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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Heterogeneous Impacts of Protein-Stabilizing Osmolytes on Hydrophobic Interaction
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Heterogeneous Impacts of Protein-Stabilizing Osmolytes on Hydrophobic Interaction

机译:蛋白质稳定性渗透物对疏水性相互作用的异质冲击

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摘要

Osmolytes' mechanism of protecting proteins against denaturation is a longstanding puzzle, further complicated by complex diversities inherent in protein sequences. An emergent approach in understanding the osmolytes' mechanism of action toward biopolymer has been to investigate osmolytes' interplay with hydrophobic interaction, the major driving force of protein folding. However, the crucial question is whether all of these protein-stabilizing osmolytes display a single unified mechanism toward hydrophobic interactions. By simulating the hydrophobic collapse of a macromolecule in aqueous solutions of two such osmoprotectants, glycine and trimethyl N-oxide (TMAO), both of which are known to stabilize protein's folded conformation, we here demonstrate that these two osmolytes can impart mutually contrasting effects toward hydrophobic interaction. Although TMAO preserves its 2 protectant nature across diverse range of polymer-osmolyte interactions, glycine is found to display an interesting crossover from being a protectant at weaker polymer-osmolyte interactions to being a denaturant of hydrophobicity at stronger polymer-osmolyte interactions. A preferential-interaction analysis reveals that a subtle balance of conformation-dependent exclusion/binding of osmolyte molecules from/to the macromolecule holds the key to overall heterogenous behavior. Specifically, TMAOs' consistent stabilization of collapsed configuration of macromolecule is found to be a result of TMAOs' preferential binding to polymers via hydrophobic methyl groups. However, polar glycine's crossover from being a protectant to denaturant across polymer-osmolyte interaction is rooted in its switch from preferential exclusion to preferential binding to the polymer with increasing interaction. Overall, by highlighting the complex interplay of osmolytes with hydrophobic interaction, this work puts forward the necessity of quantitative categorization of osmolytes' action in protein.
机译:保护蛋白质免受变性的蛋白质的机制是一种长期的难题,通过蛋白质序列固有的复杂多样性进一步复杂化。在理解渗透物对生物聚合物的作用机制的一种紧急方法已经研究了蛋白质折叠的主要驱动力的渗透性的渗透性相互作用。然而,至关重要的问题是所有这些蛋白质稳定的渗透性渗透物是否显示出疏水相互作用的单一统一机制。通过模拟两种这种渗透剂的水溶液中大分子的疏水塌陷,甘氨酸和三甲基N-氧化物(TMAO),已知稳定蛋白质的折叠构象,我们在这里证明这两种渗透物可以赋予相互对比的效果疏水相互作用。尽管TMAO在不同范围的聚合物 - 渗透物相互作用中保持其2个保护性,但发现甘氨酸显示出在较弱的聚合物 - 渗透物相互作用中的保护剂,以较强的聚合物 - 渗透物相互作用的疏水性的疏水性。优先相互作用分析表明,渗透依赖性/与大分子分子的渗透依赖性/结合的微妙平衡保持了整体异质行为的关键。具体地,发现TMAOS的倒塌构型的倒塌构型通过疏水甲基是TMAOS的优先与聚合物结合的结果。然而,极性甘氨酸穿过聚合物 - 渗透物相互作用的保护剂对变性剂的细胞,从优先排除到优先与聚合物的优先粘合,随着相互作用的增加。总体而言,通过突出渗透疏水互动的复杂相互作用,这项工作提出了渗透蛋白质中的渗透性作用的定量分类的必要性。

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