Metabolic regulation of skeletal cell fate and function.
Geert CarmelietGeert CarmelietPublished in: Nature reviews. Endocrinology (2024)
Bone development and bone remodelling during adult life are highly anabolic processes requiring an adequate supply of oxygen and nutrients. Bone-forming osteoblasts and bone-resorbing osteoclasts interact closely to preserve bone mass and architecture and are often located close to blood vessels. Chondrocytes within the developing growth plate ensure that bone lengthening occurs before puberty, but these cells function in an avascular environment. With ageing, numerous bone marrow adipocytes appear, often with negative effects on bone properties. Many studies have now indicated that skeletal cells have specific metabolic profiles that correspond to the nutritional microenvironment and their stage-specific functions. These metabolic networks provide not only skeletal cells with sufficient energy, but also biosynthetic intermediates that are necessary for proliferation and extracellular matrix synthesis. Moreover, these metabolic pathways control redox homeostasis to avoid oxidative stress and safeguard cell survival. Finally, several intracellular metabolites regulate the activity of epigenetic enzymes and thus control the fate and function of skeletal cells. The metabolic profile of skeletal cells therefore not only reflects their cellular state, but can also drive cellular activity. Insight into skeletal cell metabolism will thus not only advance our understanding of skeletal development and homeostasis, but also of skeletal disorders, such as osteoarthritis, diabetic bone disease and bone malignancies.
Keyphrases
- induced apoptosis
- bone mineral density
- bone loss
- oxidative stress
- cell cycle arrest
- soft tissue
- bone regeneration
- bone marrow
- extracellular matrix
- signaling pathway
- postmenopausal women
- body composition
- endoplasmic reticulum stress
- type diabetes
- adipose tissue
- stem cells
- metabolic syndrome
- skeletal muscle
- ms ms
- mesenchymal stem cells
- insulin resistance
- cell therapy
- risk assessment
- pi k akt
- heat stress
- wound healing