IEEE Trans Nanobioscience. 2019 Apr;18(2):253-256. doi: 10.1109/TNB.2019.2905489. Epub 2019 Mar 15.
Hydrogels have been engineered for a variety of biomedical applications, including biosensing, drug delivery, cell delivery, and tissue engineering. The fabrication of hydrogels into nanoscale and microscale particles has been a subject of intense activity and promises to extend their range of applicability. As hydrogels are reduced in size, their interfacial properties represent an increasingly significant contribution to their function and behavior. Hydrogel microparticle-based biosensing and drug delivery platforms, for instance, requires delicate spatial control over the conjugation of biofunctional groups and network architecture, which impacts their mechanical properties and molecular permeability and diffusivity. Here, we demonstrate the ability to tune, with extraordinary precision, the interfacial properties of PEGDA particles generated in a droplet microfluidic device exploiting oxygen-inhibited photopolymerization. We demonstrate the broad utility of these engineered microgels by creating spherical particles with complex but predictable radial crosslinking density gradients. Immunoassays were conducted to examine the network properties of these particles, revealing a high degree of structural tenability, which, in turn, dictates macromolecule encapsulation and release profiles, as well as the presence of radial crosslinking gradients that impact the availability of functional groups.
水凝胶已被用于各种生物医学应用,包括生物传感、药物输送、细胞输送和组织工程。将水凝胶制成纳米级和微米级颗粒一直是研究的热点,这有望扩大其应用范围。随着水凝胶尺寸的减小,其界面特性对其功能和行为的贡献越来越大。例如,基于水凝胶微球的生物传感和药物输送平台需要对生物功能基团和网络结构的连接进行精细的空间控制,这会影响其机械性能以及分子的渗透性和扩散性。在这里,我们展示了在利用氧抑制光聚合作用的液滴微流控装置中生成的 PEGDA 颗粒的界面特性进行非凡精确调控的能力。我们通过创建具有复杂但可预测的径向交联密度梯度的球形颗粒,展示了这些工程化微凝胶的广泛应用。进行了免疫测定以检查这些颗粒的网络特性,揭示了高度的结构可调节性,这反过来又决定了大分子的包封和释放特性,以及影响功能基团可用性的径向交联梯度的存在。