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Reversing LRP5-dependent osteoporosis and SOST deficiency-induced sclerosing bone disorders by altering WNT signaling
Ming-Kang Chang1, Ina Kramer, Hansjoerg Keller
1Musculoskeletal Disease Area, Novartis Institutes for BioMedical Research, Basel, Switzerland.
Abstract:
The bone formation inhibitor sclerostin encoded by SOST binds in vitro to low-density lipoprotein receptor-related protein (LRP) 5/6 Wnt co-receptors, thereby inhibiting Wnt/β-catenin signaling, a central pathway of skeletal homeostasis. Lrp5/LRP5 deficiency results in osteoporosis-pseudoglioma (OPPG), whereas Sost/SOST deficiency induces lifelong bone gain in mice and humans. Here, we analyzed the bone phenotype of mice lacking Sost (Sost(-/-) ), Lrp5 (Lrp5(-/-) ), or both (Sost(-/-) ;Lrp5(-/-) ) to elucidate the mechanism of action of Sost in vivo. Sost deficiency-induced bone gain was significantly blunted in Sost(-/-) ;Lrp5(-/-) mice. Yet the Lrp5 OPPG phenotype was fully rescued in Sost(-/-) ;Lrp5(-/-) mice and most bone parameters were elevated relative to wild-type. To test whether the remaining bone increases in Sost(-/-) ;Lrp5(-/-) animals depend on Lrp6, we treated wild-type, Sost(-/-) , and Sost(-/-) ;Lrp5(-/-) mice with distinct Lrp6 function blocking antibodies. Selective blockage of Wnt1 class-mediated Lrp6 signaling reduced cancellous bone mass and density in wild-type mice. Surprisingly, it reversed the abnormal bone gain in Sost(-/-) and Sost(-/-) ;Lrp5(-/-) mice to wild-type levels irrespective of enhancement or blockage of Wnt3a class-mediated Lrp6 activity. Thus, whereas Sost deficiency-induced bone anabolism partially requires Lrp5, it fully depends on Wnt1 class-induced Lrp6 activity. These findings indicate: first, that OPPG syndrome patients suffering from LRP5 loss-of-function should benefit from principles antagonizing SOST/sclerostin action; and second, that therapeutic WNT signaling inhibitors may stop the debilitating bone overgrowth in sclerosing disorders related to SOST deficiency, such as sclerosteosis, van Buchem disease, and autosomal dominant craniodiaphyseal dysplasia, which are rare disorders without viable treatment options.
Insights
Sclerostin (SOST) inhibits bone formation by blocking Wnt signaling. SOST deficiency causes bone gain, partly dependent on LRP5 but fully reliant on Wnt1-mediated LRP6 activity, offering therapeutic insights.
Area of Science:
- Skeletal biology
- Molecular signaling pathways
- Bone metabolism
Background:
- Sclerostin (SOST) inhibits bone formation by binding LRP5/6 co-receptors, blocking Wnt/β-catenin signaling.
- LRP5 deficiency causes osteoporosis-pseudoglioma (OPPG), while SOST deficiency leads to excessive bone gain.
Purpose of the Study:
- To investigate the in vivo mechanism of sclerostin action on bone formation.
- To determine the roles of LRP5 and LRP6 in SOST-mediated bone regulation.
Main Methods:
- Analysis of bone phenotype in mice lacking Sost, Lrp5, or both.
- Treatment with LRP6 function blocking antibodies in different genetic backgrounds.
- Assessment of cancellous bone mass and density.
Main Results:
- Sost deficiency-induced bone gain was partially blunted in Sost(-/-);Lrp5(-/-) mice but the OPPG phenotype was rescued.
- LRP6 blockage reversed bone overgrowth in Sost(-/-) and Sost(-/-);Lrp5(-/-) mice to wild-type levels.
- SOST deficiency-induced bone anabolism requires LRP5 partially but Wnt1-mediated LRP6 activity fully.
Conclusions:
- SOST antagonism is a potential therapeutic strategy for LRP5 loss-of-function disorders like OPPG.
- WNT signaling inhibitors could treat bone overgrowth in SOST-related sclerosing disorders.
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