Skip to main content
Top
Published in: Journal of Orthopaedic Surgery and Research 1/2022

Open Access 01-12-2022 | Osteoporosis | Research article

ENPP1 deletion causes mouse osteoporosis via the MKK3/p38 MAPK/PCNA signaling pathway

Authors: Qiang Wang, Zhiqiang Gao, Kai Guo, Jiawei Lu, Feng Wang, Yufeng Huang, Desheng Wu

Published in: Journal of Orthopaedic Surgery and Research | Issue 1/2022

Login to get access

Abstract

Background

Apart from the current understanding of enzyme function, the mechanism of ectonucleotide pyrophosphatase/phosphodiesterase 1 (Enpp1) deficiency-associated osteoporosis is unknown. We aimed to explore the changes in the expression of signaling pathways of bone tissues involved in Enpp1 deficiency.

Methods

The body weights and morphology and histology of the bones of male Enpp1 knockout (KO) and wild-type (WT) mice were assessed. The humeri of WT and Enpp1 KO mice at 12 weeks of age were subjected to high-throughput quantitative molecular measurements, and bioinformatics analysis was performed. Proteins from humeri and calvarial pre-osteoblasts (Pobs) were used to verify the differentially expressed signaling pathways and to explain the mechanism of Enpp1 deficiency-associated osteoporosis.

Results

Enpp1 KO mice had significantly lower body weight and trabecular bone mass in the hindlimbs than WT mice. Proteomics and immunoblotting showed that Enpp1 deletion downregulated the expression of the p38 mitogen-activated protein kinase (MAPK) signaling pathway in bones. Lysophosphatidic acid (LPA) was involved in activating the MKK3/p38 MAPK/PCNA pathway and proliferating Pobs in Enpp1 KO mice, whereas a p38 MAPK inhibitor suppressed the LPA-induced pro-proliferation phenotype (p < 0.05).

Conclusion

The inhibition of MKK3/p38 MAPK/PCNA pathway plays an important role in the development of osteoporosis caused by Enpp1 deficiency, and LPA partially rescued the proliferation of pre-osteoblasts via the MKK3/p38 MAPK/PCNA pathway.
Appendix
Available only for authorised users
Literature
1.
go back to reference Huang R, Rosenbach M, Vaughn R, Provvedini D, Rebbe N, Hickman S, et al. Expression of the murine plasma cell nucleotide pyrophosphohydrolase PC-1 is shared by human liver, bone, and cartilage cells: regulation of PC-1 expression in osteosarcoma cells by transforming growth factor-beta. J Clin Invest. 1994;94(2):560–7.CrossRef Huang R, Rosenbach M, Vaughn R, Provvedini D, Rebbe N, Hickman S, et al. Expression of the murine plasma cell nucleotide pyrophosphohydrolase PC-1 is shared by human liver, bone, and cartilage cells: regulation of PC-1 expression in osteosarcoma cells by transforming growth factor-beta. J Clin Invest. 1994;94(2):560–7.CrossRef
2.
go back to reference Liang J, Fu M, Ciociola E, Chandalia M, Abate N. Role of ENPP1 on adipocyte maturation. PLoS ONE. 2007;2(9):e882.CrossRef Liang J, Fu M, Ciociola E, Chandalia M, Abate N. Role of ENPP1 on adipocyte maturation. PLoS ONE. 2007;2(9):e882.CrossRef
3.
go back to reference Fiona Roberts DZ, Farquharson C, Vicky EM. ENPP1 in the regulation of mineralization and beyond. Trends Biochem Sci. 2019;44(7):616–28.CrossRef Fiona Roberts DZ, Farquharson C, Vicky EM. ENPP1 in the regulation of mineralization and beyond. Trends Biochem Sci. 2019;44(7):616–28.CrossRef
4.
go back to reference Bollen M, Gijsbers R, Ceulemans H, Stalmans W, Stefan C. Nucleotide pyrophosphatases/phosphodiesterases on the move. Crit Rev Biochem Mol Biol. 2000;35(6):393–432.CrossRef Bollen M, Gijsbers R, Ceulemans H, Stalmans W, Stefan C. Nucleotide pyrophosphatases/phosphodiesterases on the move. Crit Rev Biochem Mol Biol. 2000;35(6):393–432.CrossRef
5.
go back to reference Oheim RZK, Maulding ND, Stürznickel J, von Kroge S, Kavanagh D, Stabach PR, Kornak U, Tommasini SM, Horowitz MC, Amling M, Thompson D, Schinke T, Busse B, Carpenter TO, Braddock DT. Human heterozygous ENPP1 deficiency is associated with early onset osteoporosis, a phenotype recapitulated in a mouse model of Enpp1 deficiency. J Bone Miner Res. 2020;35(3):528–39.CrossRef Oheim RZK, Maulding ND, Stürznickel J, von Kroge S, Kavanagh D, Stabach PR, Kornak U, Tommasini SM, Horowitz MC, Amling M, Thompson D, Schinke T, Busse B, Carpenter TO, Braddock DT. Human heterozygous ENPP1 deficiency is associated with early onset osteoporosis, a phenotype recapitulated in a mouse model of Enpp1 deficiency. J Bone Miner Res. 2020;35(3):528–39.CrossRef
6.
go back to reference Okawa A, Nakamura I, Goto S, Moriya H, Nakamura Y, Ikegawa S. Mutation in Npps in a mouse model of ossification of the posterior longitudinal ligament of the spine. Nat Genet. 1998;19(3):271–3.CrossRef Okawa A, Nakamura I, Goto S, Moriya H, Nakamura Y, Ikegawa S. Mutation in Npps in a mouse model of ossification of the posterior longitudinal ligament of the spine. Nat Genet. 1998;19(3):271–3.CrossRef
7.
go back to reference Harmey D, Hessle L, Narisawa S, Johnson KA, Terkeltaub R, Millán JL. Concerted regulation of inorganic pyrophosphate and osteopontin by akp2, enpp1, and ank: an integrated model of the pathogenesis of mineralization disorders. Am J Pathol. 2004;164(4):1199–209.CrossRef Harmey D, Hessle L, Narisawa S, Johnson KA, Terkeltaub R, Millán JL. Concerted regulation of inorganic pyrophosphate and osteopontin by akp2, enpp1, and ank: an integrated model of the pathogenesis of mineralization disorders. Am J Pathol. 2004;164(4):1199–209.CrossRef
8.
go back to reference Shull LC, Sen R, Menzel J, Goyama S, Kurokawa M, Artinger KB. The conserved and divergent roles of Prdm3 and Prdm16 in zebrafish and mouse craniofacial development. Dev Biol. 2020;461(2):132–44.CrossRef Shull LC, Sen R, Menzel J, Goyama S, Kurokawa M, Artinger KB. The conserved and divergent roles of Prdm3 and Prdm16 in zebrafish and mouse craniofacial development. Dev Biol. 2020;461(2):132–44.CrossRef
9.
go back to reference Buo AM, Tomlinson RE, Eidelman ER, Chason M, Stains JP. Connexin43 and Runx2 interact to affect cortical bone geometry, skeletal development, and osteoblast and osteoclast function. J Bone Miner Res. 2017;32(8):1727–38.CrossRef Buo AM, Tomlinson RE, Eidelman ER, Chason M, Stains JP. Connexin43 and Runx2 interact to affect cortical bone geometry, skeletal development, and osteoblast and osteoclast function. J Bone Miner Res. 2017;32(8):1727–38.CrossRef
10.
go back to reference Yang L, Liu J, Shan Q, Geng G, Shao P. High glucose inhibits proliferation and differentiation of osteoblast in alveolar bone by inducing pyroptosis. Biochem Biophys Res Commun. 2020;522(2):471–8.CrossRef Yang L, Liu J, Shan Q, Geng G, Shao P. High glucose inhibits proliferation and differentiation of osteoblast in alveolar bone by inducing pyroptosis. Biochem Biophys Res Commun. 2020;522(2):471–8.CrossRef
11.
go back to reference Hu S, Zhang C, Ni L, Huang C, Chen D, Shi K, et al. Stabilization of HIF-1α alleviates osteoarthritis via enhancing mitophagy. Cell Death Dis. 2020;11(6):481.CrossRef Hu S, Zhang C, Ni L, Huang C, Chen D, Shi K, et al. Stabilization of HIF-1α alleviates osteoarthritis via enhancing mitophagy. Cell Death Dis. 2020;11(6):481.CrossRef
12.
go back to reference Willemsen M, Krebbers G, Bekkenk MW, Teunissen MBM, Luiten RM. Improvement of opal multiplex immunofluorescence workflow for human tissue sections. J Histochem Cytochem. 2021;69(5):339–46.CrossRef Willemsen M, Krebbers G, Bekkenk MW, Teunissen MBM, Luiten RM. Improvement of opal multiplex immunofluorescence workflow for human tissue sections. J Histochem Cytochem. 2021;69(5):339–46.CrossRef
13.
go back to reference Markaryan A, Nelson EG, Tretiakova M, Hinojosa R. Technical report: immunofluorescence and TUNEL staining of celloidin embedded human temporal bone tissues. Hear Res. 2008;241(1–2):1–6.PubMed Markaryan A, Nelson EG, Tretiakova M, Hinojosa R. Technical report: immunofluorescence and TUNEL staining of celloidin embedded human temporal bone tissues. Hear Res. 2008;241(1–2):1–6.PubMed
14.
go back to reference Chan RW, Gargett CE. Identification of label-retaining cells in mouse endometrium. Stem Cells. 2006;24(6):1529–38.CrossRef Chan RW, Gargett CE. Identification of label-retaining cells in mouse endometrium. Stem Cells. 2006;24(6):1529–38.CrossRef
15.
go back to reference Yang HY, Kwon J, Kook MS, Kang SS, Kim SE, Sohn S, et al. Proteomic analysis of gingival tissue and alveolar bone during alveolar bone healing. Mol Cell Proteomics. 2013;12(10):2674–88.CrossRef Yang HY, Kwon J, Kook MS, Kang SS, Kim SE, Sohn S, et al. Proteomic analysis of gingival tissue and alveolar bone during alveolar bone healing. Mol Cell Proteomics. 2013;12(10):2674–88.CrossRef
16.
go back to reference Babij P, Roudier M, Graves T, Han CY, Chhoa M, Li CM, et al. New variants in the Enpp1 and Ptpn6 genes cause low BMD, crystal-related arthropathy, and vascular calcification. J Bone Miner Res. 2009;24(9):1552–64.CrossRef Babij P, Roudier M, Graves T, Han CY, Chhoa M, Li CM, et al. New variants in the Enpp1 and Ptpn6 genes cause low BMD, crystal-related arthropathy, and vascular calcification. J Bone Miner Res. 2009;24(9):1552–64.CrossRef
17.
go back to reference Mackenzie NC, Zhu D, Milne EM, vant Hof R, Martin A, Darryl Quarles L, et al. Altered bone development and an increase in FGF-23 expression in Enpp1(-/-) mice. PLoS One. 2012;7(2):e32177. Mackenzie NC, Zhu D, Milne EM, vant Hof R, Martin A, Darryl Quarles L, et al. Altered bone development and an increase in FGF-23 expression in Enpp1(-/-) mice. PLoS One. 2012;7(2):e32177.
18.
go back to reference Rodríguez-Carballo E, Gámez B, Ventura F. p38 MAPK signaling in osteoblast differentiation. Front Cell Dev Biol. 2016;4:40.CrossRef Rodríguez-Carballo E, Gámez B, Ventura F. p38 MAPK signaling in osteoblast differentiation. Front Cell Dev Biol. 2016;4:40.CrossRef
19.
go back to reference Greenblatt MB, Shim JH, Zou W, Sitara D, Schweitzer M, Hu D, et al. The p38 MAPK pathway is essential for skeletogenesis and bone homeostasis in mice. J Clin Invest. 2010;120(7):2457–73.CrossRef Greenblatt MB, Shim JH, Zou W, Sitara D, Schweitzer M, Hu D, et al. The p38 MAPK pathway is essential for skeletogenesis and bone homeostasis in mice. J Clin Invest. 2010;120(7):2457–73.CrossRef
20.
go back to reference Xie B, Zeng Z, Liao S, Zhou C, Wu L, Xu D. Kaempferol ameliorates the inhibitory activity of dexamethasone in the osteogenesis of MC3T3-E1 cells by JNK and p38-MAPK pathways. Front Pharmacol. 2021;12:739326.CrossRef Xie B, Zeng Z, Liao S, Zhou C, Wu L, Xu D. Kaempferol ameliorates the inhibitory activity of dexamethasone in the osteogenesis of MC3T3-E1 cells by JNK and p38-MAPK pathways. Front Pharmacol. 2021;12:739326.CrossRef
21.
go back to reference Tachi J, Tokuda H, Onuma T, Yamaguchi S, Kim W, Hioki T, et al. Duloxetine strengthens osteoblast activation by prostaglandin E(1): upregulation of p38 MAP kinase. Prostaglandins Other Lipid Mediat. 2020;151:106481.CrossRef Tachi J, Tokuda H, Onuma T, Yamaguchi S, Kim W, Hioki T, et al. Duloxetine strengthens osteoblast activation by prostaglandin E(1): upregulation of p38 MAP kinase. Prostaglandins Other Lipid Mediat. 2020;151:106481.CrossRef
22.
go back to reference Suzuki A, Guicheux J, Palmer G, Miura Y, Oiso Y, Bonjour JP, et al. Evidence for a role of p38 MAP kinase in expression of alkaline phosphatase during osteoblastic cell differentiation. Bone. 2002;30(1):91–8.CrossRef Suzuki A, Guicheux J, Palmer G, Miura Y, Oiso Y, Bonjour JP, et al. Evidence for a role of p38 MAP kinase in expression of alkaline phosphatase during osteoblastic cell differentiation. Bone. 2002;30(1):91–8.CrossRef
23.
go back to reference Cuadrado A, Nebreda AR. Mechanisms and functions of p38 MAPK signalling. Biochem J. 2010;429(3):403–17.CrossRef Cuadrado A, Nebreda AR. Mechanisms and functions of p38 MAPK signalling. Biochem J. 2010;429(3):403–17.CrossRef
24.
go back to reference Zhu L, Lin ZW, Wang G, Zhang H, Liu B, Xu QJ. MicroRNA-495 downregulates AQP1 and facilitates proliferation and differentiation of osteoblasts in mice with tibial fracture through activation of p38 MAPK signaling pathway. Sci Rep. 2019;9(1):16171.CrossRef Zhu L, Lin ZW, Wang G, Zhang H, Liu B, Xu QJ. MicroRNA-495 downregulates AQP1 and facilitates proliferation and differentiation of osteoblasts in mice with tibial fracture through activation of p38 MAPK signaling pathway. Sci Rep. 2019;9(1):16171.CrossRef
25.
go back to reference Liu M, Fan F, Shi P, Tu M, Yu C, Yu C, et al. Lactoferrin promotes MC3T3-E1 osteoblast cells proliferation via MAPK signaling pathways. Int J Biol Macromol. 2018;107(Pt A):137–43.CrossRef Liu M, Fan F, Shi P, Tu M, Yu C, Yu C, et al. Lactoferrin promotes MC3T3-E1 osteoblast cells proliferation via MAPK signaling pathways. Int J Biol Macromol. 2018;107(Pt A):137–43.CrossRef
26.
go back to reference Masiello LM, Fotos JS, Galileo DS, Karin NJ. Lysophosphatidic acid induces chemotaxis in MC3T3-E1 osteoblastic cells. Bone. 2006;39(1):72–82.CrossRef Masiello LM, Fotos JS, Galileo DS, Karin NJ. Lysophosphatidic acid induces chemotaxis in MC3T3-E1 osteoblastic cells. Bone. 2006;39(1):72–82.CrossRef
27.
go back to reference Yu ZL, Li DQ, Huang XY, Xing X, Yu RQ, Li Z, et al. Lysophosphatidic acid upregulates connective tissue growth factor expression in osteoblasts through the GPCR/PKC and PKA pathways. Int J Mol Med. 2016;37(2):468–74.CrossRef Yu ZL, Li DQ, Huang XY, Xing X, Yu RQ, Li Z, et al. Lysophosphatidic acid upregulates connective tissue growth factor expression in osteoblasts through the GPCR/PKC and PKA pathways. Int J Mol Med. 2016;37(2):468–74.CrossRef
Metadata
Title
ENPP1 deletion causes mouse osteoporosis via the MKK3/p38 MAPK/PCNA signaling pathway
Authors
Qiang Wang
Zhiqiang Gao
Kai Guo
Jiawei Lu
Feng Wang
Yufeng Huang
Desheng Wu
Publication date
01-12-2022
Publisher
BioMed Central
Published in
Journal of Orthopaedic Surgery and Research / Issue 1/2022
Electronic ISSN: 1749-799X
DOI
https://doi.org/10.1186/s13018-022-03349-1

Other articles of this Issue 1/2022

Journal of Orthopaedic Surgery and Research 1/2022 Go to the issue