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Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Missense Mutations in LRP5 Associated with High Bone Mass Protect the Mouse Skeleton from Disuse- and
Paul J Niziolek1,2, Whitney Bullock1, Matthew L Warman3,4
1Department of Anatomy & Cell Biology, Indiana University School of Medicine, Indianapolis, Indiana, United States of America.
Abstract:
The low density lipoprotein receptor-related protein-5 (LRP5), a co-receptor in the Wnt signaling pathway, modulates bone mass in humans and in mice. Lrp5 knock-out mice have severely impaired responsiveness to mechanical stimulation whereas Lrp5 gain-of-function knock-in and transgenic mice have enhanced responsiveness to mechanical stimulation. Those observations highlight the importance of Lrp5 protein in bone cell mechanotransduction. It is unclear if and how high bone mass-causing (HBM) point mutations in Lrp5 alter the bone-wasting effects of mechanical disuse. To address this issue we explored the skeletal effects of mechanical disuse using two models, tail suspension and Botulinum toxin-induced muscle paralysis, in two different Lrp5 HBM knock-in mouse models. A separate experiment employing estrogen withdrawal-induced bone loss by ovariectomy was also conducted as a control. Both disuse stimuli induced significant bone loss in WT mice, but Lrp5 A214V and G171V were partially or fully protected from the bone loss that normally results from disuse. Trabecular bone parameters among HBM mice were significantly affected by disuse in both models, but these data are consistent with DEXA data showing a failure to continue growing in HBM mice, rather than a loss of pre-existing bone. Ovariectomy in Lrp5 HBM mice resulted in similar protection from catabolism as was observed for the disuse experiments. In conclusion, the Lrp5 HBM alleles offer significant protection from the resorptive effects of disuse and from estrogen withdrawal, and consequently, present a potential mechanism to mimic with pharmaceutical intervention to protect against various bone-wasting stimuli.
Insights
High bone mass (HBM) LRP5 mutations protect mice from bone loss due to disuse or estrogen withdrawal. These findings suggest LRP5 as a therapeutic target for preventing bone-wasting conditions.
Area of Science:
- Bone biology
- Skeletal mechanotransduction
- Wnt signaling pathway
Background:
- Low density lipoprotein receptor-related protein-5 (LRP5) is crucial for bone mass regulation and mechanotransduction.
- High bone mass (HBM) LRP5 mutations enhance mechanical responsiveness but their effect on bone loss during disuse is unknown.
Purpose of the Study:
- To investigate the skeletal effects of mechanical disuse in LRP5 HBM mouse models.
- To determine if LRP5 HBM mutations protect against bone loss induced by disuse or estrogen withdrawal.
Main Methods:
- Utilized tail suspension and botulinum toxin-induced muscle paralysis to simulate mechanical disuse in LRP5 HBM and wild-type (WT) mice.
- Employed ovariectomy to induce estrogen withdrawal-related bone loss as a control.
- Assessed bone parameters using DEXA scans and trabecular bone analysis.
Main Results:
- Mechanical disuse caused significant bone loss in WT mice.
- LRP5 HBM mice (A214V and G171V mutants) showed partial or full protection against disuse-induced bone loss.
- Ovariectomy also resulted in protection from bone loss in LRP5 HBM mice compared to WT.
Conclusions:
- LRP5 HBM alleles confer significant protection against bone resorption caused by mechanical disuse and estrogen withdrawal.
- Targeting LRP5 may offer a pharmaceutical strategy to prevent bone loss from various stimuli.
- LRP5's role in bone cell mechanotransduction is critical for maintaining skeletal integrity under stress.
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