LncRNA NR_045147 modulates osteogenic differentiation and migration in PDLSCs via ITGB3BP degradation and mitochondrial dysfunction.

IF 5.4 2区 医学 Q1 CELL & TISSUE ENGINEERING Stem Cells Translational Medicine Pub Date : 2024-12-14 DOI:10.1093/stcltm/szae088
Lujue Long, Chen Zhang, Zhengquan He, Ousheng Liu, Haoqing Yang, Zhipeng Fan
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Abstract

Periodontitis is an inflammation of the alveolar bone and soft tissue surrounding the teeth. Although mesenchymal stem cells (MSCs) have been implicated in periodontal regeneration, the mechanisms by which they promote osteogenesis remain unclear. We examined whether epigenetic modifications mediated by the long-noncoding RNA (lncRNA) NR_045147, which plays a crucial role in cancer, influence the osteogenic differentiation of periodontal ligament stem cells (PDLSCs). Alkaline phosphatase staining, alizarin red staining, and western blotting were used to detect the effects of NR_045147 on PDLSC osteogenic differentiation. Scratch migration and transwell chemotaxis assays were used to evaluate the effects of NR_045147 on PDLSC migration. Mitochondrial function was evaluated via Seahorse XF analysis to measure changes in cellular respiration upon manipulation of NR_045147 expression. Ubiquitination assays were performed to examine the protein stability and degradation pathways affected by the NR_045147-MDM2 interaction. An in vivo nude rat calvarial defect model was established and gene-edited PDLSCs were re-implanted to examine the osteogenic effects of NR_045147. NR_045147 significantly reduced PDLSC osteogenic differentiation and migration ability both in vitro and in vivo. Under inflammatory conditions, the loss of NR_045147 rescued osteogenesis. NR_045147 significantly blocked the expression of integrin beta3-binding protein (ITGB3BP). Mechanistically, NR_045147 promoted the ITGB3BP-MDM2 interaction, thus increasing ITGB3BP ubiquitination and degradation. NR_045147 regulated PDLSC mitochondrial respiration and ITGB3BP upregulation efficiently promoted their osteogenic differentiation and migration ability. Concluding, NR_045147 downregulation enhances PDLSC osteogenic differentiation and migration, connects changes in cellular metabolism to functional outcomes via mitochondrial respiration, and promotes ITGB3BP degradation by mediating its interaction with MDM2.

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LncRNA NR_045147通过ITGB3BP降解和线粒体功能障碍调节PDLSCs的成骨分化和迁移。
牙周炎是牙齿周围的牙槽骨和软组织的炎症。虽然间充质干细胞(MSCs)与牙周再生有关,但其促进成骨的机制尚不清楚。我们研究了在癌症中起关键作用的长链非编码RNA (lncRNA) NR_045147介导的表观遗传修饰是否影响牙周韧带干细胞(PDLSCs)的成骨分化。采用碱性磷酸酶染色、茜素红染色、western blot检测NR_045147对PDLSC成骨分化的影响。采用划痕迁移和transwell趋化实验评价NR_045147对PDLSC迁移的影响。通过海马XF分析评估线粒体功能,测量NR_045147表达后细胞呼吸的变化。通过泛素化实验检测NR_045147-MDM2相互作用对蛋白稳定性和降解途径的影响。建立裸鼠颅骨缺损体内模型,再植入基因编辑的PDLSCs,检测NR_045147的成骨作用。NR_045147在体外和体内均显著降低PDLSC成骨分化和迁移能力。在炎症条件下,NR_045147的缺失挽救了骨生成。NR_045147显著阻断整合素β 3结合蛋白(ITGB3BP)的表达。在机制上,NR_045147促进ITGB3BP- mdm2相互作用,从而增加ITGB3BP的泛素化和降解。NR_045147调控PDLSC线粒体呼吸,上调ITGB3BP有效促进其成骨分化和迁移能力。综上所述,NR_045147下调可增强PDLSC成骨分化和迁移,通过线粒体呼吸将细胞代谢变化与功能结果联系起来,并通过介导ITGB3BP与MDM2的相互作用促进ITGB3BP降解。
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来源期刊
Stem Cells Translational Medicine
Stem Cells Translational Medicine CELL & TISSUE ENGINEERING-
CiteScore
12.90
自引率
3.30%
发文量
140
审稿时长
6-12 weeks
期刊介绍: STEM CELLS Translational Medicine is a monthly, peer-reviewed, largely online, open access journal. STEM CELLS Translational Medicine works to advance the utilization of cells for clinical therapy. By bridging stem cell molecular and biological research and helping speed translations of emerging lab discoveries into clinical trials, STEM CELLS Translational Medicine will help move applications of these critical investigations closer to accepted best patient practices and ultimately improve outcomes. The journal encourages original research articles and concise reviews describing laboratory investigations of stem cells, including their characterization and manipulation, and the translation of their clinical aspects of from the bench to patient care. STEM CELLS Translational Medicine covers all aspects of translational cell studies, including bench research, first-in-human case studies, and relevant clinical trials.
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