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一项未被探索的显著的 PNIPAM-渗透压剂相互作用研究:综合实验与模拟方法。

An unexplored remarkable PNIPAM-osmolyte interaction study: An integrated experimental and simulation approach.

机构信息

Department of Chemistry, University of Delhi, Delhi 110007, India.

K L College of Pharmacy, K L University, Guntur 522 502, India; Discipline of Pharmaceutical Sciences, School of Health Sciences, University of KwaZulu - Natal (UKZN), Westville Campus, Durban 4000, South Africa.

出版信息

J Colloid Interface Sci. 2017 Oct 15;504:417-428. doi: 10.1016/j.jcis.2017.05.109. Epub 2017 May 30.

Abstract

We investigate the aggregation and collapse of water soluble amphiphilic polymer, poly(N-isopropylacrylamide) (PNIPAM), in aqueous solution containing variable amount of trehalose, sucrose and sorbitol. The effect of these osmolytes on the coil to globular transition of the PNIPAM is studied by the use of comprehensive biophysical techniques like UV-visible spectroscopy, fluorescence spectroscopy, dynamic light scattering and Fourier transform infrared spectroscopy (FTIR). The polarization induced by these additives promotes the collapsed state of PNIPAM at much lower temperature as compared to the pure PNIPAM in aqueous solution. The decrease in the lower critical solution temperature (LCST) of the polymer with increase in the concentration of osmolyte is due to the significant changes in the interactions among polymer, osmolyte and water. The high affinity of these additives toward water destabilize the hydrated macromolecular structure via preferential interactions. To investigate the molecular mechanism behind the decrease in the LCST of the polymer in presence of the osmolytes, a molecular dynamics (MD) study was performed. The MD simulation has clearly shown the reduction in hydration shell of the polymer after interacting with the osmolyte. MD study revealed significant changes in polymer conformation because of osmolyte interaction and strongly supports the experimental observation of polymer phase transition at temperature lower than typical LCST. The driving force for concomitant sharp configurational transition has been attributed to the rupture of hydrogen bonds between water and polymer and to the hydrophobic association of the polymer. The results of the present study can be used in the bioresponsive smart PNIPAM-based devices as its LCST is close to body temperature. This study provides an alternative method to tune the LCST of the widely accepted model PNIPAM polymer.

摘要

我们研究了在含有不同浓度海藻糖、蔗糖和山梨醇的水溶液中,水溶性两亲性聚合物聚(N-异丙基丙烯酰胺)(PNIPAM)的聚集和坍塌。通过使用全面的生物物理技术,如紫外-可见光谱、荧光光谱、动态光散射和傅里叶变换红外光谱(FTIR),研究了这些渗透剂对 PNIPAM 从线圈到球状转变的影响。这些添加剂引起的极化作用促使 PNIPAM 在比纯水溶液更低的温度下进入坍塌状态。聚合物的低临界溶液温度(LCST)随渗透剂浓度的增加而降低,这是由于聚合物、渗透剂和水之间的相互作用发生了显著变化。这些添加剂对水的高亲和力通过优先相互作用破坏了水合大分子结构,从而使水合大分子结构不稳定。为了研究在渗透剂存在下聚合物 LCST 降低的分子机制,进行了分子动力学(MD)研究。MD 模拟清楚地表明,与渗透剂相互作用后,聚合物的水合壳层减少。MD 研究表明,由于渗透剂相互作用,聚合物构象发生了显著变化,这强烈支持了实验观察到的聚合物在低于典型 LCST 的温度下发生相变的现象。同时发生的急剧构象转变的驱动力归因于水和聚合物之间氢键的断裂以及聚合物的疏水缔合。本研究的结果可用于基于智能 PNIPAM 的生物响应性设备中,因为其 LCST 接近体温。该研究为广泛接受的模型 PNIPAM 聚合物的 LCST 调节提供了一种替代方法。

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