Spine and Osteopathy Ward, The First Affiliated Hospital of Guangxi Medical University, No. 6, Shuangyong Road, Nanning, 530021, Guangxi Zhuang Autonomous Region, People's Republic of China.
Guangxi Medical University, Nanning, 530021, People's Republic of China.
Apoptosis. 2023 Apr;28(3-4):498-513. doi: 10.1007/s10495-022-01804-2. Epub 2022 Dec 31.
Osteoblasts are important regulators of bone formation, but their roles in ankylosing spondylitis (AS) remain unclear. This study aims to explore the role of long non-coding RNA (lncRNA) maternally expressed 3 (MEG3) MEG3 in AS. Serum from AS patients as well as AS mesenchymal stem cells (ASMSCs) and healthy donors mesenchymal stem cells (HDMSCs) was collected. Accordingly, poorly expressed MEG3 and TNF alpha induced protein 3 (TNFAIP3) as well as overexpressed microRNA-125a-5p (miR-125a-5p) were noted in the serum of AS patients and in ASMSCs during the osteogenic induction process. Meanwhile, the interaction among MEG3, miR-125a-5p, and TNFAIP3 was determined and their effect on osteoblast activity was examined in vitro and in vivo. Overexpression of MEG3 and TNFAIP3 or inhibition of miR-125a-5p was found to inactivate the Wnt/β-catenin pathway, thus suppressing osteogenic differentiation of MSCs. MEG3 competitively bound to miR-125a-5p to increase TNFAIP3 expression, thereby inactivating the Wnt/β-catenin pathway and repressing the osteogenic differentiation of MSCs. In proteoglycan (PG)-induced AS mouse models, MEG3 also reduced osteogenic activity of MSCs to inhibit AS progression through the miR-125a-5p/TNFAIP3/Wnt/β-catenin axis. Therefore, up-regulation of MEG3 or depletion of miR-125a-5p holds potential of alleviating AS, which sheds light on a new therapeutic strategy for AS treatment.
成骨细胞是骨形成的重要调节者,但它们在强直性脊柱炎(AS)中的作用尚不清楚。本研究旨在探讨长非编码 RNA(lncRNA)母系表达基因 3(MEG3)在 AS 中的作用。收集了 AS 患者的血清以及 AS 间充质干细胞(ASMSCs)和健康供体间充质干细胞(HDMSCs)。因此,在 AS 患者的血清中以及成骨诱导过程中的 ASMSCs 中,观察到低表达的 MEG3 和肿瘤坏死因子α诱导蛋白 3(TNFAIP3)以及过表达的 microRNA-125a-5p(miR-125a-5p)。同时,确定了 MEG3、miR-125a-5p 和 TNFAIP3 之间的相互作用,并在体外和体内研究了它们对成骨细胞活性的影响。过表达 MEG3 和 TNFAIP3 或抑制 miR-125a-5p 被发现可使 Wnt/β-catenin 通路失活,从而抑制 MSC 的成骨分化。MEG3 竞争性结合 miR-125a-5p 以增加 TNFAIP3 的表达,从而使 Wnt/β-catenin 通路失活并抑制 MSC 的成骨分化。在蛋白聚糖(PG)诱导的 AS 小鼠模型中,MEG3 还通过 miR-125a-5p/TNFAIP3/Wnt/β-catenin 轴减少 MSC 的成骨活性,从而抑制 AS 的进展。因此,上调 MEG3 或耗尽 miR-125a-5p 具有缓解 AS 的潜力,为 AS 的治疗提供了新的治疗策略。