Jeyhani Morteza, Mak Sze Yi, Sammut Stephen, Shum Ho Cheung, Hwang Dae Kun, Tsai Scott S H
Department of Mechanical and Industrial Engineering, Ryerson University, 350 Victoria St., Toronto, ON, M5B 2K3, Canada.
Keenan Research Centre for Biomedical Science, St. Michael's Hospital, 30 Bond St., Toronto, ON, M5B 1W8, Canada.
Chemphyschem. 2018 Aug 17;19(16):2113-2118. doi: 10.1002/cphc.201701094. Epub 2018 Feb 13.
Electrospraying is a technique used to generate microparticles in a high throughput manner. For biomedical applications, a biocompatible electrosprayed material is often desirable. Using polymers, such as alginate hydrogels, makes it possible to create biocompatible and biodegradable microparticles that can be used for cell encapsulation, to be employed as drug carriers, and for use in 3D cell culturing. Evidence in the literature suggests that the morphology of the biocompatible microparticles is relevant in controlling the dynamics of the microparticles in drug delivery and 3D cell culturing applications. Yet, most electrospray-based techniques only form spherical microparticles, and there is currently no widely adopted technique for producing nonspherical microparticles at a high throughput. Here, we demonstrate the generation of nonspherical biocompatible alginate microparticles by electrospraying, and control the shape of the microparticles by varying experimental parameters such as chemical concentration and the distance between the electrospray tip and the particle-solidification bath. Importantly, we show that these changes to the experimental setup enable the synthesis of different shaped particles, and the systematic change in parameters, such as chemical concentration, result in monotonic changes to the particle aspect ratio. We expect that these results will find utility in many biomedical applications that require biocompatible microparticles of specific shapes.
电喷雾是一种用于以高通量方式生成微粒的技术。对于生物医学应用而言,通常需要一种生物相容性的电喷雾材料。使用诸如海藻酸盐水凝胶之类的聚合物,能够制造出可用于细胞封装、用作药物载体以及用于三维细胞培养的生物相容性和可生物降解的微粒。文献中的证据表明,生物相容性微粒的形态与控制微粒在药物递送和三维细胞培养应用中的动力学有关。然而,大多数基于电喷雾的技术仅形成球形微粒,目前尚无广泛采用的高通量生产非球形微粒的技术。在此,我们展示了通过电喷雾生成非球形生物相容性海藻酸盐微粒,并通过改变诸如化学浓度和电喷雾尖端与颗粒固化浴之间的距离等实验参数来控制微粒的形状。重要的是,我们表明对实验装置的这些改变能够合成不同形状的颗粒,并且诸如化学浓度等参数的系统变化会导致颗粒纵横比的单调变化。我们预计这些结果将在许多需要特定形状的生物相容性微粒的生物医学应用中发挥作用。