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Overexpression of Wild-Type ACVR1 in Fibrodysplasia Ossificans Progressiva Mice Rescues Perinatal Lethality and
Masakazu Yamamoto1, Sean J Stoessel1, Shoko Yamamoto1
1Department of Molecular and Cell Biology, University of Connecticut Stem Cell Institute, University of Connecticut, Storrs, CT, USA.
Abstract:
Fibrodysplasia ossificans progressiva (FOP) is a devastating disease of progressive heterotopic bone formation for which effective treatments are currently unavailable. FOP is caused by dominant gain-of-function mutations in the receptor ACVR1 (also known as ALK2), which render the receptor inappropriately responsive to activin ligands. In previous studies, we developed a genetic mouse model of FOP that recapitulates most clinical aspects of the disease. In this model, genetic loss of the wild-type Acvr1 allele profoundly exacerbated heterotopic ossification, suggesting the hypothesis that the stoichiometry of wild-type and mutant receptors dictates disease severity. Here, we tested this model by producing FOP mice that conditionally overexpress human wild-type ACVR1. Injury-induced heterotopic ossification (HO) was completely blocked in FOP mice when expression of both the mutant and wild-type receptor were targeted to Tie2-positive cells, which includes fibro/adipogenic progenitors (FAPs). Perinatal lethality of Acvr1R206H/+ mice was rescued by constitutive ACVR1 overexpression, and these mice survived to adulthood at predicted Mendelian frequencies. Constitutive overexpression of ACVR1 also provided protection from spontaneous abnormal skeletogenesis, and the incidence and severity of injury-induced HO in these mice was dramatically reduced. Analysis of pSMAD1/5/8 signaling both in cultured cells and in vivo indicates that ACVR1 overexpression functions cell-autonomously by reducing osteogenic signaling in response to activin A. We propose that ACVR1 overexpression inhibits HO by decreasing the abundance of ACVR1(R206H)-containing signaling complexes at the cell surface while increasing the representation of activin-A-bound non-signaling complexes comprised of wild-type ACVR1. © 2022 The Authors. Journal of Bone and Mineral Research published by Wiley Periodicals LLC on behalf of American Society for Bone and Mineral Research (ASBMR).
Insights
Overexpressing wild-type ACVR1 in FOP mice blocked heterotopic bone formation and rescued disease lethality. This suggests ACVR1 stoichiometry influences fibrodysplasia ossificans progressiva severity.
Area of Science:
- Genetics
- Molecular Biology
- Skeletal Biology
Background:
- Fibrodysplasia ossificans progressiva (FOP) is a rare genetic disorder characterized by progressive heterotopic bone formation.
- FOP results from gain-of-function mutations in the ACVR1 receptor, leading to abnormal bone development.
- Current treatments for FOP are limited, highlighting the need for novel therapeutic strategies.
Purpose of the Study:
- To investigate the role of wild-type ACVR1 stoichiometry in modulating FOP pathogenesis.
- To determine if overexpression of wild-type ACVR1 can ameliorate FOP phenotypes in a mouse model.
- To explore the therapeutic potential of modulating ACVR1 levels for FOP treatment.
Main Methods:
- Development of FOP mouse models with conditional overexpression of wild-type ACVR1.
- Assessment of heterotopic ossification (HO) following injury in genetically modified mice.
- Analysis of ACVR1 signaling pathways, including pSMAD1/5/8 phosphorylation, in vitro and in vivo.
Main Results:
- Complete blockade of injury-induced HO in FOP mice with targeted ACVR1 overexpression in Tie2-positive cells.
- Rescue of perinatal lethality and survival to adulthood in Acvr1R206H/+ mice with constitutive ACVR1 overexpression.
- Significant reduction in spontaneous and injury-induced HO, along with protection from abnormal skeletogenesis.
Conclusions:
- ACVR1 overexpression functions cell-autonomously to reduce osteogenic signaling in response to activin A.
- Modulating ACVR1 stoichiometry, specifically by increasing wild-type receptor levels, offers a promising therapeutic strategy for FOP.
- This approach inhibits HO by altering the balance of signaling complexes at the cell surface.
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