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Yeast Luminometric and Xenopus Oocyte Electrophysiological Examinations of the Molecular Mechanosensitivity of TRPV4
Published on: December 31, 2013
TRPV4 deficiency causes sexual dimorphism in bone metabolism and osteoporotic fracture risk
B C J van der Eerden1, L Oei, P Roschger
1Department of Internal Medicine, Erasmus MC, Rotterdam, The Netherlands.
Abstract:
We explored the role of transient receptor potential vanilloid 4 (TRPV4) in murine bone metabolism and association of TRPV4 gene variants with fractures in humans. Urinary and histomorphometrical analyses demonstrated reduced osteoclast activity and numbers in male Trpv4(-/-) mice, which was confirmed in bone marrow-derived osteoclast cultures. Osteoblasts and bone formation as shown by serum procollagen type 1 amino-terminal propeptide and histomorphometry, including osteoid surface, osteoblast and osteocyte numbers were not affected in vivo. Nevertheless, osteoblast differentiation was enhanced in Trpv4(-/-) bone marrow cultures. Cortical and trabecular bone mass was 20% increased in male Trpv4(-/-) mice, compared to sex-matched wild type (Trpv4(+/+)) mice. However, at the same time intracortical porosity was increased and bone matrix mineralization was reduced. Together, these lead to a maximum load, stiffness and work to failure of the femoral bone, which were not different compared to Trpv4(+/+) mice, while the bone material was less resistant to stress and less elastic. The differential impacts on these determinants of bone strength were likely responsible for the lack of any changes in whole bone strength in the Trpv4(-/-) mice. None of these skeletal parameters were affected in female Trpv4(-/-) mice. The T-allele of rs1861809 SNP in the TRPV4 locus was associated with a 30% increased risk (95% CI: 1.1-1.6; p=0.013) for non-vertebral fracture risk in men, but not in women, in the Rotterdam Study. Meta-analyses with the population-based LASA study confirmed the association with non-vertebral fractures in men. This was lost when the non-population-based studies Mr. OS and UFO were included. In conclusion, TRPV4 is a male-specific regulator of bone metabolism, a determinant of bone strength, and a potential risk predictor for fractures through regulation of bone matrix mineralization and intra-cortical porosity. This identifies TRPV4 as a unique sexually dimorphic therapeutic and/or diagnostic candidate for osteoporosis.
Insights
Transient Receptor Potential Vanilloid 4 (TRPV4) plays a male-specific role in bone metabolism, influencing bone strength and fracture risk. Genetic variants in TRPV4 are linked to non-vertebral fractures in men.
Area of Science:
- Bone Biology and Metabolism
- Genetics and Human Health
- Calcium and Skeletal Physiology
Background:
- Transient Receptor Potential Vanilloid 4 (TRPV4) is implicated in various physiological processes.
- Its specific role in bone metabolism, particularly concerning sex differences and fracture risk, remains incompletely understood.
Purpose of the Study:
- To investigate the function of TRPV4 in murine bone metabolism.
- To examine the association between TRPV4 gene variants and fracture incidence in humans.
Main Methods:
- Utilized urinary and histomorphometrical analyses in male Trpv4 knockout (Trpv4(-/-)) and wild-type (Trpv4(+/+)) mice.
- Performed bone marrow-derived osteoclast and osteoblast cultures.
- Analyzed femoral bone strength parameters (load, stiffness, work to failure).
- Conducted genetic association studies (SNP rs1861809) in human cohorts (Rotterdam Study, LASA, Mr. OS, UFO).
Main Results:
- Male Trpv4(-/-) mice exhibited reduced osteoclast activity and numbers, increased cortical and trabecular bone mass, but also increased intracortical porosity and reduced bone matrix mineralization.
- Despite altered bone structure, whole bone strength was not significantly different in male Trpv4(-/-) mice compared to controls.
- Osteoblast differentiation was enhanced in vitro, but bone formation markers were unaffected in vivo.
- The T-allele of rs1861809 in the TRPV4 locus was associated with a 30% increased risk of non-vertebral fractures in men from population-based studies.
- No significant skeletal alterations were observed in female Trpv4(-/-) mice.
Conclusions:
- TRPV4 is a male-specific regulator of bone metabolism, impacting bone strength determinants like mineralization and porosity.
- TRPV4 gene variants, specifically rs1861809, may predict non-vertebral fracture risk in men.
- TRPV4 represents a potential sexually dimorphic therapeutic and diagnostic target for osteoporosis.
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