Liu Yuanda, Wang Jing, Jiang Ming, Li Xueyan, Zhang Qinghao, He Hongyan
Frontiers Science Center for Materiobiology and Dynamic Chemistry, East China University of Science and Technology, Shanghai 200237, People's Republic of China; Engineering Research Center for Biomedical Materials of Ministry of Education, East China University of Science and Technology, Shanghai 200237, People's Republic of China; Key Laboratory for Ultrafine Materials of Ministry of Education East China University of Science and Technology, Shanghai 200237, People's Republic of China.
Frontiers Science Center for Materiobiology and Dynamic Chemistry, East China University of Science and Technology, Shanghai 200237, People's Republic of China; Engineering Research Center for Biomedical Materials of Ministry of Education, East China University of Science and Technology, Shanghai 200237, People's Republic of China; The State Key Laboratory of Bioreactor Engineering, East China University of Science and Technology, Shanghai 200237, People's Republic of China.
Colloids Surf B Biointerfaces. 2022 Jun;214:112450. doi: 10.1016/j.colsurfb.2022.112450. Epub 2022 Mar 9.
In hyperglycemia patients, suffering from insufficient vascularization and vascular network lesion, tissue regeneration, such as bone repair, is limited and maybe delayed by the secondary injury and hyperglycemic microenvironment. Typically, dental therapies involving guided bone regeneration is facing a difficult condition in the patients with diabetes. In this study, a hybrid membrane was endowed with biomimetic function to create an angiogenesis-inductive microenvironment by calcium ion release to overcome the limitations of bone tissue regeneration in diabetic patients. Biomineralized calcium resource was Janus-structured onto the surface of hybrid hydrogel by layer-by-layer technique to enhance vascularization and improve the bone regeneration in this study. The release of calcium ions from mineralized phases was controlled by the solubility of inorganic phases and the degradation of gels, promoting HIF-1α expression and creating a key role in angiogenesis stimulation. With highly enhanced calcium signaling and blood vessel formation, the hybrid hydrogel membranes improved the recruitment, proliferation and differentiation of mesenchymal stem cells and endothelial progenitors, confirmed by the enhancement of microvascular regeneration and new bone formation in the critical-sized calvarial defect in diabetic model in vivo. Our study demonstrates a translational potential of hybrid hydrogels engineered with inorganic minerals for orthopedic applications in hyperglycemia.
在高血糖患者中,由于血管生成不足和血管网络损伤,组织再生(如骨修复)受到限制,可能会因继发性损伤和高血糖微环境而延迟。通常,涉及引导骨再生的牙科治疗在糖尿病患者中面临困难局面。在本研究中,一种复合膜被赋予仿生功能,通过钙离子释放创造促血管生成的微环境,以克服糖尿病患者骨组织再生的局限性。在本研究中,通过层层技术将生物矿化钙源以双面结构构建在复合水凝胶表面,以增强血管生成并改善骨再生。矿化相中的钙离子释放受无机相溶解度和凝胶降解的控制,促进缺氧诱导因子-1α(HIF-1α)表达,并在刺激血管生成中发挥关键作用。随着钙信号和血管形成的高度增强,复合水凝胶膜改善了间充质干细胞和内皮祖细胞的募集、增殖和分化,这在体内糖尿病模型临界大小颅骨缺损中微血管再生和新骨形成的增强得到证实。我们的研究证明了用无机矿物质工程化的复合水凝胶在高血糖症骨科应用中的转化潜力。