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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Fabrication of patterned three-dimensional micron scaled core-sheath architectures for drug patches
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Fabrication of patterned three-dimensional micron scaled core-sheath architectures for drug patches

机译:用于药物贴片图案三维微米鳞片芯鞘架的制造

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摘要

Recent advances in selective integration of micro and nano-scaled features towards material design have paved way to enhance desirable properties or functions of biomaterials. For drug delivery applications these include improved active component encapsulation, controlled drug release and managed interaction with the intended host environment. Electrohydrodynamic (EHD) direct-printing technique is a one-step on demand fiber deposition method which enables precise micron-scaled topographic and structural enhancement during material fabrication. In this study, core-sheath composite fibers comprising polycaprolactone, polyvinyl pyrrolidone and the drug tetracycline hydrochloride were prepared using the coaxial format of EHD direct-printing. Once positioned and aligned; multi-stacked fibers gave rise to patches. Coaxial fiber (diameter range similar to 13-25 mu m) optimization (deposition and integrity) involved parameter-structure (e.g. collector speed, flow rate, working distance and applied voltage) impact analysis. Water contact angle measurements, tensile testing and Fourier transform infrared spectroscopy were used to analyze core-sheath integrated patches. In-vitro drug release studies clearly elude to the impact of core-shell and patterned architectures; demonstrating their viability and the forming method as emerging tools for advanced drug delivery system design and fabrication.
机译:最近在材料设计中选择性集成微型和纳米缩放特征的进展已经铺设了增强生物材料的理想性质或功能的方法。对于药物递送应用,这些包括改进的有源组分封装,受控药物释放和与预期主机环境的管理交互。电液动力学(EHD)直接印刷技术是在材料制造期间实现精确的微米缩放的地形和结构增强的一步性纤维沉积方法。在该研究中,使用具有聚己内酯,聚乙烯吡咯烷酮和药物四环素的核心鞘复合纤维,使用EHD直接印刷的同轴形式制备盐酸盐。一旦定位和对齐;多堆叠纤维产生斑块。同轴纤维(直径范围类似于13-25μm)优化(沉积和完整性)涉及参数 - 结构(例如收集器速度,流速,工作距离和施加电压)影响分析。水接触角测量,拉伸试验和傅立叶变换红外光谱分析分析芯鞘综合贴片。体外药物释放研究显然阐述了核心壳和图案架构的影响;证明其可行性和成型方法作为高级药物输送系统设计和制造的新兴工具。

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