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通过超疏水表面诱导的液滴组装合成近红外光响应多腔室水凝胶颗粒。

Near-infrared light responsive multi-compartmental hydrogel particles synthesized through droplets assembly induced by superhydrophobic surface.

机构信息

Department of Biomedical Engineering, Singapore Institute of Neurotechnology, National University of Singapore, Singapore.

出版信息

Small. 2014 Dec 10;10(23):4886-94. doi: 10.1002/smll.201401312. Epub 2014 Jul 24.

Abstract

Light-responsive hydrogel particles with multi-compartmental structure are useful for applications in microreactors, drug delivery and tissue engineering because of their remotely-triggerable releasing ability and combinational functionalities. The current methods of synthesizing multi-compartmental hydrogel particles typically involve multi-step interrupted gelation of polysaccharides or complicated microfluidic procedures with limited throughput. In this study, a two-step sequential gelation process is developed to produce agarose/alginate double network multi-compartmental hydrogel particles using droplets assemblies induced by superhydrophobic surface as templates. The agarose/alginate double network multi-compartmental hydrogel particles can be formed with diverse hierarchical structures showing combinational functionalities. The synthesized hydrogel particles, when loaded with polypyrrole (PPy) nanoparticles that act as photothermal nanotransducers, are demonstrated to function as near-infrared (NIR) light triggerable and deformation-free hydrogel materials. Periodic NIR laser switching is applied to stimulate these hydrogel particles, and pulsatile release profiles are collected. Compared with massive reagents released from single-compartmental hydrogel particles, more regulated release profiles of the multi-compartmental hydrogel particles are observed.

摘要

具有多腔室结构的光响应水凝胶颗粒由于其远程触发释放能力和组合功能,在微反应器、药物输送和组织工程等领域有应用价值。目前合成多腔室水凝胶颗粒的方法通常涉及多糖的多步间歇凝胶化或复杂的微流控程序,通量有限。本研究采用超疏水表面诱导的液滴组装作为模板,开发了两步连续凝胶化工艺,制备琼脂糖/海藻酸钠双网络多腔室水凝胶颗粒。所制备的琼脂糖/海藻酸钠双网络多腔室水凝胶颗粒具有多种分级结构,表现出组合功能。将合成的水凝胶颗粒负载聚吡咯(PPy)纳米颗粒作为光热纳米转导剂,证明其可作为近红外(NIR)光触发且无变形的水凝胶材料。周期性的近红外激光切换被用来刺激这些水凝胶颗粒,并收集脉动释放曲线。与从单腔室水凝胶颗粒中释放的大量试剂相比,多腔室水凝胶颗粒表现出更可调控的释放曲线。

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