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Molecular dynamics simulation of N-octyl-N-quaternized chitosan derivatives as a drug carrier

机译:N-Octyl-N-季铵化壳聚糖衍生物作为药物载体的分子动力学模拟

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The dynamic amphiphilic behavior of N-octyl-N-quaternized chitosan derivatives in aqueous solution is investigated using molecular dynamics (MD) simulations. It is found that quaternization decreases the intra-chain hydrogen bond formation which leads to reduced rigidity of the chitosan backbone. The effect of octyl substitution is much less pronounced. Analysis of hydrogen bonding reveals the presence of a hydrogen bond within the quaternized glucosamine unit, which causes the distortion of the usual chair conformation. Also, H-bond formation with the solvent water molecules was found to stabilize the intra-chain HO3-05 hydrogen bond. Additionally, an aqueous solution containing the 10%-N-octyl-50%-N-quaternized chitosan derivative (1O5QCS) and the anti-cancer drug 10-hydroxycamptothecin (10-HCPT) was also investigated using MD simulations. It was found that van der Waals and electrostatic forces have virtually equal contributions to the nonbonded interactions responsible for complexation. Furthermore, H-bond formation between drug and drug carrier contributes to lactone ring stability and subsequent bioavailability.
机译:使用分子动力学(MD)模拟研究了N-辛基-N-季铵化壳聚糖衍生物在水溶液中的动态两亲性能。发现季铵化降低了链内氢键形成,这导致壳聚糖骨架的刚性降低。辛基替换的效果远不太明显。氢键分析显示季铵化葡萄糖胺单元内的氢键存在,这导致通常的椅子构象的变形。此外,发现用溶剂水分子的H键形成稳定在链内HO3-05氢键。另外,还使用MD模拟研究了含有10%-N-辛基-50%-N-季铵蛋白酶衍生物(105℃)和抗癌药物10-羟基胺(10-HCPT)的水溶液。发现范德华和静电力与负责络合负责的非粘结相互作用几乎相同的贡献。此外,药物和药物载体之间的H键形成有助于内酯环稳定性和随后的生物利用度。

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