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通过核磁共振光谱法测定并经受限分子动力学模拟优化的溶液中IgG1铰链肽衍生物的构象分析。

Conformational analysis of a IgG1 hinge peptide derivative in solution determined by NMR spectroscopy and refined by restrained molecular dynamics simulations.

作者信息

Kessler H, Mronga S, Müller G, Moroder L, Huber R

机构信息

Organisch-Chemisches Institut, TU-München, Garching, Germany.

出版信息

Biopolymers. 1991 Sep;31(10):1189-204. doi: 10.1002/bip.360311007.

DOI:10.1002/bip.360311007
PMID:1665090
Abstract

The hinge region links the antigen binding Fab part to the constant Fc domain in immunoglobulins. For the hinge peptide derivative [AcThr(OtBu)-Cys-Pro-Pro-Cys-Pro-Ala-ProNH2]2 the assignment of the 1H and 13C resonances was achieved by two-dimensional nmr techniques: total correlation spectroscopy (TOCSY), nuclear Overhauser enhancement spectroscopy (NOESY), rotating frame nuclear Overhauser enhancement spectroscopy (ROESY), heteronuclear multiple quantum coherence (HMQC) transfer, and a HSQC (modified Overbodenhausen experiment) with high resolution in F1, which was several times folded in F1 but still phase correctable. Conformational relevant parameters (78 nuclear Overhauser effect distance restraints, 3JHH for prochiral assignments, temperature gradients) were determined by nmr and served as input data for molecular dynamics (MD) structure refinement. A simulated model compound corresponding to the [Cys-Pro-Pro-Cys]2 core elongated by the peptide chains in the Fab and Fc direction served as a starting structure for the final MD run. The conformation calculated in in vacuo does not agree with the C2 symmetry required from nmr data, but the structure obtained by a water simulation fulfills the requirement. Here the core of the hinge peptide derivative adopts a polyproline II double helix as in the x-ray structure of IgG1. Hence, segments responsible for the internal flexibility are located outside the core as confirmed by the flexibility of the solvent exposed C termini.

摘要

铰链区将免疫球蛋白中的抗原结合Fab部分与恒定的Fc结构域连接起来。对于铰链肽衍生物[AcThr(OtBu)-Cys-Pro-Pro-Cys-Pro-Ala-ProNH2]2,通过二维核磁共振技术实现了1H和13C共振的归属:全相关谱(TOCSY)、核Overhauser增强谱(NOESY)、旋转框架核Overhauser增强谱(ROESY)、异核多量子相干(HMQC)转移以及在F1中具有高分辨率的HSQC(改进的Overbodenhausen实验),该实验在F1中进行了多次折叠但仍可进行相位校正。通过核磁共振确定了构象相关参数(78个核Overhauser效应距离限制、用于前手性归属的3JHH、温度梯度),并将其用作分子动力学(MD)结构优化的输入数据。一个对应于[Cys-Pro-Pro-Cys]2核心并在Fab和Fc方向上由肽链延伸的模拟模型化合物用作最终MD运行的起始结构。在真空中计算得到的构象与核磁共振数据要求的C2对称性不一致,但通过水模拟得到的结构满足了该要求。在这里,铰链肽衍生物的核心采用了聚脯氨酸II双螺旋结构,就像IgG1的x射线结构一样。因此,如溶剂暴露的C末端的灵活性所证实的,负责内部灵活性的片段位于核心之外。

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