Multiomics profiling reveals VDR as a central regulator of mesenchymal stem cell senescence with a known association with osteoporosis after high-fat diet exposure.
Jiayao ChenShuhong KuangJietao CenYong ZhangZongshan ShenWei QinQiting HuangZi-Feng WangXianling GaoFang HuangZhengmei LinPublished in: International journal of oral science (2024)
The consumption of a high-fat diet (HFD) has been linked to osteoporosis and an increased risk of fragility fractures. However, the specific mechanisms of HFD-induced osteoporosis are not fully understood. Our study shows that exposure to an HFD induces premature senescence in bone marrow mesenchymal stem cells (BMSCs), diminishing their proliferation and osteogenic capability, and thereby contributes to osteoporosis. Transcriptomic and chromatin accessibility analyses revealed the decreased chromatin accessibility of vitamin D receptor (VDR)-binding sequences and decreased VDR signaling in BMSCs from HFD-fed mice, suggesting that VDR is a key regulator of BMSC senescence. Notably, the administration of a VDR activator to HFD-fed mice rescued BMSC senescence and significantly improved osteogenesis, bone mass, and other bone parameters. Mechanistically, VDR activation reduced BMSC senescence by decreasing intracellular reactive oxygen species (ROS) levels and preserving mitochondrial function. Our findings not only elucidate the mechanisms by which an HFD induces BMSC senescence and associated osteoporosis but also offer new insights into treating HFD-induced osteoporosis by targeting the VDR-superoxide dismutase 2 (SOD2)-ROS axis.
Keyphrases
- high fat diet
- dna damage
- bone mineral density
- postmenopausal women
- insulin resistance
- reactive oxygen species
- endothelial cells
- adipose tissue
- high glucose
- stress induced
- body composition
- mesenchymal stem cells
- high fat diet induced
- oxidative stress
- transcription factor
- single cell
- gene expression
- diabetic rats
- bone marrow
- metabolic syndrome
- cell death
- stem cells
- type diabetes
- genome wide
- skeletal muscle
- signaling pathway
- soft tissue
- rna seq
- hydrogen peroxide
- dna methylation
- cell therapy
- inflammatory response