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Published on: July 3, 2020
Sclerostin inhibition in rare bone diseases: Molecular understanding and therapeutic perspectives
Tao Xiaohui1,2,3,4, Luyao Wang1,2,3,4, Xin Yang1,2,3,4
1Law Sau Fai Institute for Advancing Translational Medicine in Bone and Joint Diseases (TMBJ), School of Chinese Medicine, Hong Kong Baptist University, Hong Kong SAR, China.
Abstract:
Sclerostin emerges as a novel target for bone anabolic therapy in bone diseases. Osteogenesis imperfecta (OI) and X-linked hypophosphatemia (XLH) are rare bone diseases in which therapeutic potential of sclerostin inhibition cannot be ignored. In OI, genetic/pharmacologic sclerostin inhibition promoted bone formation of mice, but responses varied by genotype and age. Serum sclerostin levels were higher in young OI-I patients, while lower in adult OI-I/III/IV. It's worth investigating whether therapeutic response of OI to sclerostin inhibition could be clinically predicted by genotype and age. In XLH, preclinical/clinical data suggested factors other than identified FGF23 contributing to XLH. Higher levels of circulating sclerostin were detected in XLH. Sclerostin inhibition promoted bone formation in Hyp mice, while restored phosphate homeostasis in age-/gender-dependent manner. The role of sclerostin in regulating phosphate metabolism deserves investigation. Sclerostin/FGF23 levels of XLH patients with/without response to FGF23-antibody warrants study to develop precise sclerostin/FGF23 inhibition strategy or synergistic/additive strategy. Notably, OI patients were associated with cardiovascular abnormalities, so were XLH patients receiving conventional therapy. Targeting sclerostin loop3 promoted bone formation without cardiovascular risks. Further, blockade of sclerostin loop3-LRP4 interaction while preserving sclerostin loop2-ApoER2 interaction could be a potential precise sclerostin inhibition strategy for OI and XLH with cardiovascular safety. The Translational Potential of this Article. Preclinical data on the molecular understanding of sclerostin inhibition in OI and therapeutic efficacy in mouse models of different genotypes, as well as clinical data on serum sclerostin levels in patients with different phenotypes of OI, were reviewed and discussed. Translationally, it would facilitate to develop clinical prediction strategies (e.g. based on genotype and age, not just phenotype) for OI patients responsive to sclerostin inhibition. Both preclinical and clinical data suggested sclerostin as another factor contributing to XLH, in addition to the identified FGF23. The molecular understanding and therapeutic effects of sclerostin inhibition on both promoting bone anabolism and improving phosphate homostasis in Hyp mice were reviewed and discussed. Translationaly, it would facilitate the development of precise sclerostin/FGF23 inhibition strategy or synergistic/additive strategy for the treatment of XLH. Cardiovascular risk could not be ruled out during sclerostin inhibition treatment, especially for OI and XLH patients with cardiovascular diseases history and cardiovascular abnormalities. Studies on the role of sclerostin in inhiting bone formation and protecting cardiovascular system were reviewed and discussed. Translationaly, blockade of sclerostin loop3-LRP4 interaction while preserving sclerostin loop2-ApoER2 interaction could be a potential precise sclerostin inhibition strategy for OI and XLH with cardiovascular safety.
Insights
Sclerostin inhibition shows therapeutic potential for Osteogenesis Imperfecta (OI) and X-linked hypophosphatemia (XLH), with potential for genotype- and age-based treatment strategies. Precise targeting may mitigate cardiovascular risks in these rare bone diseases.
Area of Science:
- Bone biology and regenerative medicine
- Endocrinology and metabolic diseases
- Genetics and rare diseases
Background:
- Sclerostin is a key regulator of bone formation and phosphate homeostasis.
- Osteogenesis Imperfecta (OI) and X-linked hypophosphatemia (XLH) are rare bone diseases with unmet therapeutic needs.
- Current understanding of sclerostin's role in OI and XLH is evolving.
Purpose of the Study:
- To review the therapeutic potential of sclerostin inhibition in OI and XLH.
- To explore genotype- and age-dependent responses to sclerostin inhibition in OI.
- To investigate sclerostin's role in phosphate metabolism and its potential as a therapeutic target in XLH.
- To assess cardiovascular safety considerations for sclerostin inhibition therapies.
Main Methods:
- Review of preclinical data on sclerostin inhibition in mouse models of OI and XLH.
- Analysis of clinical data on serum sclerostin levels in patients with OI and XLH.
- Evaluation of studies investigating sclerostin's interaction with LRP4 and ApoER2.
- Assessment of cardiovascular effects associated with sclerostin modulation.
Main Results:
- Sclerostin inhibition promoted bone formation in OI mouse models, with variable responses based on genotype and age.
- Serum sclerostin levels differ in OI patients based on age and subtype.
- Elevated serum sclerostin levels are observed in XLH patients.
- Sclerostin inhibition improved bone formation and phosphate homeostasis in XLH mouse models in an age- and gender-dependent manner.
- Targeting specific sclerostin interaction loops may offer cardiovascular safety.
Conclusions:
- Sclerostin inhibition is a promising anabolic therapy for OI and XLH, with potential for personalized treatment strategies.
- Genotype and age may predict therapeutic response in OI patients.
- Sclerostin plays a significant role in phosphate homeostasis, warranting further investigation in XLH.
- Precise targeting of sclerostin interactions, particularly loop3, may provide a cardiovascularly safe therapeutic approach for OI and XLH.
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