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首页> 外文期刊>Journal of molecular graphics & modelling >How do carbon nanotubes serve as carriers for gemcitabine transport in a drug delivery system?
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How do carbon nanotubes serve as carriers for gemcitabine transport in a drug delivery system?

机译:碳纳米管如何在药物输送系统中充当吉西他滨运输的载体?

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摘要

Aiming at understanding the molecular properties of the encapsulation of the anticancer drug gemcitabine in the single-walled carbon nanotube (SWCNT), molecular dynamics (MD) simulations were applied to the two scenarios; that of gemcitabine filling inside the SWCNT, and that of the drug in the free state. Inside the SWCNT, the cytosine ring of gemcitabine was found to form a π-π stacking conformation with the SWCNT surface, and this movement is not along the centerline of the tube from one end to the other of the tube where the distance from the center of gravity of the molecule to the surface is 4.7. A tilted angle of 19° was detected between the cytosine ring of gemcitabine and the inner surface of SWCNT. In comparison to its conformation in the free form, no significant difference was observed on the torsion angle between the five- (ribose) and the six- (cytosine) membered rings. However, gemcitabine inside the SWCNT was found to have a lower number of solvating water molecules but with a stronger net solvation than the drug in the free state. This is due to the collaborative interactions between gemcitabine and the surface of the SWCNT. In addition, the steered molecular dynamics simulation (SMD) approach was employed to investigate the binding free energy for gemcitabine moving from one end to another end throughout the SWCNT. In excellent agreement with that yielded from the classical MD, the SMD energy profile confirms that the drug molecule prefers to locate inside the SWCNT.
机译:为了了解抗癌药物吉西他滨在单壁碳纳米管(SWCNT)中的包封分子特性,将分子动力学(MD)模拟应用于这两种情况。 SWCNT内部填充的是吉西他滨,游离状态是药物的。在SWCNT内部,发现吉西他滨的胞嘧啶环与SWCNT表面形成π-π堆积构象,并且该运动不是沿着管的中心线从一端到另一端,即从中心到中心的距离分子在表面的重力为4.7。在吉西他滨的胞嘧啶环和SWCNT的内表面之间检测到19°的倾斜角。与游离形式的构象相比,在五(核糖)和六(胞嘧啶)成员环之间的扭转角上没有观察到显着差异。但是,发现SWCNT内部的吉西他滨比自由状态的药物具有更少的溶剂化水分子数量,但具有更强的净溶剂化能力。这是由于吉西他滨与SWCNT表面之间的协同相互作用。此外,采用分子导向动力学模拟(SMD)方法研究吉西他滨在整个SWCNT中从一端移动到另一端的结合自由能。与经典MD产生的结果非常吻合,SMD能量图证实了该药物分子更喜欢位于SWCNT内部。

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