Titanium Particles Activate Osteocytic Connexin 43 to Induce Oxidative Stress and Osteoclastogenesis Through the JAK-STAT Pathway.

IF 5.9 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jiawei Ouyang, Hao Chai, Chunguang Sun, Shendong Wang, Chang She, Dechun Geng, Wei Xu
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引用次数: 0

Abstract

Aims: Periprosthetic osteolysis (PPO), a leading cause of aseptic loosening in joint replacement, arose from complex interactions among osteoblasts, osteoclasts, and osteocytes. Given the pivotal role of connexin 43 (Cx43) in osteocyte communication and bone remodeling, investigating its function was essential for understanding the mechanisms of osteolysis. Our previous studies showed that titanium (Ti) particles increased Cx43 expression in osteocytes. However, the role of Cx43 in osteolysis remained unclear. This study investigated the role of Cx43-mediated regulation of osteocytes on osteoclastogenesis in wear debris-induced osteolysis. Results: Using Dmp1-cre conditional Cx43 knockout mice and the MLO-Y4 osteocyte cell line, we demonstrated that Cx43 deficiency reduced bone resorption and osteoclastogenesis, thereby improving bone remodeling in a Ti particle-induced osteolysis model. Sequencing analysis revealed that Cx43 gene expression changes might be linked to oxidative stress and the Janus Kinase (JAK)-STAT pathway. Elevated Cx43 expression in osteocytes stimulated by Ti particles increased STAT1 protein phosphorylation, induced oxidative stress, elevated the Receptor Activator of Nuclear Factor Kappa-Β Ligand (RANKL)/Osteoprotegerin (OPG) ratio, and promoted osteoclast activation and bone resorption. Conversely, Cx43 gene knockout decreased STAT1 protein phosphorylation and enhanced Nuclear Factor Erythroid 2-Related Factor 2 (NrF2) protein expression. Blocking the JAK-STAT signaling pathway activated by Cx43 increased NrF2 expression, reduced reactive oxygen species levels, and subsequently decreased the RANKL/OPG ratio. Innovation and Conclusions: This study identified a novel mechanism where Cx43 in osteocytes promoted osteoclastogenesis through JAK-STAT pathway activation and oxidative stress in wear debris-induced osteolysis. These findings highlighted the critical role of Cx43 in bone resorption and suggested targeting Cx43 or the JAK-STAT pathway as potential therapeutic strategies to mitigate osteolysis and improve implant longevity. Antioxid. Redox Signal. 00, 000-000.

钛颗粒通过JAK-STAT通路激活骨细胞连接蛋白43诱导氧化应激和破骨细胞生成
目的:假体周围骨溶解(PPO)是关节置换术中无菌性松动的主要原因,它是由成骨细胞、破骨细胞和骨细胞之间复杂的相互作用引起的。鉴于连接蛋白43 (Cx43)在骨细胞通讯和骨重塑中的关键作用,研究其功能对于理解骨溶解机制至关重要。我们之前的研究表明,钛(Ti)颗粒增加了骨细胞中Cx43的表达。然而,Cx43在骨溶解中的作用尚不清楚。本研究探讨了cx43介导的骨细胞对破骨细胞发生在磨损碎片诱导的骨溶解中的作用。结果:使用Dmp1-cre条件Cx43敲除小鼠和MLO-Y4骨细胞系,我们证明Cx43缺乏减少骨吸收和破骨细胞生成,从而改善钛颗粒诱导的骨溶解模型中的骨重塑。测序分析显示,Cx43基因表达变化可能与氧化应激和Janus激酶(JAK)-STAT通路有关。钛颗粒刺激骨细胞中Cx43表达升高,使STAT1蛋白磷酸化增加,诱导氧化应激,提高核因子κ κ -Β受体激活因子配体(RANKL)/骨保护素(OPG)比值,促进破骨细胞活化和骨吸收。相反,Cx43基因敲除降低STAT1蛋白磷酸化,增强核因子红系2相关因子2 (NrF2)蛋白表达。阻断Cx43激活的JAK-STAT信号通路,NrF2表达增加,活性氧水平降低,RANKL/OPG比值随之降低。创新与结论:本研究发现了一种新的机制,即在磨损碎片诱导的骨溶解中,骨细胞中的Cx43通过JAK-STAT通路激活和氧化应激促进破骨细胞的发生。这些发现强调了Cx43在骨吸收中的关键作用,并建议靶向Cx43或JAK-STAT通路作为缓解骨溶解和提高种植体寿命的潜在治疗策略。Antioxid。氧化还原信号:00000 - 00000。
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来源期刊
Antioxidants & redox signaling
Antioxidants & redox signaling 生物-内分泌学与代谢
CiteScore
14.10
自引率
1.50%
发文量
170
审稿时长
3-6 weeks
期刊介绍: Antioxidants & Redox Signaling (ARS) is the leading peer-reviewed journal dedicated to understanding the vital impact of oxygen and oxidation-reduction (redox) processes on human health and disease. The Journal explores key issues in genetic, pharmaceutical, and nutritional redox-based therapeutics. Cutting-edge research focuses on structural biology, stem cells, regenerative medicine, epigenetics, imaging, clinical outcomes, and preventive and therapeutic nutrition, among other areas. ARS has expanded to create two unique foci within one journal: ARS Discoveries and ARS Therapeutics. ARS Discoveries (24 issues) publishes the highest-caliber breakthroughs in basic and applied research. ARS Therapeutics (12 issues) is the first publication of its kind that will help enhance the entire field of redox biology by showcasing the potential of redox sciences to change health outcomes. ARS coverage includes: -ROS/RNS as messengers -Gaseous signal transducers -Hypoxia and tissue oxygenation -microRNA -Prokaryotic systems -Lessons from plant biology
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