Yu Chenhao, Liu Yuanqing, Yu Xiaotong, Liu Jia, Cao Pei, Liu Guojing, Cai Yu, Zhang Yong, Luan Qingxian
Department of Periodontology, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Research Center of Oral Biomaterials and Digital Medical Devices & Beijing Key Laboratory of Digital Stomatology & NHC Key Laboratory of Digital Stomatology & NMPA Key Laboratory for Dental Materials, Beijing, 100081, People's Republic of China.
Department of Orthodontics, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Center for Oral Diseases &National Engineering Laboratory for Digital and Material Technology of Stomatology & Beijing Key Laboratory of Digital Stomatology & Research Center of Engineering and Technology for Computerized Dentistry Ministry of Health & NMPA Key Laboratory for Dental Materials, Beijing, People's Republic of China.
Int J Nanomedicine. 2025 Apr 30;20:5551-5572. doi: 10.2147/IJN.S510417. eCollection 2025.
Periodontitis is a chronic inflammatory disease that leads to alveolar bone loss, with a complex pathogenesis closely associated with excessive local inflammation and metabolic dysregulation in periodontal tissues. Unfortunately, effective therapeutic strategies targeting inflammation and improving cellular metabolism remain lacking. Garlic-derived exosome-like nanovesicles (GaELNs), as a natural therapeutic agent, have demonstrated significant therapeutic effects in conditions such as colitis, liver dysfunction, osteoarthritis, and adipose tissue inflammation, yet their potential in treating periodontitis has not been explored.
In this study, GaELNs were extracted using a simplified and rapid method and characterized for their morphology and concentration. Metabolomic analysis was conducted to determine the bioactive components within GaELNs. In vitro experiments using human gingival fibroblasts assessed GaELNs' cellular uptake, effects on cell proliferation, migration, VEGF expression, and their ability to attenuate lipopolysaccharide-induced oxidative stress and pro-inflammatory cytokine expression. Additionally, a mouse periodontitis model was employed to evaluate the in vivo effects of GaELNs on local inflammation and bone resorption.
GaELNs exhibited typical exosome-like characteristics with sufficient concentration and high batch-to-batch reproducibility. Metabolomic analysis revealed that GaELNs are enriched with bioactive components possessing anti-inflammatory, antioxidative, and regenerative properties. In vitro, GaELNs were efficiently internalized by human gingival fibroblasts, significantly enhancing their proliferation, migration, and VEGF expression, while markedly reducing LPS-induced oxidative stress and pro-inflammatory factor expression. In the mouse periodontitis model, local administration of GaELNs significantly reduced gingival inflammation and alveolar bone resorption. These therapeutic effects were mediated by upregulation of PHGDH, activation of the PI3K/AKT signaling pathway, increased expression of mTOR and Nrf2, and inhibition of NF-κB activity, which together contributed to improved mitochondrial function and metabolic reprogramming under inflammatory conditions.
GaELNs demonstrate potent anti-inflammatory, antioxidative, and metabolism-enhancing properties, offering significant therapeutic potential for the treatment of periodontitis by modulating the PHGDH/PI3K/AKT pathway.
牙周炎是一种导致牙槽骨丧失的慢性炎症性疾病,其发病机制复杂,与牙周组织中过度的局部炎症和代谢失调密切相关。不幸的是,针对炎症和改善细胞代谢的有效治疗策略仍然缺乏。大蒜衍生的类外泌体纳米囊泡(GaELNs)作为一种天然治疗剂,已在结肠炎、肝功能障碍、骨关节炎和脂肪组织炎症等病症中显示出显著的治疗效果,但其在治疗牙周炎方面的潜力尚未得到探索。
在本研究中,采用一种简化快速的方法提取GaELNs,并对其形态和浓度进行表征。进行代谢组学分析以确定GaELNs中的生物活性成分。使用人牙龈成纤维细胞进行的体外实验评估了GaELNs的细胞摄取、对细胞增殖、迁移、VEGF表达的影响,以及它们减轻脂多糖诱导的氧化应激和促炎细胞因子表达的能力。此外,采用小鼠牙周炎模型评估GaELNs对局部炎症和骨吸收的体内作用。
GaELNs表现出典型的类外泌体特征,浓度充足且批次间重复性高。代谢组学分析表明,GaELNs富含具有抗炎、抗氧化和再生特性的生物活性成分。在体外,GaELNs被人牙龈成纤维细胞有效内化,显著增强其增殖、迁移和VEGF表达,同时显著降低LPS诱导的氧化应激和促炎因子表达。在小鼠牙周炎模型中,局部施用GaELNs显著减轻牙龈炎症和牙槽骨吸收。这些治疗效果是通过上调PHGDH、激活PI3K/AKT信号通路、增加mTOR和Nrf2的表达以及抑制NF-κB活性介导的,这些共同作用有助于在炎症条件下改善线粒体功能和代谢重编程。
GaELNs表现出强大的抗炎、抗氧化和增强代谢的特性,通过调节PHGDH/PI3K/AKT途径为牙周炎的治疗提供了显著的治疗潜力。