Department of Tissue Engineering, School of Advanced Technologies in Medical Sciences, Fasa University of Medical Sciences, Fasa, Iran.
Skull Base Research Center, The Five Senses Institute, School of Medicine, Iran University of Medical Sciences (IUMS), Tehran, Iran.
J Biomed Mater Res A. 2024 Mar;112(3):348-358. doi: 10.1002/jbm.a.37631. Epub 2023 Oct 25.
In this study, we developed an alginate-based microparticle production process via sodium ruthenium(II) tris-bipyridyl dication (Ru)/ammonium persulfate (SPS)-mediated visible light crosslinking system using a microfluidic device. Microparticles were prepared by crosslinking phenolic-substituted alginate (AlgPh) and incorporated gelatin (GelPh) in an aqueous solution containing SPS, which flowed into an ambient immiscible liquid paraffin-containing Ru using coaxial double orifice microfluidic device. The hydrogel microparticles appeared with the desired geometries and dimensions under optimal conditions. The concentration of AlgPh and light intensity were the most critical parameters for harvesting spherical microparticles with homogeneous size distribution. The physical properties of the prepared AlgPh microparticles were characterized and compared with Alg-Ca microparticles. Cell viability and proliferation preserved on AlgPh/GelPh hydrogel surfaces. Also, encapsulated cells in microparticles were also viable and proliferated well over 13 days after encapsulation. In brief, the results proved the feasibility of fabricating AlgPh vehicles via Ru/SPS-mediated system and visible light irradiation as a simple and efficient three-dimensional platform, which are applicable for various tissue engineering and cell delivery purposes.
在这项研究中,我们开发了一种基于海藻酸钠的微颗粒生产工艺,方法是使用微流控装置通过钌(II)三(联吡啶)二阳离子(Ru)/过硫酸铵(SPS)介导的可见光交联系统交联酚取代的海藻酸钠(AlgPh)和掺入明胶(AlgPh)的水溶液。含有 SPS 的水溶液流入环境不混溶的液体石蜡中含有 Ru 的同轴双孔微流控装置。在最佳条件下,水凝胶微球呈现出所需的形状和尺寸。AlgPh 的浓度和光强是收获具有均匀尺寸分布的球形微球的最关键参数。对制备的 AlgPh 微球的物理性质进行了表征,并与 Alg-Ca 微球进行了比较。AlgPh/GelPh 水凝胶表面上的细胞活力和增殖得以保留。此外,微球内包封的细胞在包封后 13 天内也具有活力并增殖良好。总之,结果证明了通过 Ru/SPS 介导的系统和可见光照射制造 AlgPh 载体的可行性,这是一种简单有效的三维平台,适用于各种组织工程和细胞递送目的。