壳聚糖纳米水凝胶构象和形态的MD模拟和SEM研究

María Guadalupe Pineda-Pimentel, S. R. Vasquez‐Garcia, N. Flores-Ramírez, Juan Carlos Farías-Sánchez
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引用次数: 1

摘要

壳聚糖是一种生物相容性聚合物,具有很大的商业价值,因为它可以加工成各种形状和大小的设备,如膜、凝胶和纳米颗粒。大多数情况下,细胞在具有三维结构的纳米结构材料上的附着和增殖是非常积极的。通过将聚合物与交联剂分子共价结合,可以产生不可逆网络。以戊二醛为交联剂制备了壳聚糖纳米颗粒。这种类交叉剂主要与壳聚糖氨基反应。为了控制和了解壳聚糖纳米颗粒的物理特性,本工作从分子相互作用的角度对壳聚糖/戊二醛的分子行为进行了一系列分子动力学(MD)计算机模拟。结果表明,两种分子的构象对分子结合有显著影响。壳聚糖链分布均匀,具有较高的柔韧性和对松弛双螺旋结构的偏好。这是由于壳聚糖分子内相互作用- o - h··O-C-等各种关联。壳聚糖-戊二醛缔合是由于壳聚糖中氢的正电荷密度加上- H 2 N···C=O缔合。采用扫描电子显微镜(SEM)对固态壳聚糖的纳米颗粒和微颗粒进行了分析。显微观察结果显示,纳米颗粒呈单晶结构,颗粒堆呈线性排列,与模拟所得构象一致。
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Conformational and Morphological Study of Chitosan Nanohydrogels by MD Simulation and SEM
Chitosan is biocompatible polymer has a great commercial interest because it can be processed in a sort of devices varying in shape and size, such as membranes, gels and nanoparticles. Mostly, the cell’s attachment and proliferation are very positive on nanostructurated materials with a three-dimensional formation. An irreversible network can be produced by covalently binding the polymer to the cross-linker molecules. Chitosan nanoparticles were prepared using glutaraldehyde as cross-linker. This crosss-liker mostly reacts with chitosan amino groups. In order to control and understand the physical characteristics of chitosan nanoparticle, in this work is showed the molecular behavior of chitosan/glutaraldehyde from the viewpoint of molecular interactions base in a series of molecular dynamics (MD) computer simulation. The results indicated the conformations of both molecules, which had a significant influence on the molecular association. The chitosan chains were uniformly distributed presenting a high flexibility and preference for the relaxed two-fold helix. This was due to the various associations such as intramolecular chitosan interactions –O-H···O-C-. While the chitosan-glutaraldehyde associations were due to the positive net charge density of hydrogens in the chitosan plus - H 2 N···C=O associations. In solid state chitosan nano and microparticles were analyzed by scanning electron microscopy (SEM). According to the micrographs results, the nanoparticles presented a monomorphism with piles of particles arranged in linear order which was consistent with the conformations determined by simulation.
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