Bulut Selin, Jung Se-Hyeong, Bissing Thomas, Schmitt Florian, Bund Michelle, Braun Susanne, Pich Andrij
DWI - Leibniz Institute for Interactive Materials e. V. RWTH Aachen University, Forckenbeckstr. 50, 52074, Aachen, Germany.
Functional and Interactive Polymers, Institute of Technical and Macromolecular Chemistry (ITMC) RWTH Aachen University, Worringerweg 2, 52074, Aachen, Germany.
Small. 2023 Nov;19(45):e2303783. doi: 10.1002/smll.202303783. Epub 2023 Jul 11.
Hydrogels, as well as colloidal hydrogels (microgels), are important materials for a large variety of applications in the biomedical field. Microgels with a controlled pore size (meso- and macropores) are required for efficient nutrient support, modulation of cell adhesion, removal of metabolic products in cell cultures, and probiotic loading. Common microgel fabrication techniques do not provide sufficient control over pore sizes and geometry. In this work, the natural polysaccharide dextran modified with methacrylate groups is used to synthesize highly monodisperse meso- and macroporous microgels in a size range of 100-150 µm via photo cross-linking in microfluidic droplets. The size of mesopores is varied by the concentration of dextran methacrylate chains in the droplets (50-200 g L ) and the size of macropores is regulated by the integration of pH-degradable supramacromolecular nanogels with diameters of 300 and 700 nm as sacrificial templates. Using permeability assays combined with confocal laser scanning microscopy, it is demonstrated that functional dextran-based microgels with uniform and defined pores could be obtained.
水凝胶以及胶体水凝胶(微凝胶)是生物医学领域中多种应用的重要材料。为了实现有效的营养支持、调节细胞黏附、去除细胞培养中的代谢产物以及加载益生菌,需要具有可控孔径(中孔和大孔)的微凝胶。常见的微凝胶制备技术无法对孔径和几何形状进行充分控制。在这项工作中,用甲基丙烯酸酯基团改性的天然多糖葡聚糖通过在微流控液滴中进行光交联,用于合成尺寸范围为100 - 150 µm的高度单分散的中孔和大孔微凝胶。中孔的尺寸通过液滴中甲基丙烯酸葡聚糖链的浓度(50 - 200 g L)来改变,大孔的尺寸通过整合直径为300和700 nm的pH可降解超分子纳米凝胶作为牺牲模板来调节。通过结合共聚焦激光扫描显微镜的渗透率测定,证明可以获得具有均匀且明确孔隙的功能性葡聚糖基微凝胶。