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通过双电子-电子共振和圆二色性探究E/K肽卷曲螺旋组装体

Probing the E/K Peptide Coiled-Coil Assembly by Double Electron-Electron Resonance and Circular Dichroism.

作者信息

Golysheva Elena A, Boyle Aimee L, Biondi Barbara, Ruzza Paolo, Kros Alexander, Raap Jan, Toniolo Claudio, Formaggio Fernando, Dzuba Sergei A

机构信息

Novosibirsk State University, Novosibirsk 630090, Russian Federation.

V. V. Voevodsky Institute of Chemical Kinetics and Combustion, Novosibirsk 630090, Russian Federation.

出版信息

Biochemistry. 2021 Jan 12;60(1):19-30. doi: 10.1021/acs.biochem.0c00773. Epub 2020 Dec 15.

Abstract

Double electron-electron resonance (DEER, also known as PELDOR) and circular dichroism (CD) spectroscopies were explored for the purpose of studying the specificity of the conformation of peptides induced by their assembly into a self-recognizing system. The E and K peptides are known to form a coiled-coil heterodimer. Two paramagnetic TOAC α-amino acid residues were incorporated into each of the peptides (denoted as K** and E**), and a three-dimensional structural investigation in the presence or absence of their unlabeled counterparts E and K was performed. The TOAC spin-labels, replacing two Ala residues in each compound, are covalently and quasi-rigidly connected to the peptide backbone. They are known not to disturb the native structure, so that any conformational change can easily be monitored and assigned. DEER spectroscopy enables the measurement of the intramolecular electron spin-spin distance distribution between the two TOAC labels, within a length range of 1.5-8 nm. This method allows the individual conformational changes for the K**, K**/E, E**, and E**/K molecules to be investigated in glassy frozen solutions. Our data reveal that the conformations of the E** and K** peptides are strongly influenced by the presence of their counterparts. The results are discussed with those from CD spectroscopy and with reference to the already reported nuclear magnetic resonance data. We conclude that the combined DEER/TOAC approach allows us to obtain accurate and reliable information about the conformation of the peptides before and after their assembly into coiled-coil heterodimers. Applications of this induced fit method to other two-component, but more complex, systems, like a receptor and antagonists, a receptor and a hormone, and an enzyme and a ligand, are discussed.

摘要

为了研究肽组装成自识别系统所诱导的构象特异性,对双电子 - 电子共振(DEER,也称为脉冲电子双共振(PELDOR))和圆二色性(CD)光谱进行了探索。已知E肽和K肽会形成卷曲螺旋异二聚体。将两个顺磁性的TOACα - 氨基酸残基分别引入到每个肽中(分别记为K和E),并在有无未标记的对应物E和K存在的情况下进行三维结构研究。TOAC自旋标记取代了每种化合物中的两个丙氨酸残基,通过共价键与肽主链准刚性连接。已知它们不会干扰天然结构,因此任何构象变化都能轻松被监测和识别。DEER光谱能够测量两个TOAC标记之间的分子内电子自旋 - 自旋距离分布,范围在1.5 - 8 nm。该方法可用于研究玻璃态冷冻溶液中K**、K**/E、E和E/K分子的各自构象变化。我们的数据表明,E和K肽的构象受到其对应物存在的强烈影响。将结果与CD光谱的结果以及已报道的核磁共振数据进行了讨论。我们得出结论,DEER/TOAC联合方法使我们能够获得关于肽组装成卷曲螺旋异二聚体前后构象的准确可靠信息。还讨论了这种诱导契合方法在其他二元但更复杂的系统中的应用,如受体与拮抗剂、受体与激素以及酶与配体的系统。

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