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Osmolyte Trimethylamine-N-Oxide Does Not Affect the Strength of Hydrophobic Interactions: Origin of Osmolyte Compatibility

机译:渗透剂三甲胺-N-氧化物不影响疏水相互作用的强度:渗透剂相容性的起源

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摘要

Osmolytes are small organic solutes accumulated at high concentrations by cells/tissues in response to osmotic stress. Osmolytes increase thermodynamic stability of folded proteins and provide protection against denaturing stresses. The mechanism of osmolyte compatibility and osmolyte-induced stability has, therefore, attracted considerable attention in recent years. However, to our knowledge, no quantitative study of osmolyte effects on the strength of hydrophobic interactions has been reported. Here, we present a detailed molecular dynamics simulation study of the effect of the osmolyte trimethylamine-N-oxide (TMAO) on hydrophobic phenomena at molecular and nanoscopic length scales. Specifically, we investigate the effects of TMAO on the thermodynamics of hydrophobic hydration and interactions of small solutes as well as on the folding-unfolding conformational equilibrium of a hydrophobic polymer in water. The major conclusion of our study is that TMAO has almost no effect either on the thermodynamics of hydration of small nonpolar solutes or on the hydrophobic interactions at the pair and many-body level. We propose that this neutrality of TMAO toward hydrophobic interactions—one of the primary driving forces in protein folding—is at least partially responsible for making TMAO a “compatible” osmolyte. That is, TMAO can be tolerated at high concentrations in organisms without affecting nonspecific hydrophobic effects. Our study implies that protein stabilization by TMAO occurs through other mechanisms, such as unfavorable water-mediated interaction of TMAO with the protein backbone, as suggested by recent experimental studies. We complement the above calculations with analysis of TMAO hydration and changes in water structure in the presence of TMAO molecules. TMAO is an amphiphilic molecule containing both hydrophobic and hydrophilic parts. The precise balance of the effects of hydrophobic and hydrophilic segments of the molecule appears to explain the virtual noneffect of TMAO on the strength of hydrophobic interactions.
机译:渗透液是细胞/组织在高浓度下响应渗透压而积累的少量有机溶质。渗透物增加了折叠蛋白的热力学稳定性,并提供了防止变性应力的保护作用。因此,近年来渗透液相容性和渗透液诱导的稳定性的机制引起了相当大的关注。然而,据我们所知,尚未报道渗透压对疏水相互作用强度的影响的定量研究。在这里,我们提供了详细的分子动力学模拟研究,研究了渗透压三甲胺-N-氧化物(TMAO)在分子和纳米尺度上对疏水现象的影响。具体来说,我们研究TMAO对疏水水合的热力学和小溶质的相互作用以及疏水聚合物在水中的折叠-展开构象平衡的影响。我们研究的主要结论是,TMAO几乎不影响小的非极性溶质的水合热力学,也不影响配对和多体水平的疏水相互作用。我们认为,TMAO对疏水相互作用的中性(蛋白质折叠中的主要驱动力之一)至少部分负责使TMAO成为“兼容的”渗透液。即,可以在生物体中以高浓度耐受TMAO而不会影响非特异性疏水作用。我们的研究表明,通过TMAO进行的蛋白质稳定作用是通过其他机制发生的,例如最近的实验研究表明,TMAO与蛋白质骨架之间不利的水介导的相互作用。我们通过分析TMAO的水合作用和存在TMAO分子时水结构的变化来补充上述计算。 TMAO是包含疏水和亲水部分的两亲分子。分子疏水和亲水链段作用的精确平衡似乎可以解释TMAO对疏水相互作用强度的虚拟影响。

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