与LMV中氘核的相互作用。已确定,对于在N端标记的zervamicin分子,观察到未配对电子的氘调制最大幅度。基于氘调制谱的傅立叶参数的分析,制得了泽瓦米星分子末端在脂质双层中的浸入深度模型。 N端的所有旋转标记都在脂质-水界面处分组,而C端的60%的标记位于脂质-水界面处,而40%的标记更深入地插入了脂质双层。

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