论文标题
可变形且可靠的核壳蛋白微胶囊由液体液相分离的微螺旋体模板
Deformable and robust core-shell protein microcapsules templated by liquid-liquid phase separated microdroplets
论文作者
论文摘要
微胶囊是微观材料的关键类别类别,其在从个人护理到生物医学的区域中进行了应用,并且具有越来越多的空心器官或组织的细胞外基质(ECM)模型的潜力。这种胶囊通常是由包括合成聚合物在内的非ECM材料产生的。在这里,我们通过从物理和酶线链接的明胶中制造了可控制的壳厚度,制造了可控的壳厚度,并通过在一个步骤的微流体过程中利用液体液相分离水性分散相位系统来实现核心壳结构。微流体机械测试表明,可以通过调节壳厚度来控制较厚壳胶囊的机械鲁棒性。此外,微胶囊表现出对环境响应的变形,包括渗透和外部机械力的屈曲。通过胶囊的降解获得了货物的顺序释放。稳定性测量表明,胶囊在37°C下稳定超过两周。最后,用微凝胶前体的凝胶 - 溶液过渡产生了全水液态液相分离和多相液体液相分离的系统。这些智能胶囊是空心生物结构,微观药物载体以及活性软材料和机器人的构件或隔室的有前途的模型。
Microcapsules are a key class of microscale materials with applications in areas ranging from personal care to biomedicine, and with increasing potential to act as extracellular matrix (ECM) models of hollow organs or tissues. Such capsules are conventionally generated from non-ECM materials including synthetic polymers. Here, we fabricated robust microcapsules with controllable shell thickness from physically- and enzymatically-crosslinked gelatin and achieved a core-shell architecture by exploiting a liquid-liquid phase separated aqueous dispersed phase system in a one-step microfluidic process. Microfluidic mechanical testing revealed that the mechanical robustness of thicker-shell capsules could be controlled through modulation of the shell thickness. Furthermore, the microcapsules demonstrated environmentally-responsive deformation, including buckling by osmosis and external mechanical forces. A sequential release of cargo species was obtained through the degradation of the capsules. Stability measurements showed the capsules were stable at 37 °C for more than two weeks. Finally, all-aqueous liquid-liquid phase separated and multiphase liquid-liquid phase separated systems were generated with the gel-sol transition of microgel precursors. These smart capsules are promising models of hollow biostructures, microscale drug carriers, and building blocks or compartments for active soft materials and robots.