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Published on: March 15, 2024
DNMT aberration-incurred GPX4 suppression prompts osteoblast ferroptosis and osteoporosis
Binjia Ruan1, Jian Dong2, Fanhao Wei1
1Department of Orthopedics, Northern Jiangsu People's Hospital, Clinical Teaching Hospital of Medical School, Nanjing University, 98 West Nantong Road, Yangzhou, 225001, China.
Abstract:
Osteoporosis (OP) is a common and fracture-prone skeletal disease characterized by deteriorated trabecular microstructure and pathologically involving various forms of regulated bone cell death. However, the exact role, cellular nature and regulatory mechanisms of ferroptosis in OP are not fully understood. Here, we reported that OP femurs from ovariectomized (Ovx) mice exhibited pronounced iron deposition, ferroptosis, and transcriptional suppression of a key anti-ferroptotic factor GPX4 (glutathione peroxidase 4). GPX4 suppression was accompanied by hypermethylation of the Gpx4 promoter and an increase in DNA methyltransferases DNMT1/3a/3b and was transcriptionally promoted by repressive KLF5 and the transcriptional corepressors NCoR and SnoN. Conversely, DNMT inhibition with SGI-1027 reversed promoter hypermethylation, GPX4 suppression and ferroptotic osteoporosis. In cultured primary bone cells, ferric ammonium citrate (FAC) mimicking iron loading similarly induced GPX4 suppression and ferroptosis in osteoblasts but not in osteoclasts, which were rescued by siRNA-mediated individual knockdown of DNMT 1/3a/3b. Intriguingly, SGI-1027 alleviated the ferroptotic changes caused by FAC, but not by a GPX4 inactivator RSL3. More importantly, we generated a strain of osteoblast-specific Gpx4 haplo-deficient mice Gpx4Ob+/- that developed spontaneous and more severe ferroptotic OP alterations after Ovx operation, and showed that GPX4 inactivation by RSL3 or semi-knockout in osteoblasts largely abolished the anti-ferroptotic and osteoprotective effects of SGI-1027. Taken together, our data suggest that GPX4 epigenetic suppression caused by DNMT aberration and the resulting osteoblastic ferroptosis contribute significantly to OP pathogenesis, and that the strategies preserving GPX4 by DNMT intervention are potentially effective to treat OP and related bone disorders.
Insights
Osteoporosis involves ferroptosis, a cell death process linked to iron. This study shows that suppressing glutathione peroxidase 4 (GPX4) in bone cells drives osteoporosis, suggesting DNA methyltransferase inhibitors could be a treatment.
Area of Science:
- Biochemistry
- Cell Biology
- Skeletal Biology
Background:
- Osteoporosis (OP) is a skeletal disease characterized by bone loss and microarchitectural deterioration.
- Regulated cell death pathways, including ferroptosis, are implicated in OP pathogenesis.
- The precise role and regulatory mechanisms of ferroptosis in OP remain unclear.
Purpose of the Study:
- To investigate the role of ferroptosis in osteoporosis.
- To elucidate the regulatory mechanisms of ferroptosis in bone cells.
- To explore potential therapeutic strategies targeting ferroptosis in OP.
Main Methods:
- Ovariectomized (Ovx) mice models were used to study osteoporosis.
- Ferric ammonium citrate (FAC) was used to induce iron loading in vitro.
- GPX4 (glutathione peroxidase 4) expression and promoter methylation were analyzed.
- DNMT (DNA methyltransferase) activity and expression were assessed.
- siRNA-mediated knockdown and genetic manipulation (Gpx4 haplo-deficiency) were employed.
- Pharmacological inhibition of DNMTs (SGI-1027) and GPX4 (RSL3) was performed.
Main Results:
- Ovariectomized mice exhibited increased iron deposition, ferroptosis, and suppressed GPX4 expression in femurs.
- GPX4 suppression was linked to Gpx4 promoter hypermethylation and increased DNMTs (DNMT1/3a/3b).
- DNMT inhibition reversed ferroptosis and improved osteoporosis in vivo and in vitro.
- Ferric ammonium citrate induced ferroptosis in osteoblasts but not osteoclasts.
- Osteoblast-specific Gpx4 haplo-deficient mice showed exacerbated ferroptosis and osteoporosis post-ovariectomy.
Conclusions:
- Epigenetic suppression of GPX4, driven by DNMTs, contributes significantly to osteoporosis pathogenesis via osteoblastic ferroptosis.
- Targeting DNMTs to preserve GPX4 function presents a potential therapeutic strategy for osteoporosis and related bone disorders.
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