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首页> 外文期刊>Journal of molecular modeling >Tracing chirality, diameter dependence, and temperature-controlling of single-walled carbon nanotube non-covalent functionalization by biologically compatible peptide: insights from molecular dynamics simulations
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Tracing chirality, diameter dependence, and temperature-controlling of single-walled carbon nanotube non-covalent functionalization by biologically compatible peptide: insights from molecular dynamics simulations

机译:通过生物相容肽的单壁碳纳米管非共价官能化的跟踪性儿,直径依赖性和温度控制:来自分子动力学模拟的见解

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摘要

Biological applications of single-walled carbon nanotubes (SWCNTs), including drug delivery, require their functionalization with various functional groups such as peptides. Recently, a biologically compatible peptide (named PW3 with the sequence of NH2-Trp-Val-Trp-Val-Trp-Val-Lys-Lys-COOH) has been introduced as a good candidate for modification of carbon nanotubes due to its high affinity toward the exterior surface of these nano-carriers. In order to optimize the process of SWCNT peptide functionalization, the effects of chirality and diameter of SWCNTs as well as the temperature on PW3 adsorption were systematically investigated using molecular dynamics (MD) simulation. It was found that modification of chiral/zigzag SWCNT by PW3 peptide was more suitable compared with the armchair system due to the strong peptide-nanotube interactions and more water solubility at 310 K which can be well explained by microscopic structural investigations. Regarding the enhanced peptide-chiral nanotube interactions at the low temperature of 277 K, chiral nanotubes can be effective structures for SWCNT functionalization process at reduced temperatures. Our analysis indicated that disrupted PW3 and SWCNT hydration patterns and fewer internal interactions within the peptide could be responsible for the stronger peptide modification of SWCNT at higher temperatures. Additionally, "PW3/SWCNT" systems containing larger tube diameters formed more stable complexes owing to their effective surface area increment.
机译:单壁碳纳米管(SWCNT)的生物学应用,包括药物递送,需要它们具有各种官能团如肽的功能化。最近,已经引入了一种生物相容的肽(具有NH 2-TRP-VAT-VAL-TRP-VAL-TRP-VAL-TRP-VAL-LYS-COOH序列的命名为PW3)作为其具有高亲和力的良好候选者,用于改性碳纳米管朝向这些纳米载体的外表面。为了优化SWCNT肽官能化的过程,使用分子动力学(MD)模拟系统地研究了对SWCNT的手性和直径的影响以及PW3吸附的温度。结果发现,由于强肽 - 纳米管相互作用和在310K的310k下,与扶手椅系统相比,通过PW3肽的细胞/ Z字形SWCNT的改性更合适地与扶手椅系统的强型纳米管相互作用和更多的水溶性。通过微观结构研究可以很好地解释。关于低温的增强肽 - 手性纳米管相互作用,手性纳米管可以是SWCNT官能化过程的有效结构,在降低的温度下。我们的分析表明,破坏的PW3和SWCNT水合模式和肽内的内部相互作用较少可能是在较高温度下更强的SWCNT的肽改性。另外,由于其有效的表面积增量而形成较大管直径的“PW3 / SWCNT”系统形成更稳定的配合物。

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