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Published on: July 3, 2020
Catalysis-Independent ENPP1 Protein Signaling Regulates Mammalian Bone Mass
Kristin Zimmerman1, Xiaochen Liu1, Simon von Kroge2
1Department of Pathology, Yale University School of Medicine, New Haven, CT, USA.
Insights
Ectonucleotide pyrophosphatase/phosphodiesterase 1 (ENPP1) deficiency causes vascular calcification and bone loss. Catalysis-independent ENPP1 signaling regulates bone mass by controlling Wnt inhibitors, while catalytic activity impacts phosphate homeostasis.
Area of Science:
- Biochemistry
- Molecular Biology
- Skeletal Biology
Background:
- Biallelic ectonucleotide pyrophosphatase/phosphodiesterase 1 (ENPP1) deficiency causes generalized arterial calcification of infancy (GACI) and hypophosphatemic rickets.
- ENPP1 deficiency presents with reduced skeletal mineral accrual and excess heterotopic mineralization, a paradox not explained by its role in generating pyrophosphate (PPi).
- ENPP1 generates extracellular pyrophosphate (PPi), an inhibitor of mineralization, and its deficiency leads to vascular calcification due to low plasma PPi.
Purpose of the Study:
- To investigate the catalysis-independent pathways of ENPP1 that regulate bone mass.
- To differentiate the roles of ENPP1's catalytic activity versus signaling in phosphate homeostasis and bone mineralization.
- To develop a murine model that uncouples ENPP1 protein signaling from its catalytic function.
Main Methods:
- Developed a murine model (Enpp1T238A) with uncoupled ENPP1 signaling and catalysis.
- Compared Enpp1T238A mice with Enpp1asj mice (lacking ENPP1) and wild-type (WT) controls.
- Analyzed bone microarchitecture, biomechanics, plasma phosphate (Pi) and PPi levels, fibroblast growth factor 23 (FGF23), and calvarial cell cultures.
Main Results:
- Enpp1T238A mice exhibited normal bone structure, unlike Enpp1asj mice.
- Both Enpp1T238A and Enpp1asj mice showed low plasma Pi and PPi, elevated FGF23, and osteomalacia, indicating equivalent phosphate wasting.
- Calvarial cells from Enpp1asj mice showed reduced calcification, increased Sfrp1, and decreased β-catenin signaling, which were restored by Sfrp1 knockout.
Conclusions:
- Catalysis-independent ENPP1 signaling regulates bone mass through pathways involving secreted frizzled-related protein 1 (SFRP1), a Wnt inhibitor.
- Catalytic activity of ENPP1 regulates phosphate homeostasis via plasma FGF23 levels.
- ENPP1 has distinct roles in bone health, with separate mechanisms controlling mineralization and phosphate balance.
Abstract:
Biallelic ectonucleotide pyrophosphatase/phosphodiesterase 1 (ENPP1) deficiency induces vascular/soft tissue calcifications in generalized arterial calcification of infancy (GACI), and low bone mass with phosphate-wasting rickets in GACI survivors (autosomal hypophosphatemic rickets type-2). ENPP1 haploinsufficiency induces early-onset osteoporosis and mild phosphate wasting in adults. Both conditions demonstrate the unusual combination of reduced accrual of skeletal mineral, yet excess and progressive heterotopic mineralization. ENPP1 is the only enzyme that generates extracellular pyrophosphate (PPi), a potent inhibitor of both bone and heterotopic mineralization. Life-threatening vascular calcification in ENPP1 deficiency is due to decreased plasma PPi; however, the mechanism by which osteopenia results is not apparent from an understanding of the enzyme's catalytic activity. To probe for catalysis-independent ENPP1 pathways regulating bone, we developed a murine model uncoupling ENPP1 protein signaling from ENPP1 catalysis, Enpp1T238A mice. In contrast to Enpp1asj mice, which lack ENPP1, Enpp1T238A mice have normal trabecular bone microarchitecture and favorable biomechanical properties. However, both models demonstrate low plasma Pi and PPi, increased fibroblast growth factor 23 (FGF23), and by 23 weeks, osteomalacia demonstrating equivalent phosphate wasting in both models. Reflecting findings in whole bone, calvarial cell cultures from Enpp1asj mice demonstrated markedly decreased calcification, elevated transcription of Sfrp1, and decreased nuclear β-catenin signaling compared to wild-type (WT) and Enpp1T238A cultures. Finally, the decreased calcification and nuclear β-catenin signaling observed in Enpp1asj cultures was restored to WT levels by knockout of Sfrp1. Collectively, our findings demonstrate that catalysis-independent ENPP1 signaling pathways regulate bone mass via the expression of soluble Wnt inhibitors such as secreted frizzled-related protein 1 (SFRP1), whereas catalysis dependent pathways regulate phosphate homeostasis through the regulation of plasma FGF23. © 2022 American Society for Bone and Mineral Research (ASBMR).
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