首页> 外文期刊>The Protein Journal >Characterization the Effects of Structure and Energetics of Intermolecular Interactions on the Oligomerization of Peptides in Aqueous 2, 2, 2-Trifluoroethanol via Circular Dichroism and Nuclear Magnetic Resonance Spectroscopy
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Characterization the Effects of Structure and Energetics of Intermolecular Interactions on the Oligomerization of Peptides in Aqueous 2, 2, 2-Trifluoroethanol via Circular Dichroism and Nuclear Magnetic Resonance Spectroscopy

机译:通过圆二色性和核磁共振波谱表征分子间相互作用的结构和能量对肽在2,2,2-三氟乙醇水溶液中寡聚的影响

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Intermolecular interactions are of fundamental importance to fully comprehend a wide range of protein behaviors such as oligomerization, folding and recognition. Two peptides, NPY[18?36] and NPY[15?29], segmented from human neuropeptide Y (hNPY), were synthesized in this work to study the interaction between species. Information about intermolecular interactions was extracted from their oligomerizing behaviors. The results from CD and NMR showed that the addition of 2, 2, 2-trifluoroethanol (TFE) induces a stable helix in each peptides and an extended helix in NPY[18?36], formed between residues 30-36. Pulsed field gradient NMR data revealed that NPY[15?29] forms a larger oligomer at lower temperatures and continuously dissociates into the monomeric form with increasing temperature. NPY[18?36] was also found to undergo an enhanced interaction with TFE and a more favorable self-association at higher temperatures. We characterized the changes of oligomerized states with respect to temperature to infer the effects of entropy and interaction energy on the association-dissociation equilibrium. As shown by NPY[15?29], deletion of helical secondary structure or residues from the C-terminal segment may disrupt the solvation by TFE and results in entropy increase as the oligomer dissociates. Unlike that in NPY[15?29], the extended helix in NPY[18?36] improves the binding of TFE, and as a result, entropy is gained via the transfer of the TFE cluster from the interface between monomeric peptides into the bulk solvent. This observation suggests that the oligomerized state may be modulated by the entropy and energetics contributed by helical segments in the oligomerization process.
机译:分子间相互作用对于全面理解各种蛋白质行为(例如寡聚,折叠和识别)至关重要。从人类神经肽Y(hNPY)中分离出两种肽NPY [18?36] 和NPY [15?29] ,以研究物种之间的相互作用。关于分子间相互作用的信息是从它们的低聚行为中提取的。 CD和NMR的结果表明,添加2、2、2-三氟乙醇(TFE)可在每个肽中诱导出稳定的螺旋,并在残基30-36之间形成NPY [18?36] 的扩展螺旋。 。脉冲场梯度NMR数据表明,NPY [15?29] 在较低的温度下会形成较大的低聚物,并随着温度的升高而连续分解为单体形式。还发现NPY [18?36] 在更高的温度下与TFE的相互作用增强,自交联更有利。我们表征了低聚态相对于温度的变化,以推断熵和相互作用能对缔合-离解平衡的影响。如NPY [15?29] 所示,从C末端片段中删除螺旋二级结构或残基可能会破坏TFE的溶剂化作用,并随着低聚物解离而导致熵增加。与NPY [15?29] 不同,NPY [18?36] 中的扩展螺旋改善了TFE的结合,结果,通过从TFE团簇转移获得熵。单体肽与本体溶剂之间的界面。该观察结果表明,低聚态可能受到低聚过程中螺旋链段贡献的熵和高能的影响。

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