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Periprosthetic osteolysis is mediated by the m6A-dependent regulation of CEMIP via YTHDF2
Zeming Lei1, Yansheng Wang2, Liangzi Yin3
1Department of Orthopedic Surgery, Shengjing Hospital of China Medical University, Shenyang, China; Department of Hand Surgery, Central Hospital Affiliated to Shenyang Medical College, Shenyang, China; Laboratory for Hand Bone and Joint Disease, Shenyang Institute of Hand Surgery, Shenyang, China.
Abstract:
Wear particle-induced periprosthetic osteolysis (PPO) represents the primary reason for implant failure following joint replacement, driven by macrophage polarization and excessive osteoclastogenesis. While cell migration inducing hyaluronidase 1 (CEMIP) has been implicated in inflammation and bone metabolism, its role in wear particle-induced PPO remains unexplored. Here, we discover that CEMIP expression was upregulated in Ti particle-induced calvarial osteolysis model. Functional studies revealed that CEMIP knockdown could attenuate Ti particle-triggered bone resorption via suppressing macrophage M1 polarization, promoting M2 polarization, and inhibiting osteoclast differentiation, as evidenced by reduced M1 markers, increased M2 markers, decreased inflammatory cytokines, and osteoclast-specific gene expression. In vitro, CEMIP silencing suppressed IFNγ-induced M1 polarization, enhanced IL-4-induced M2 polarization, and RANKL/M-CSF-triggered osteoclastogenesis in bone marrow-derived macrophages (BMDMs). Mechanistically, wear particle exposure decreases N6-methyladenosine (m6A) modification of CEMIP mRNA, impairing m6A reader protein YTH N6-methyladenosine RNA binding protein F2 (YTHDF2)-mediated recognition and subsequent mRNA decay, thereby stabilizing CEMIP transcripts and enhancing their expression. Furthermore, CEMIP knockdown counteracted the enhancement of M1 macrophage polarization and osteoclast differentiation resulting from YTHDF2 silencing. Collectively, these findings highlight the critical role of the YTHDF2/CEMIP axis in regulating macrophage polarization and osteoclast differentiation, thus offering a promising therapeutic target for wear particle-induced PPO.
Insights
Cell migration inducing hyaluronidase 1 (CEMIP) drives wear particle-induced osteolysis by promoting M1 macrophage polarization and osteoclast formation. Targeting the YTHDF2/CEMIP pathway may treat periprosthetic osteolysis.
Area of Science:
- Biomedical Engineering
- Immunology
- Orthopedics
Background:
- Periprosthetic osteolysis (PPO) from wear particles is a major cause of joint replacement failure.
- Macrophage polarization and osteoclastogenesis are key mechanisms in PPO.
- The role of cell migration inducing hyaluronidase 1 (CEMIP) in PPO is unknown.
Purpose of the Study:
- To investigate the role of CEMIP in wear particle-induced PPO.
- To elucidate the underlying molecular mechanisms involving macrophage polarization and osteoclastogenesis.
- To assess the therapeutic potential of targeting the YTHDF2/CEMIP axis.
Main Methods:
- Utilized a titanium particle-induced calvarial osteolysis model in mice.
- Performed in vitro studies using bone marrow-derived macrophages (BMDMs).
- Assessed macrophage polarization (M1/M2 markers), osteoclast differentiation, and gene expression.
- Investigated the role of N6-methyladenosine (m6A) modification and YTHDF2.
Main Results:
- CEMIP expression was upregulated in the osteolysis model.
- CEMIP knockdown attenuated bone resorption by modulating macrophage polarization and inhibiting osteoclast differentiation.
- CEMIP silencing affected M1/M2 polarization and osteoclastogenesis in BMDMs.
- Wear particles reduced m6A modification of CEMIP mRNA, decreasing YTHDF2-mediated decay and increasing CEMIP expression.
Conclusions:
- CEMIP plays a critical role in wear particle-induced PPO.
- The YTHDF2/CEMIP axis regulates macrophage polarization and osteoclast differentiation.
- Targeting the YTHDF2/CEMIP pathway presents a potential therapeutic strategy for PPO.
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