Piezo1 and Piezo2 are mechanosensitive ion channels that transduce mechanical stimuli into intracellular biochemical signals in diverse tissues and organ systems. Their functions in odontoblast development are still not well understood. In this study, we showed that Piezo1 and Piezo2 displayed dynamic expression in odontoblasts during terminal cytodifferentiation, suggesting a functional role in this process. However, Piezo1 knockouts in odontoblasts using Wnt1-Cre (Piezo1 cKO) did not cause pronounced structural change in tooth development in a majority of the Piezo1 cKO mice. Piezo2 cKO did not show obvious tooth defect either. Therefore, we pursued a double knockout approach. A phenotype analysis of Wnt1-Cre mediated Piezo1 and Piezo2 double knockout (Piezo1/Piezo2 dKO) mice revealed impaired cytodifferentiation and morphological change in the odontoblasts. Specifically, the heights of odontoblast and ameloblast layers were lower in Piezo1/Piezo2 dKO mice than controls, and expression of markers for odontoblast terminal differentiation, including collagen type 1a and alkaline phosphatase, was delayed. Furthermore, levels of nuclear β-catenin and Wnt10a were remarkably decreased, indicative of compromised Wnt/β-catenin signaling. Notably, the application of the Wnt10a protein rescued the odontoblast phenotype of Piezo1/Piezo2 dKO teeth in an ex vivo organ culture system. Moreover, the intraperitoneal injection of Yoda1, a Piezo1 channel agonist, facilitated odontoblast cytodifferentiation and elevated Wnt/β-catenin signaling in dental pulp tissues at the newborn stage. Altogether, these data suggest that Piezo channels play a role in regulating the terminal differentiation of odontoblasts via modulation of Wnt/β-catenin signaling.
| [1] |
Coste B, et al.. Piezo1 and Piezo2 are essential components of distinct mechanically activated cation channels. Science, 2010, 330: 55-60
|
| [2] |
Kim SE, Coste B, Chadha A, Cook B, Patapoutian A. The role of Drosophila Piezo in mechanical nociception. Nature, 2012, 483: 209-212
|
| [3] |
Bagriantsev SN, Gracheva EO, Gallagher PG. Piezo proteins: regulators of mechanosensation and other cellular processes. J. Biol. Chem., 2014, 289: 31673-31681
|
| [4] |
Nie X, Chung MK. Piezo channels for skeletal development and homeostasis: insights from mouse genetic models. Differentiation, 2022, 126: 10-15
|
| [5] |
Volkers L, Mechioukhi Y, Coste B. Piezo channels: from structure to function. Pflug. Arch., 2015, 467: 95-99
|
| [6] |
Nie, X., Abbasi, Y. & Chung, M. K. Piezo1 and Piezo2 collectively regulate jawbone development. Development151, dev202386 (2024).
|
| [7] |
Canales Coutiño, B. & Mayor, R. The mechanosensitive channel Piezo1 cooperates with semaphorins to control neural crest migration. Development148, dev200001 (2021).
|
| [8] |
Woo SH, et al.. Piezo2 is the principal mechanotransduction channel for proprioception. Nat. Neurosci., 2015, 18: 1756-1762
|
| [9] |
Nonomura K, et al.. Piezo2 senses airway stretch and mediates lung inflation-induced apnoea. Nature, 2017, 541: 176-181
|
| [10] |
Ranade SS, et al.. Piezo1, a mechanically activated ion channel, is required for vascular development in mice. Proc. Natl. Acad. Sci. USA, 2014, 111: 10347-10352
|
| [11] |
Hendrickx G, et al.. Piezo1 inactivation in chondrocytes impairs trabecular bone formation. J. Bone Min. Res, 2020, 36: 369-384
|
| [12] |
Wang S, et al.. Nociceptor neurons facilitate orthodontic tooth movement via Piezo2 in mice. J. Dent. Res., 2025, 104: 890-899
|
| [13] |
Zhou, T. et al. Piezo1/2 mediate mechanotransduction essential for bone formation through concerted activation of NFAT-YAP1-ss-catenin. eLife9, e52779 (2020).
|
| [14] |
Sun, W. et al. The mechanosensitive Piezo1 channel is required for bone formation. eLife8, e47454 (2019).
|
| [15] |
Qin L, et al.. Roles of mechanosensitive channel Piezo1/2 proteins in skeleton and other tissues. Bone Res., 2021, 9: 44
|
| [16] |
Thesleff I. From understanding tooth development to bioengineering of teeth. Eur. J. Oral. Sci., 2018, 126: 67-71
|
| [17] |
Yu, T. & Klein, O. D. Molecular and cellular mechanisms of tooth development, homeostasis and repair. Development147, dev184754 (2020).
|
| [18] |
Calamari ZT, Hu JKH, Klein OD. Tissue mechanical forces and evolutionary developmental changes act through space and time to shape tooth morphology and function. Bioessays, 2018, 40: e1800140
|
| [19] |
Gaite JJ, et al.. Immunolocalization of the mechanogated ion channels PIEZO1 and PIEZO2 in human and mouse dental pulp and periodontal ligament. Anat. Rec., 2024, 307: 1960-1968
|
| [20] |
Ohyama S, et al.. Piezo1-pannexin-1-P2X(3) axis in odontoblasts and neurons mediates sensory transduction in dentinal sensitivity. Front. Physiol., 2022, 13 891759
|
| [21] |
Nie X, et al.. mTOR acts as a pivotal signaling hub for neural crest cells during craniofacial development. PLoS Genet., 2018, 14: e1007491
|
| [22] |
Yamashiro T, et al.. Wnt10a regulates dentin sialophosphoprotein mRNA expression and possibly links odontoblast differentiation and tooth morphogenesis. Differentiation, 2007, 75: 452-462
|
| [23] |
Benard EL, Hammerschmidt M. The fundamentals of WNT10A. Differentiation, 2025, 142: 100838
|
| [24] |
Yoshinaga K, et al.. Effects of Wnt10a and Wnt10b double mutations on tooth development. Genes, 2023, 14: 340
|
| [25] |
Shull, L. C. et al. PRDM paralogs antagonistically balance Wnt/beta-catenin activity during craniofacial chondrocyte differentiation. Development149, dev200082(2022).
|
| [26] |
Jho E, et al.. Wnt/beta-catenin/Tcf signaling induces the transcription of Axin2, a negative regulator of the signaling pathway. Mol. Cell Biol., 2002, 22: 1172-1183
|
| [27] |
Lammi L, et al.. Mutations in AXIN2 cause familial tooth agenesis and predispose to colorectal cancer. Am. J. Hum. Genet., 2004, 74: 1043-1050
|
| [28] |
Lin Y, Ren J, McGrath C. Mechanosensitive Piezo1 and Piezo2 ion channels in craniofacial development and dentistry: Recent advances and prospects. Front. Physiol., 2022, 13: 1039714
|
| [29] |
Meng L, et al.. Piezo2+ mechanosensory neurons orchestrate postnatal development through mechano-chemo-transduction of PDGFA signaling. Proc. Natl. Acad. Sci. USA, 2025, 122 e2504103122
|
| [30] |
Nottmeier C, et al.. Mechanical-induced bone remodeling does not depend on Piezo1 in dentoalveolar hard tissue. Sci. Rep., 2023, 13 9563
|
| [31] |
Lee PR, Lee K, Park JM, Kim S, Oh SB. Functional and distinct roles of Piezo2-mediated mechanotransduction in dental primary afferent neurons. Int. J. Oral. Sci., 2025, 17: 45
|
| [32] |
Cho YS, et al.. Expression of Piezo1 in the trigeminal neurons and in the axons that innervate the dental pulp. Front. Cell Neurosci., 2022, 16 945948
|
| [33] |
Lee W, et al.. Synergy between Piezo1 and Piezo2 channels confers high-strain mechanosensitivity to articular cartilage. Proc. Natl. Acad. Sci. USA, 2014, 111: E5114-E5122
|
| [34] |
Dalghi, M. G. et al. Functional roles for PIEZO1 and PIEZO2 in urothelial mechanotransduction and lower urinary tract interoception. JCI Insight6, e152984(2021).
|
| [35] |
Pei F, et al.. The functions of mechanosensitive ion channels in tooth and bone tissues. Cell Signal., 2021, 78 109877
|
| [36] |
Zhou Y, Zhang C, Zhou Z, Zhang C, Wang J. Identification of key genes and pathways associated with PIEZO1 in bone-related disease based on bioinformatics. Int. J. Mol. Sci., 2022, 23: 5250
|
| [37] |
Miyazaki A, et al.. Coordination of WNT signaling and ciliogenesis during odontogenesis by piezo type mechanosensitive ion channel component 1. Sci. Rep., 2019, 9 14762
|
| [38] |
Tan B, et al.. The critical role of Piezo1/CaMKII/beta-catenin axis in promoting osteogenic differentiation of ADSCs by pressure stimulation. ACS Omega, 2025, 10: 31368-31380
|
| [39] |
He J, Cheng X, Fang B, Shan S, Li Q. Mechanical stiffness promotes skin fibrosis via Piezo1-Wnt2/Wnt11-CCL24 positive feedback loop. Cell Death Dis., 2024, 15 84
|
| [40] |
Chen J, Lan Y, Baek JA, Gao Y, Jiang R. Wnt/beta-catenin signaling plays an essential role in activation of odontogenic mesenchyme during early tooth development. Dev. Biol., 2009, 334: 174-185
|
| [41] |
Raju R, et al.. Profiles of Wnt pathway gene expression during tooth morphogenesis. Front. Physiol., 2023, 14 1316635
|
| [42] |
Xu M, et al.. WNT10A mutation causes ectodermal dysplasia by impairing progenitor cell proliferation and KLF4-mediated differentiation. Nat. Commun., 2017, 8 15397
|
| [43] |
Aurrekoetxea M, Lopez J, García P, Ibarretxe G, Unda F. Enhanced Wnt/beta-catenin signalling during tooth morphogenesis impedes cell differentiation and leads to alterations in the structure and mineralisation of the adult tooth. Biol. Cell, 2012, 104: 603-617
|
| [44] |
Alper SL. Genetic diseases of PIEZO1 and PIEZO2 dysfunction. Curr. Top. Membr., 2017, 79: 97-134
|
| [45] |
Syeda R. Physiology and pathophysiology of mechanically activated PIEZO channels. Annu. Rev. Neurosci., 2021, 44: 383-402
|
| [46] |
Lewis AE, Vasudevan HN, O’Neill AK, Soriano P, Bush JO. The widely used Wnt1-Cre transgene causes developmental phenotypes by ectopic activation of Wnt signaling. Dev. Biol., 2013, 379: 229-234
|
| [47] |
Cahalan, S. M. et al. Piezo1 links mechanical forces to red blood cell volume. eLife4, (2015).
|
| [48] |
Woo SH, et al.. Piezo2 is required for Merkel-cell mechanotransduction. Nature, 2014, 509: 622-626
|
| [49] |
Matrongolo, M. J. et al. Piezo1 agonist restores meningeal lymphatic vessels, drainage, and brain-CSF perfusion in craniosynostosis and aged mice. J. Clin. Investig.134, e171468 (2024).
|
Funding
U.S. Department of Health & Human Services | NIH | National Institute of Dental and Craniofacial Research (NIDCR)(DE32530)
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