Key Laboratory for Biobased Materials and Energy of Ministry of Education, College of Materials and Energy, South China Agricultural University, Guangzhou 510642, China.
Research Institute of Materials Science, South China University of Technology, Guangzhou 510640, China.
Langmuir. 2023 May 23;39(20):6947-6956. doi: 10.1021/acs.langmuir.2c02942. Epub 2023 May 12.
Poly(ε-caprolactone) (PCL)-incorporated lignin-chitosan biomass-based nanocomposite porous scaffolds have been effectively prepared by templating oil-in-water Pickering high internal phase emulsions (HIPEs). PCL is dissolved in oil and chitosan and lignin nanoparticles originate in water. The continuous phase of the emulsions is gelled by cross-linking of chitosan with genipin and then freeze-dried to obtain porous scaffolds. The resulting scaffolds display interconnected and tunable pore structures. An increase in PCL content increases the mechanical strength and greatly reduces the water absorption capacity of the scaffolds. Scaffolds loaded with the anti-bacterial drug enrofloxacin show a slow drug release profile, adjustable release rate, and favorable long-term anti-bacterial activity. Moreover, Pickering emulsion templates with suitable viscosity are used as 3D printing inks to construct porous scaffolds with personalized geometry. The results imply that the simplicity and versatility of the technique of combining freeze-drying with Pickering HIPE templates is a promising approach to fabricate hydrophobic biopolymer-incorporated biomass-based nanocomposite porous scaffolds for biomedical applications.
聚(ε-己内酯)(PCL)掺入木质素-壳聚糖生物基纳米复合多孔支架已通过模板油包水 Pickering 高内相乳液(HIPE)有效地制备。PCL 溶解在油中,壳聚糖和木质素纳米颗粒起源于水中。乳液的连续相通过壳聚糖与京尼平的交联而胶凝,然后冷冻干燥以获得多孔支架。所得支架显示出相互连接和可调节的孔结构。PCL 含量的增加提高了支架的机械强度,并大大降低了支架的吸水性。负载有抗菌药物恩诺沙星的支架显示出缓慢的药物释放曲线、可调节的释放速率和良好的长期抗菌活性。此外,使用具有适当粘度的 Pickering 乳液模板作为 3D 打印墨水来构建具有个性化几何形状的多孔支架。结果表明,将冷冻干燥与 Pickering HIPE 模板相结合的技术简单且通用,是制造用于生物医学应用的疏水性生物聚合物掺入生物基纳米复合多孔支架的有前途的方法。