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首页> 外文期刊>The Journal of Chemical Physics >Characterization of the restricted rotation of the dimethyl groups in chemically N-terminal ~(13)C-labeled antifreeze glycoproteins:A temperature-dependent study in water to ice through the supercooled state
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Characterization of the restricted rotation of the dimethyl groups in chemically N-terminal ~(13)C-labeled antifreeze glycoproteins:A temperature-dependent study in water to ice through the supercooled state

机译:化学N端〜(13)C标记的抗冻糖蛋白中二甲基的旋转受限的表征:水到冰中过冷状态的温度依赖性研究

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摘要

Site-specific chemical modification,especially with isotopically enriched groups,allows one to study the structure and dynamics of proteins for which uniform enrichment is difficult.When the N-terminal alanine in antifreeze glycoprotein (AFGP) is replaced with an N,N-dimethyl alanine the methyl groups show signatures of slow rotation about the C-N bond.In order to separate the local dynamics of the N-terminus from the overall protein dynamics,we present a complete characterization of this dynamics.Temperature-dependent nuclear magnetic-resonance experiments from room temperature to subzero temperatures,including the supercooled state and in the presence of ice,are presented.Quantum chemical calculations are also performed on a localized N-terminus of the AFGP.Our results show that in the solution state at room temperature and in the super cooled regime,the dimethyl groups undergo a slow,restricted rotation with an unequal distribution of population between two major conformations.At lower temperatures in the presence of ice,the dynamics become much more complex due to freezing out of several conformational states.Based on these results,we conclude that the segmental dynamics of the N-terminus are local to the first residue and do not affect the overall dynamics of the protein.
机译:特定于位点的化学修饰,尤其是同位素富集的基团,使人们能够研究难以均匀富集的蛋白质的结构和动力学。当抗冻糖蛋白(AFGP)中的N端丙氨酸被N,N-二甲基取代时丙氨酸的甲基基团表现出围绕CN键缓慢旋转的特征。为了将N端的局部动力学与整体蛋白动力学分开,我们对这种动力学进行了全面的表征。温度依赖性核磁共振实验来自给出了室温至零度以下的温度,包括过冷状态和冰的存在。还对AFGP的局部N端进行了化学计算。在过冷状态下,二甲基基团经历缓慢,受限的旋转,两个主要构象之间的种群分布不均。在有冰的情况下,由于冻结成几种构象状态,动力学变得更加复杂。基于这些结果,我们得出结论,N末端的分段动力学位于第一个残基局部,并不影响第一个残基。蛋白质的整体动力学。

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