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Microsol-electrospinning for controlled loading and release of water-soluble drugs in microfibrous membranes

机译:微溶胶静电纺丝技术可控制微纤维膜中水溶性药物的负载和释放

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Water-solubility facilitates drug transportation and distribution of drugs throughout the body and hence effectively promotes their absorption. While there have been a number of techniques for incorporating water-soluble drugs into electrospun fibers to realize sustained release of them, problems including burst and uncontrolled release still remain to be solved. In this study, we developed a microsol-electrospinning technique for fabricating core-shell microfibers to achieve incubated, controlled and sustainable release of water-soluble drugs such as chloroquine (CQ). In this approach, nanoparticles made of CQ-loaded hyaluronic acid (HA) sol were first prepared using the emulsification method. Next, the HA-sol nanoparticles were dispersed in poly(L-lactide) (PLLA) electrospinning solution to form a uniform suspension, which was used for fabricating composite microfibers through microsolelectrospinning. Judging from SEM and TEM, the composite microfibers had smooth, uniform morphology and core-shell structure. Further tests showed that the microsol-electrospun microfibers had similar physical, chemical, and mechanical properties as microfibers fabricated using a conventional electrospinning approach. In vitro drug release tests showed that compared to conventional electrospun microfibers, the burst release of CQ was significantly reduced in microsol-electrospun microfibers. Meanwhile, the release time of CQ was markedly extended, being as long as more than 40 days. Importantly, the drug release rate could be readily adjusted by changing the concentration of microsol particles and the amount of drug in the microfibers. Together, findings from this study have revealed that microsol-electrospinning is a facile technique for loading water-soluble drugs into electrospun microfibers and releasing them in a controlled fashion, which may expand the applications of watersoluble drugs.
机译:水溶性促进了药物在体内的运输和分布,从而有效地促进了药物的吸收。尽管已经有许多将水溶性药物掺入电纺纤维中以实现其持续释放的技术,但是包括破裂和不受控制的释放的问题仍然有待解决。在这项研究中,我们开发了一种微溶胶静电纺丝技术,用于制造核壳微纤维,以实现诸如氯喹(CQ)之类的水溶性药物的孵育,控制和可持续释放。在这种方法中,首先使用乳化方法制备了由CQ负载的透明质酸(HA)溶胶制成的纳米颗粒。接着,将HA-sol纳米颗粒分散在聚(L-丙交酯)(PLLA)电纺丝溶液中以形成均匀的悬浮液,该悬浮液用于通过微溶胶电纺丝制造复合微纤维。从SEM和TEM观察,该复合超细纤维具有光滑,均匀的形貌和核-壳结构。进一步的测试表明,微溶胶电纺微纤维具有与使用常规电纺丝方法制造的微纤维相似的物理,化学和机械性能。体外药物释放测试表明,与常规电纺微纤维相比,微溶胶电纺微纤维中CQ的突发释放明显减少。同时,CQ的发布时间明显延长,长达40天以上。重要的是,可以通过改变微溶胶颗粒的浓度和微纤维中的药物量来容易地调节药物释放速率。总之,这项研究的发现表明,微溶胶静电纺丝是一种将水溶性药物加载到电纺微纤维中并以受控方式释放它们的便捷技术,这可能会扩展水溶性药物的应用范围。

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