Li Yazhen, Yang Lu, Hou Yue, Zhang Zhenzhen, Chen Miao, Wang Maoxia, Liu Jin, Wang Jun, Zhao Zhihe, Xie Chaoming, Lu Xiong
State Key Laboratory of Oral Diseases, National Clinical Research Center for Oral Diseases, Department of Orthodontics, West China Hospital of Stomatology, Sichuan University, Chengdu, Sichuan, 610041, China.
Key Lab of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, Sichuan, 610031, China.
Bioact Mater. 2022 Mar 22;18:213-227. doi: 10.1016/j.bioactmat.2022.03.021. eCollection 2022 Dec.
Regenerating periodontal bone tissues in the aggravated inflammatory periodontal microenvironment under diabetic conditions is a great challenge. Here, a polydopamine-mediated graphene oxide (PGO) and hydroxyapatite nanoparticle (PHA)-incorporated conductive alginate/gelatin (AG) scaffold is developed to accelerate periodontal bone regeneration by modulating the diabetic inflammatory microenvironment. PHA confers the scaffold with osteoinductivity and PGO provides a conductive pathway for the scaffold. The conductive scaffold promotes bone regeneration by transferring endogenous electrical signals to cells and activating Ca channels. Moreover, the scaffold with polydopamine-mediated nanomaterials has a reactive oxygen species (ROS)-scavenging ability and anti-inflammatory activity. It also exhibits an immunomodulatory ability that suppresses M1 macrophage polarization and activates M2 macrophages to secrete osteogenesis-related cytokines by mediating glycolytic and RhoA/ROCK pathways in macrophages. The scaffold induces excellent bone regeneration in periodontal bone defects of diabetic rats because of the synergistic effects of good conductive, ROS-scavenging, anti-inflammatory, and immunomodulatory abilities. This study provides fundamental insights into the synergistical effects of conductivity, osteoinductivity, and immunomodulatory abilities on bone regeneration and offers a novel strategy to design immunomodulatory biomaterials for treatment of immune-related diseases and tissue regeneration.
在糖尿病条件下的炎症性牙周微环境中再生牙周骨组织是一项巨大挑战。在此,开发了一种聚多巴胺介导的氧化石墨烯(PGO)和羟基磷灰石纳米颗粒(PHA)掺入的导电藻酸盐/明胶(AG)支架,以通过调节糖尿病炎症微环境来加速牙周骨再生。PHA赋予支架骨诱导性,PGO为支架提供导电途径。导电支架通过将内源性电信号传递给细胞并激活钙通道来促进骨再生。此外,具有聚多巴胺介导的纳米材料的支架具有活性氧(ROS)清除能力和抗炎活性。它还表现出免疫调节能力,通过介导巨噬细胞中的糖酵解和RhoA/ROCK途径抑制M1巨噬细胞极化并激活M2巨噬细胞分泌成骨相关细胞因子。由于良好的导电、ROS清除、抗炎和免疫调节能力的协同作用,该支架在糖尿病大鼠的牙周骨缺损中诱导了优异的骨再生。本研究为导电性、骨诱导性和免疫调节能力对骨再生的协同作用提供了基本见解,并为设计用于治疗免疫相关疾病和组织再生的免疫调节生物材料提供了新策略。