首页> 外文期刊>Bulletin of the American Physical Society >APS -APS March Meeting 2017 - Event - Simulation Studies of LCST-like Phase Transitions in Elastin-like Polypeptides (ELPs) and Conjugates of ELP with Rigid Macromolecules
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APS -APS March Meeting 2017 - Event - Simulation Studies of LCST-like Phase Transitions in Elastin-like Polypeptides (ELPs) and Conjugates of ELP with Rigid Macromolecules

机译:APS -APS 2017年3月会议-活动-弹性蛋白样多肽(ELPs)中的LCST样相变和ELP与刚性大分子缀合物的模拟研究

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We use atomistic (AA) and coarse-grained (CG) molecular dynamics simulations to elucidate the thermodynamic driving forces governing lower critical solution temperature (LCST)-like phase transition exhibited by elastin-like peptides (ELPs) and conjugates of ELP with other macromolecules. In the AA simulations, we study ELP oligomers in explicit water, and mark the transition as the temperature at which they undergo a change in ``hydration'' state. While AA simulations are restricted to small systems of short ELPs and do not capture the chain aggregation observed in experiments of ELPs, they guide the phenomenological CG model development by highlighting the solvent induced polymer-polymer effective interactions with changing temperature. In the CG simulations, we capture the LCST polymer aggregation by increasing polymer-polymer effective attractive interactions in an implicit solvent. We examine the impact of conjugating a block of LCST polymer to another rigid unresponsive macromolecular block on the LCST-like transition. We find that when multiple LCST polymers are conjugated to a rigid polymer block, increased crowding of the LCST polymers shifts the onset of chain aggregation to smaller effective polymer-polymer attraction compared to the free LCST polymers. These simulation results provide guidance on the design of conjugated bio-mimetic thermoresponsive materials, and shape the fundamental understanding of the impact of polymer crowding on phase behavior in thermoresponsive LCST polymer systems.
机译:我们使用原子(AA)和粗粒(CG)分子动力学模拟来阐明控制弹性蛋白样肽(ELPs)和ELP与其他大分子结合物表现出的较低临界溶液温度(LCST)样相变的热力学驱动力。在AA模拟中,我们研究了显性水中的ELP低聚物,并将过渡标记为它们在``水合''状态下发生变化的温度。虽然AA模拟仅限于短ELP的小型系统,并且无法捕获ELP实验中观察到的链状聚集,但它们通过强调溶剂诱导的聚合物-聚合物在温度变化时的有效相互作用来指导现象学CG模型的开发。在CG模拟中,我们通过在隐式溶剂中增加聚合物-聚合物的有效吸引相互作用来捕获LCST聚合物的聚集。我们研究了将LCST聚合物嵌段与另一个刚性无响应大分子嵌段共轭对类LCST过渡的影响。我们发现,当将多个LCST聚合物共轭到一个刚性聚合物嵌段上时,与自由LCST聚合物相比,LCST聚合物的拥挤增加将链聚集的开始转移到较小的有效聚合物-聚合物吸引力上。这些模拟结果为共轭仿生热响应材料的设计提供了指导,并形成了对聚合物拥挤对热响应LCST聚合物系统中相行为影响的基本理解。

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