TGFβ Regulation of Perilacunar/Canalicular Remodeling Is Sexually Dimorphic
Neha S Dole1, Cristal S Yee1, Courtney M Mazur1,2
1Department of Orthopaedic Surgery, University of California, San Francisco (UCSF), San Francisco, CA, USA.
Abstract:
Bone fragility is the product of defects in bone mass and bone quality, both of which show sex-specific differences. Despite this, the cellular and molecular mechanisms underpinning the sexually dimorphic control of bone quality remain unclear, limiting our ability to effectively prevent fractures, especially in postmenopausal osteoporosis. Recently, using male mice, we found that systemic or osteocyte-intrinsic inhibition of TGFβ signaling, achieved using the 9.6-kb DMP1 promoter-driven Cre recombinase (TβRIIocy-/- mice), suppresses osteocyte perilacunar/canalicular remodeling (PLR) and compromises bone quality. Because systemic TGFβ inhibition more robustly increases bone mass in female than male mice, we postulated that sex-specific differences in bone quality could likewise result, in part, from dimorphic regulation of PLR by TGFβ. Moreover, because lactation induces PLR, we examined the effect of TGFβ inhibition on the female skeleton during lactation. In contrast to males, female mice that possess an osteocyte-intrinsic defect in TGFβ signaling were protected from TGFβ-dependent defects in PLR and bone quality. The expression of requisite PLR enzymes, the lacunocanalicular network (LCN), and the flexural strength of female TβRIIocy-/- bone was intact. With lactation, however, bone loss and induction in PLR and osteocytic parathyroid hormone type I receptor (PTHR1) expression, were suppressed in TβRIIocy-/- bone, relative to the control littermates. Indeed, differential control of PTHR1 expression, by TGFβ and other factors, may contribute to dimorphism in PLR regulation in male and female TβRIIocy-/- mice. These findings provide key insights into the sex-based differences in osteocyte PLR that underlie bone quality and highlight TGFβ signaling as a crucial regulator of lactation-induced PLR. © 2020 American Society for Bone and Mineral Research.
Insights
Transforming bone quality research, this study reveals how TGFβ signaling impacts osteocyte remodeling differently in males and females. It uncovers key mechanisms for preventing fractures, particularly in postmenopausal osteoporosis.
Area of Science:
- Bone Biology and Metabolism
- Skeletal Physiology
- Cellular and Molecular Mechanisms of Bone Disease
Background:
- Bone fragility results from deficits in bone mass and quality, with known sex-specific differences.
- The precise cellular and molecular mechanisms driving sexually dimorphic bone quality control remain largely unknown.
- Understanding these mechanisms is crucial for preventing fractures, especially in postmenopausal osteoporosis.
Purpose of the Study:
- To investigate the sexually dimorphic regulation of osteocyte perilacunar/canalicular remodeling (PLR) by TGFβ signaling.
- To determine the role of TGFβ signaling in bone quality during lactation in female mice.
- To elucidate the contribution of TGFβ to sex-based differences in bone quality and fracture risk.
Main Methods:
- Utilized osteocyte-specific TGFβ receptor type II knockout mice (TβRIIocy-/-) in both male and female models.
- Assessed osteocyte perilacunar/canalicular remodeling (PLR), bone quality parameters, and gene expression.
- Examined the effects of TGFβ inhibition on the female skeleton during lactation.
Main Results:
- In contrast to males, female TβRIIocy-/- mice were protected from TGFβ-dependent defects in PLR and bone quality.
- Lactation-induced bone loss and PLR were suppressed in TβRIIocy-/- female mice.
- Differential control of parathyroid hormone type I receptor (PTHR1) expression by TGFβ may contribute to sex-specific PLR regulation.
Conclusions:
- TGFβ signaling plays a critical, sex-specific role in regulating osteocyte PLR and maintaining bone quality.
- Osteocyte-intrinsic TGFβ signaling is crucial for preventing lactation-induced bone loss and PLR.
- These findings highlight TGFβ as a key regulator of sex-based differences in bone quality and fracture susceptibility.
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