High concentrations of NaF aggravate periodontitis by promoting M1 polarization in macrophages

巨噬细胞极化 牙周炎 免疫系统 糖酵解 骨重建 氟化钠 巨噬细胞 氟化物 牙周膜干细胞 厌氧糖酵解 化学 癌症研究 医学 免疫学 内科学 牙科 新陈代谢 生物化学 碱性磷酸酶 体外 无机化学
作者
Jiaming Bi,Chuzi Mo,Siwei Li,Jiawei Zeng,Yan Chai,Mingyan Yao,Zhongjun Liu,Peiyan Yuan,Jia Ni,Shuaimei Xu
出处
期刊:International Immunopharmacology [Elsevier BV]
卷期号:140: 112830-112830 被引量:6
标识
DOI:10.1016/j.intimp.2024.112830
摘要

High-concentration fluoride treatment is commonly used to prevent dental caries in the oral cavity, and fluorine-containing protective paint is used to alleviate common root sensitivity symptoms in patients with periodontitis after periodontal treatment. Recent studies have confirmed its safe use in normal oral environments. However, whether fluoride treatment affects the progression of periodontitis in an inflammatory microenvironment remains unclear. Immunometabolism is crucial for maintaining bone regeneration and repair in periodontitis, and the precise regulation of macrophage polarisation is crucial to this process. Fluoride can influence the immune microenvironment of bone tissue by regulating immune metabolic processes. Herein, we investigated the effects of high concentrations of sodium fluoride (NaF) on periodontal tissues. We examined the expression of osteogenic and M1/M2 macrophage polarisation markers and glucose metabolism in macrophages. RNA sequencing was used to study differentially expressed genes related to M1 polarisation and glucose metabolism in treated macrophages. The results showed that NaF indirectly affects human periodontal ligament cells (hPDLCs), aggravating bone loss, tissue destruction, and submandibular lymph node drainage. Furthermore, NaF promoted glycolysis in macrophages and M1 polarisation while inhibiting osteogenic differentiation. These findings suggest that NaF has a direct effect on hPDLCs. Moreover, we found that high concentrations of NaF stimulated M1 polarisation in macrophages by promoting glycolysis. Overall, these results suggest that M1 macrophages promote the osteoclastic ability of hPDLCs and inhibit their osteogenic ability, eventually aggravating periodontitis. These findings provide important insights into the mechanism of action of NaF in periodontal tissue regeneration and reconstruction, which is critical for providing appropriate recommendations for the use of fluoride in patients with periodontitis.
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