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Bio-mimicking of Proline-Rich Motif Applied to Carbon Nanotube Reveals Unexpected Subtleties Underlying Nanoparticle Functionalization

机译:脯氨酸丰富的母题的生物模仿应用于碳纳米管揭示了纳米粒子功能化背后的意外细微之处。

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摘要

Here, we report computational studies of the SH3 protein domain interacting with various single-walled carbon nanotubes (SWCNT) either bare or functionalized by mimicking the proline-rich motif (PRM) ligand (PPPVPPRR) and compare it to the SH3-PRM complex binding. With prolines or a single arginine attached, the SWCNT gained slightly on specificity when compared with the bare control, whereas with multi-arginine systems the specificity dropped dramatically to our surprise. Although the electrostatic interaction provided by arginines is crucial in the recognition between PRM and SH3 domain, our results suggest that attaching multiple arginines to the SWCNT has a detrimental effect on the binding affinity. Detailed analysis of the MD trajectories found two main factors that modulate the specificity of the binding: the existence of competing acidic patches at the surface of SH3 that leads to “trapping and clamping” by the arginines, and the rigidity of the SWCNT introducing entropic penalties in the proper binding. Further investigation revealed that the same “clamping” phenomenon exits in the PRM-SH3 system, which has not been reported in previous literature. The competing effects between nanoparticle and its functionalization components revealed by our model system should be of value to current and future nanomedicine designs.
机译:在这里,我们报告的SH3蛋白域与各种单壁碳纳米管(SWCNT)相互作用或通过模拟富含脯氨酸的基序(PRM)配体(PPPVPPRR)进行功能化的计算研究,并将其与SH3-PRM复杂结合。与脯氨酸或单精氨酸相比,SWCNT与裸露对照相比在特异性上略有提高,而在多精氨酸系统中,SWCNT的特异性大大降低。尽管精氨酸提供的静电相互作用对于PRM和SH3结构域之间的识别至关重要,但我们的结果表明,将多个精氨酸连接到SWCNT对结合亲和力有不利影响。对MD轨迹的详细分析发现,有两个主要因素可调节结合的特异性:SH3表面存在竞争性酸性斑块,导致精氨酸“捕获和夹持”,以及SWCNT的刚性引入熵刑在适当的约束下。进一步的调查表明,在PRM-SH3系统中存在相同的“夹紧”现象,以前的文献中尚未对此进行报道。我们的模型系统揭示的纳米粒子及其功能化成分之间的竞争效应对当前和未来的纳米药物设计具有价值。

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