College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu, 610065, P. R. China.
Experimental and Research Animal Institute, Sichuan University, Chengdu, 610065, P. R. China.
Adv Sci (Weinh). 2024 Aug;11(29):e2404143. doi: 10.1002/advs.202404143. Epub 2024 May 24.
Commencing with the breakdown of the diabetic osteoimmune microenvironment, multiple pathogenic factors, including hyperglycemia, inflammation, hypoxia, and deleterious cytokines, are conjointly involved in the progression of diabetic periodontal bone regeneration. Based on the challenge of periodontal bone regeneration treatment and the absence of real-time feedback of blood oxygen fluctuation in diabetes mellitus, a novel self-adaptive hyperthermia supramolecular cascade nano-reactor ACFDG is constructed via one-step supramolecular self-assembly strategy to address multiple factors in diabetic periodontal bone regeneration. Hyperthermia supramolecular ACFDG possesses high photothermal conversion efficiency (32.1%), and it can effectively inhibit the vicious cycle of ROS-inflammatory cascade through catalytic cascade reactions, up-regulate the expression of heat shock proteins (HSPs) under near-infrared (NIR) irradiation, which promotes periodontal bone regeneration. Remarkably, ACFDG can provide real-time non-invasive diagnosis of blood oxygen changes during periodontal bone regeneration through photoacoustic (PA) imaging, thus can timely monitor periodontal hypoxia status. In conclusion, this multifunctional supramolecular nano-reactor combined with PA imaging for real-time efficacy monitoring provides important insights into the biological mechanisms of diabetic periodontal bone regeneration and potential clinical theranostics.
从糖尿病骨免疫微环境的破坏开始,多种致病因素,包括高血糖、炎症、缺氧和有害细胞因子,共同参与了糖尿病牙周骨再生的进展。基于牙周骨再生治疗的挑战以及糖尿病中血氧波动的实时反馈缺失,通过一步超分子自组装策略构建了一种新型的自适应热疗超分子级联纳米反应器 ACFDG,以解决糖尿病牙周骨再生中的多种因素。热疗超分子 ACFDG 具有高的光热转换效率(32.1%),它可以通过催化级联反应有效地抑制 ROS-炎症级联的恶性循环,上调近红外(NIR)照射下热休克蛋白(HSPs)的表达,从而促进牙周骨再生。值得注意的是,ACFDG 可以通过光声(PA)成像为牙周骨再生过程中的血氧变化提供实时的无创诊断,从而可以及时监测牙周缺氧状态。总之,这种多功能超分子纳米反应器与 PA 成像相结合,用于实时疗效监测,为糖尿病牙周骨再生的生物学机制和潜在的临床治疗提供了重要的见解。