Department of Oral Implantology Affiliated Hospital of Stomatology, Nanjing Medical University, 136 Hanzhong Road, Nanjing, Jiangsu Province 210029, China; Jiangsu Key Laboratory of Oral Diseases, Nanjing Medical University, 140 Hanzhong Road, Nanjing, Jiangsu Province 210029, China.
Jiangsu Key Laboratory of Oral Diseases, Nanjing Medical University, 140 Hanzhong Road, Nanjing, Jiangsu Province 210029, China; Department of Oral and Maxillofacial Surgery Affiliated Hospital of Stomatology, Nanjing Medical University, 136 Hanzhong Road, Nanjing, Jiangsu Province 210029, China.
Biochem Pharmacol. 2024 Apr;222:116118. doi: 10.1016/j.bcp.2024.116118. Epub 2024 Mar 11.
Diabetes-related hyperglycemia inhibits bone marrow mesenchymal stem cell (BMSC) function, thereby disrupting osteoblast capacity and bone regeneration. Dietary supplementation with phytic acid (PA), a natural inositol phosphate, has shown promise in preventing osteoporosis and diabetes-related complications. Emerging evidence has suggested that circular (circ)RNAs implicate in the regulation of bone diseases, but their specific regulatory roles in BMSC osteogenesis in hyperglycemic environments remain elucidated. In this study, in virto experiments demonstrated that PA treatment effectively improved the osteogenic capability of high glucose-mediated BMSCs. Differentially expressed circRNAs in PA-induced BMSCs were identified using circRNA microarray analysis. Here, our findings highlight an upregulation of circEIF4B expression in BMSCs stimulated with PA under a high-glucose microenvironment. Further investigations demonstrated that circEIF4B overexpression promoted high glucose-mediated BMSC osteogenesis. In contrast, circEIF4B knockdown exerted the opposite effect. Mechanistically, circEIF4B sequestered microRNA miR-186-5p and triggered osteogenesis enhancement in BMSCs by targeting FOXO1 directly. Furthermore, circEIF4B inhibited the ubiquitin-mediated degradation of IGF2BP3, thereby stabilizing ITGA5 mRNA and promoting BMSC osteogenic differentiation. In vivo experiments, circEIF4B inhibition attenuated the effectiveness of PA treatment in diabetic rats with cranial defects. Collectively, our study identifies PA as a novel positive regulator of BMSC osteogenic differentiation through the circEIF4B/miR-186-5p/FOXO1 and circEIF4B/IGF2BP3/ITGA5 axes, which offers a new strategy for treating high glucose-mediatedBMSCosteogenic dysfunction and delayed bone regeneration in diabetes.
糖尿病相关的高血糖会抑制骨髓间充质干细胞(BMSC)的功能,从而破坏成骨细胞的能力和骨再生。植酸(PA)作为一种天然的肌醇六磷酸,膳食补充已被证明在预防骨质疏松症和糖尿病相关并发症方面有一定效果。新出现的证据表明,环状(circ)RNA 参与了骨疾病的调控,但它们在高糖环境中对 BMSC 成骨的具体调控作用仍有待阐明。在这项研究中,体外实验表明,PA 处理可有效改善高糖介导的 BMSC 的成骨能力。通过 circRNA 微阵列分析鉴定了 PA 诱导的 BMSC 中差异表达的 circRNA。在这里,我们的研究结果强调了在高糖微环境下,PA 刺激的 BMSC 中 circEIF4B 的表达上调。进一步的研究表明,circEIF4B 的过表达促进了高糖介导的 BMSC 成骨作用。相反,circEIF4B 的敲低则产生相反的效果。机制上,circEIF4B 可隔离 microRNA miR-186-5p,并通过直接靶向 FOXO1 触发 BMSC 成骨增强。此外,circEIF4B 抑制了 IGF2BP3 的泛素介导降解,从而稳定 ITGA5 mRNA 并促进 BMSC 成骨分化。体内实验表明,circEIF4B 的抑制削弱了 PA 治疗糖尿病颅骨缺损大鼠的效果。综上所述,本研究确定 PA 通过 circEIF4B/miR-186-5p/FOXO1 和 circEIF4B/IGF2BP3/ITGA5 轴作为 BMSC 成骨分化的新的正向调节剂,为治疗高糖介导的 BMSC 成骨功能障碍和糖尿病中延迟的骨再生提供了新策略。