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Halloysite Nanotubes Coated by Chitosan for the Controlled Release of Khellin

机译:壳聚糖涂覆的Halloysite纳米管用于Khellin的控释

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摘要

In this work, we have developed a novel strategy to prepare hybrid nanostructures with controlled release properties towards khellin by exploiting the electrostatic interactions between chitosan and halloysite nanotubes (HNT). Firstly, khellin was loaded into the HNT lumen by the vacuum-assisted procedure. The drug confinement within the halloysite cavity has been proved by water contact angle experiments on the HNT/khellin tablets. Therefore, the loaded nanotubes were coated with chitosan as a consequence of the attractions between the cationic biopolymer and the halloysite outer surface, which is negatively charged in a wide pH range. The effect of the ionic strength of the aqueous medium on the coating efficiency of the clay nanotubes was investigated. The surface charge properties of HNT/khellin and chitosan/HNT/khellin nanomaterials were determined by ζ potential experiments, while their morphology was explored through Scanning Electron Microscopy (SEM). Water contact angle experiments were conducted to explore the influence of the chitosan coating on the hydrophilic/hydrophobic character of halloysite external surface. Thermogravimetry (TG) experiments were conducted to study the thermal behavior of the composite nanomaterials. The amounts of loaded khellin and coated chitosan in the hybrid nanostructures were estimated by a quantitative analysis of the TG curves. The release kinetics of khellin were studied in aqueous solvents at different pH conditions (acidic, neutral and basic) and the obtained data were analyzed by the Korsmeyer–Peppas model. The release properties were interpreted on the basis of the TG and ζ potential results. In conclusion, this study demonstrates that halloysite nanotubes wrapped by chitosan layers can be effective as drug delivery systems.
机译:在这项工作中,我们通过利用壳聚糖和霍氏铁矿石纳米管(HNT)之间的静电相互作用,制定了一种新的杂交纳米结构对Khellin的控制释放性能。首先,通过真空辅助程序将Khellin装入HHNT内腔中。 Halloysite腔内的药物限制已通过HNT / Khellin片剂的水接触角实验证明。因此,由于阳离子生物聚合物和霍氏石材外表面之间的吸引力,将负载的纳米管用壳聚糖涂覆,其在宽pH范围内带负电荷。研究了水性介质对粘土纳米管涂层效率的影响。通过扫描电子显微镜(SEM)探讨了HNT / Khellin和壳聚糖/ HNT / Khellin纳米材料的表面电荷性能,同时通过扫描电子显微镜(SEM)来探索它们的形态。进行了水接触角实验,探讨壳聚糖涂层对霍氏岩外表面亲水/疏水性质的影响。进行热呕血(TG)实验以研究复合纳米材料的热行为。通过对Tg曲线的定量分析估计了杂化纳米结构中的装载的Khellin和涂覆的壳聚糖的量。在不同pH条件(酸性,中性和碱性)的水溶液中研究了Khellin的释放动力学,并通过Korsmeyer-Peppas模型分析了所获得的数据。释放属性基于TG和潜力结果来解释。总之,本研究表明,壳聚糖层包裹的霍利石纳米管作为药物递送系统是有效的。

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