Retinoic Acid Signalling Regulates Zebrafish Tooth Germ Repair Following Injury

Qiqi Liu , Zhenan Zhang , Weifeng Hao , Chunyan Zhou , Deqin Yang

Cell Proliferation ›› 2026, Vol. 59 ›› Issue (7) : e70186

PDF (14273KB)
Cell Proliferation ›› 2026, Vol. 59 ›› Issue (7) :e70186 DOI: 10.1111/cpr.70186
ORIGINAL ARTICLE
Retinoic Acid Signalling Regulates Zebrafish Tooth Germ Repair Following Injury
Author information +
History +
PDF (14273KB)

Abstract

Although the role of retinoic acid (RA) signalling in odontogenesis is well established, its involvement in the repair of injured tooth germs remains unclear. To investigate this, we generated a Tg(scpp5:Dendra2-NTR) zebrafish line for labelling tooth germ cells and established a tooth germ injury model using the nitroreductase (NTR)/metronidazole (MTZ) system. We then modulated RA signalling by exogenous activation with RA, retinol, retinal, talarozole (TZ) or Tg(hsp70l:aldh1a2-p2a-mCherry; cryaa:venus), and by suppression with 4-diethylaminobenzaldehyde (DEAB) or Tg(hsp70l:dnRARAA-p2a-DsRed; cryaa:venus), to examine its function in tooth germ repair. Following targeted ablation of tooth germ cells, RA signalling was activated, with aldh1a2 showing the most pronounced upregulation. Exogenous RA promoted injury-induced tooth germ repair, whereas its precursors (retinol and retinal) had no significant effect on aldh1a2 expression or repair. Pharmacological inhibition of RA degradation with TZ enhanced repair, while dominant-negative inhibition of RA signalling impaired it. Furthermore, modulation of aldh1a2 revealed its essential role: inhibition with DEAB attenuated repair, whereas genetic activation facilitated tissue restoration. In summary, this study clarifies the regulatory role of RA signalling in tooth germ injury repair, offering a theoretical foundation and potential therapeutic targets for the treatment of injured tooth germs.

Keywords

retinoic acid signalling / SCPP5 / tooth germ injury / tooth germ repair / zebrafish

Cite this article

Download citation ▾
Qiqi Liu, Zhenan Zhang, Weifeng Hao, Chunyan Zhou, Deqin Yang. Retinoic Acid Signalling Regulates Zebrafish Tooth Germ Repair Following Injury. Cell Proliferation, 2026, 59 (7) : e70186 DOI:10.1111/cpr.70186

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

L. Tang, M. Chen, M. Wu, et al., “Fgf9 Promotes Incisor Dental Epithelial Stem Cell Survival and Enamel Formation,” Stem Cell Research & Therapy 15, no. 1 (2024): 293.

[2]

W. Zhang and P. C. Yelick, “Tooth Repair and Regeneration: Potential of Dental Stem Cells,” Trends in Molecular Medicine 27, no. 5 (2021): 501–511.

[3]

D. W. Stock, “Zebrafish Dentition in Comparative Context,” Journal of Experimental Zoology. Part B, Molecular and Developmental Evolution 308, no. 5 (2007): 523–549.

[4]

C. Van der Heyden and A. Huysseune, “Dynamics of Tooth Formation and Replacement in the Zebrafish (Danio rerio) (Teleostei, Cyprinidae),” Developmental Dynamics 219, no. 4 (2000): 486–496.

[5]

K. Kawasaki and K. M. Weiss, “SCPP Gene Evolution and the Dental Mineralization Continuum,” Journal of Dental Research 87, no. 6 (2008): 520–531.

[6]

A. Huysseune, M. Soenens, and F. Elderweirdt, “Wnt Signaling During Tooth Replacement in Zebrafish (Danio rerio): Pitfalls and Perspectives,” Frontiers in Physiology 5 (2014): 386.

[7]

A. Huysseune, C. Van der heyden, and J. Y. Sire, “Early Development of the Zebrafish (Danio rerio) Pharyngeal Dentition (Teleostei, Cyprinidae),” Anatomy and Embryology 198, no. 4 (1998): 289–305.

[8]

B. Verstraeten, J. van Hengel, and A. Huysseune, “Beta-Catenin and Plakoglobin Expression During Zebrafish Tooth Development and Replacement,” PLoS One 11, no. 3 (2016): e0148114.

[9]

K. Kawasaki and K. M. Weiss, “Mineralized Tissue and Vertebrate Evolution: The Secretory Calcium-Binding Phosphoprotein Gene Cluster,” Proceedings of the National Academy of Sciences of the United States of America 100, no. 7 (2003): 4060–4065.

[10]

K. Kawasaki, A. V. Buchanan, and K. M. Weiss, “Gene Duplication and the Evolution of Vertebrate Skeletal Mineralization,” Cells, Tissues, Organs 186, no. 1 (2007): 7–24.

[11]

K. Kawasaki, T. Suzuki, and K. M. Weiss, “Genetic Basis for the Evolution of Vertebrate Mineralized Tissue,” Proceedings of the National Academy of Sciences of the United States of America 101, no. 31 (2004): 11356–11361.

[12]

K. Kawasaki and K. M. Weiss, “Evolutionary Genetics of Vertebrate Tissue Mineralization: The Origin and Evolution of the Secretory Calcium-Binding Phosphoprotein Family,” Journal of Experimental Zoology. Part B, Molecular and Developmental Evolution 306, no. 3 (2006): 295–316.

[13]

K. Kawasaki, “The SCPP Gene Repertoire in Bony Vertebrates and Graded Differences in Mineralized Tissues,” Development Genes and Evolution 219, no. 3 (2009): 147–157.

[14]

S. Lai, A. Kumari, J. Liu, et al., “Chemical Screening Reveals Ronidazole Is a Superior Prodrug to Metronidazole for Nitroreductase-Induced Cell Ablation System in Zebrafish Larvae,” Journal of Genetics and Genomics 48, no. 12 (2021): 1081–1090.

[15]

S. Curado, D. Y. R. Stainier, and R. M. Anderson, “Nitroreductase-Mediated Cell/Tissue Ablation in Zebrafish: A Spatially and Temporally Controlled Ablation Method With Applications in Developmental and Regeneration Studies,” Nature Protocols 3, no. 6 (2008): 948–954.

[16]

S. Curado, R. M. Anderson, B. Jungblut, J. Mumm, E. Schroeter, and D. Y. R. Stainier, “Conditional Targeted Cell Ablation in Zebrafish: A New Tool for Regeneration Studies,” Developmental Dynamics 236, no. 4 (2007): 1025–1035.

[17]

N. B. Ghyselinck and G. Duester, “Retinoic Acid Signaling Pathways,” Development 146, no. 13 (2019): dev167502.

[18]

H. Draut, T. Liebenstein, and G. Begemann, “New Insights Into the Control of Cell Fate Choices and Differentiation by Retinoic Acid in Cranial, Axial and Caudal Structures,” Biomolecules 9, no. 12 (2019): 860.

[19]

M. Zenkel, U. Hoja, A. Gießl, et al., “Dysregulated Retinoic Acid Signaling in the Pathogenesis of Pseudoexfoliation Syndrome,” International Journal of Molecular Sciences 23, no. 11 (2022): 5977.

[20]

A. S. Yadav, L. C. Czuba, J. Zhu, et al., “Sex and Age but Not Body Mass Index (BMI) Predict Serum Retinol Binding Protein 4 (RBP4) and Transthyretin (TTR) Concentrations,” FASEB Journal 39, no. 14 (2025): e70842.

[21]

D. Bellovino, M. Apreda, S. Gragnoli, M. Massimi, and S. Gaetani, “Vitamin A Transport: In Vitro Models for the Study of RBP Secretion,” Molecular Aspects of Medicine 24, no. 6 (2003): 411–420.

[22]

H. Fernandes-Silva, H. Araújo-Silva, J. Correia-Pinto, and R. S. Moura, “Retinoic Acid: A Key Regulator of Lung Development,” Biomolecules 10, no. 1 (2020): 152.

[23]

J. L. Napoli, “Cellular Retinoid Binding-Proteins, CRBP, CRABP, FABP5: Effects on Retinoid Metabolism, Function and Related Diseases,” Pharmacology & Therapeutics 173 (2017): 19–33.

[24]

Y.-K. Kim, L. Wassef, L. Hamberger, et al., “Retinyl Ester Formation by Lecithin: Retinol Acyltransferase Is a Key Regulator of Retinoid Homeostasis in Mouse Embryogenesis,” Journal of Biological Chemistry 283, no. 9 (2008): 5611–5621.

[25]

J. L. Napoli, “Physiological Insights Into All-Trans-Retinoic Acid Biosynthesis,” Biochimica et Biophysica Acta 1821, no. 1 (2012): 152–167.

[26]

N. Y. Kedishvili, “Retinoic Acid Synthesis and Degradation,” Sub-Cellular Biochemistry 81 (2016): 127–161.

[27]

C. I. Kim, M. A. Leo, and C. S. Lieber, “Retinol Forms Retinoic Acid via Retinal,” Archives of Biochemistry and Biophysics 294, no. 2 (1992): 388–393.

[28]

G. Duester, “Retinoic Acid Synthesis and Signaling During Early Organogenesis,” Cell 134, no. 6 (2008): 921–931.

[29]

K. Niederreither and P. Dollé, “Retinoic Acid in Development: Towards an Integrated View,” Nature Reviews. Genetics 9, no. 7 (2008): 541–553.

[30]

D. E. Ong, “Cellular Transport and Metabolism of Vitamin A: Roles of the Cellular Retinoid-Binding Proteins,” Nutrition Reviews 52, no. 2 Pt 2 (1994): S24–S31.

[31]

H. Escriva, S. Bertrand, P. Germain, et al., “Neofunctionalization in Vertebrates: The Example of Retinoic Acid Receptors,” PLoS Genetics 2, no. 7 (2006): e102.

[32]

E. Samarut, C. Gaudin, S. Hughes, et al., “Retinoic Acid Receptor Subtype-Specific Transcriptotypes in the Early Zebrafish Embryo,” Molecular Endocrinology 28, no. 2 (2014): 260–272.

[33]

X. Liu, X. Huang, Z. Xu, and D. Yang, “Retinoic Acid Signal Pathway Regulation of Zebra Fish Tooth Development Through Manipulation of the Differentiation of Neural Crest,” Hua Xi Kou Qiang Yi Xue Za Zhi 34, no. 2 (2016): 115–120.

[34]

W. R. Jackman and Y. Gibert, “Retinoic Acid Signaling and the Zebrafish Dentition During Development and Evolution,” Sub-Cellular Biochemistry 95 (2020): 175–196.

[35]

Y. Gibert, L. Bernard, M. Debiais-Thibaud, et al., “Formation of Oral and Pharyngeal Dentition in Teleosts Depends on Differential Recruitment of Retinoic Acid Signaling,” FASEB Journal 24, no. 9 (2010): 3298–3309.

[36]

Y. Gibert, E. Samarut, E. Pasco-Viel, et al., “Altered Retinoic Acid Signalling Underpins Dentition Evolution,” Proceedings of the Biological Sciences 282, no. 1802 (2015): 20142764.

[37]

P. Seritrakul, E. Samarut, T. T. S. Lama, Y. Gibert, V. Laudet, and W. R. Jackman, “Retinoic Acid Expands the Evolutionarily Reduced Dentition of Zebrafish,” FASEB Journal 26, no. 12 (2012): 5014–5024.

[38]

W. R. Jackman, L. S. Miranda Portillo, C. K. Cox, A. Ambrosio, and Y. Gibert, “Blocking Endogenous Retinoic Acid Degradation Induces Oral Tooth Formation in Zebrafish,” Proceedings of the National Academy of Sciences of the United States of America 121, no. 11 (2024): e2321162121.

[39]

J. T. Rosa, P. E. Witten, and A. Huysseune, “Cells at the Edge: The Dentin-Bone Interface in Zebrafish Teeth,” Frontiers in Physiology 12 (2021): 723210.

[40]

M. Stoddard, C. Huang, B. Enyedi, and P. Niethammer, “Live Imaging of Leukocyte Recruitment in a Zebrafish Model of Chemical Liver Injury,” Scientific Reports 9, no. 1 (2019): 28.

[41]

Y.-C. Chen, D. Saito, T. Suzuki, and T. Takemoto, “An Inducible Germ Cell Ablation Chicken Model for High-Grade Germline Chimeras,” Development 150, no. 18 (2023): dev202079.

[42]

Z. Xu, X. Liu, X. Huang, and D. Yang, “Expression of Connexin 43 Gene During Early Dental Development in Zebra Fish,” Hua Xi Kou Qiang Yi Xue Za Zhi 33, no. 4 (2015): 347–351.

[43]

C.-Y. Zhou, X.-D. Zheng, and D.-Q. Yang, “Knockout fth1b Affects Early Mineralization of Zebrafish Pharyngeal Teeth,” Hua Xi Kou Qiang Yi Xue Za Zhi 39, no. 1 (2021): 32–37.

[44]

K. Kawasaki, J. N. Keating, M. Nakatomi, et al., “Coevolution of Enamel, Ganoin, Enameloid, and Their Matrix SCPP Genes in Osteichthyans,” iScience 24, no. 1 (2021): 102023.

[45]

A. R. Topletz, S. Tripathy, R. S. Foti, J. A. Shimshoni, W. L. Nelson, and N. Isoherranen, “Induction of CYP26A1 by Metabolites of Retinoic Acid: Evidence That CYP26A1 Is an Important Enzyme in the Elimination of Active Retinoids,” Molecular Pharmacology 87, no. 3 (2015): 430–441.

[46]

M. Badonyi and J. A. Marsh, “Buffering of Genetic Dominance by Allele-Specific Protein Complex Assembly,” Science Advances 9, no. 22 (2023): eadf9845.

[47]

I. Herskowitz, “Functional Inactivation of Genes by Dominant Negative Mutations,” Nature 329, no. 6136 (1987): 219–222.

[48]

Y. Zhong, W. Huang, J. Du, Z. Wang, J. He, and L. Luo, “Improved Tol2-Mediated Enhancer Trap Identifies Weakly Expressed Genes During Liver and β Cell Development and Regeneration in Zebrafish,” Journal of Biological Chemistry 294, no. 3 (2019): 932–940.

[49]

W. Shoji and M. Sato-Maeda, “Application of Heat Shock Promoter in Transgenic Zebrafish,” Development, Growth & Differentiation 50, no. 6 (2008): 401–406.

[50]

M. Luo, K. S. Gates, M. T. Henzl, and J. J. Tanner, “Diethylaminobenzaldehyde Is a Covalent, Irreversible Inactivator of ALDH7A1,” ACS Chemical Biology 10, no. 3 (2015): 693–697.

[51]

J. Song, B. Kim, J. Na, J. J. Ryu, H. C. Park, and J. S. Shim, “Axin2 Deficiency Causes Hypomineralization and Delayed Tooth Development,” Journal of Dental Research 104, no. 13 (2025): 1537–1546.

[52]

L. Pang, Z. Zhang, Y. Shen, et al., “Mutant dlx3b Disturbs Normal Tooth Mineralization and Bone Formation in Zebrafish,” PeerJ 8 (2020): e8515.

[53]

C. A. VanBuren and H. B. Everts, “Vitamin A in Skin and Hair: An Update,” Nutrients 14, no. 14 (2022): 2952.

[54]

W. Lin, X. Jia, X. Shi, et al., “Reactivation of Mammalian Regeneration by Turning on an Evolutionarily Disabled Genetic Switch,” Science 388, no. 6754 (2025): eadp0176.

[55]

M. Maden and M. Hind, “Retinoic Acid in Alveolar Development, Maintenance and Regeneration,” Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 359, no. 1445 (2004): 799–808.

[56]

V. De La Rosa-Reyes, M. V. Duprey-Díaz, J. M. Blagburn, and R. E. Blanco, “Retinoic Acid Treatment Recruits Macrophages and Increases Axonal Regeneration After Optic Nerve Injury in the Frog Rana pipiens,” PLoS One 16, no. 11 (2021): e0255196.

[57]

S. R. Scadding and M. Maden, “Comparison of the Effects of Vitamin A on Limb Development and Regeneration in the Axolotl, Ambystoma mexicanum,” Journal of Embryology and Experimental Morphology 91 (1986): 19–34.

[58]

S. R. Scadding and M. Maden, “The Effects of Local Application of Retinoic Acid on Limb Development and Regeneration in Tadpoles of Xenopus laevis,” Journal of Embryology and Experimental Morphology 91 (1986): 55–63.

[59]

L. Chen and J. S. Khillan, “A Novel Signaling by Vitamin A/Retinol Promotes Self Renewal of Mouse Embryonic Stem Cells by Activating PI3K/Akt Signaling Pathway via Insulin-Like Growth Factor-1 Receptor,” Stem Cells 28, no. 1 (2010): 57–63.

[60]

O. Sawada, L. Perusek, H. Kohno, et al., “All-Trans-Retinal Induces Bax Activation via DNA Damage to Mediate Retinal Cell Apoptosis,” Experimental Eye Research 123 (2014): 27–36.

[61]

M. Schubert and P. Germain, “Retinoic Acid and Retinoid X Receptors,” Cells 12, no. 6 (2023): 864.

[62]

S. Morkmued, V. Laugel-Haushalter, E. Mathieu, et al., “Retinoic Acid Excess Impairs Amelogenesis Inducing Enamel Defects,” Frontiers in Physiology 7 (2017): 673.

[63]

J. T. Punyasingh, S. Hoffman, S. S. Harris, and J. M. Navia, “Effects of Vitamin A Deficiency on Rat Incisor Formation,” Journal of Oral Pathology 13, no. 1 (1984): 40–51.

[64]

H. Kalter, “The Teratogenic Effects of Hypervitaminosis A Upon the Face and Mouth of Inbred Mice,” Annals of the New York Academy of Sciences 85 (1960): 42–55.

[65]

J.-H. Lee and S.-J. Seo, “Biomedical Application of Dental Tissue-Derived Induced Pluripotent Stem Cells,” Stem Cells International 2016 (2016): 9762465.

[66]

G.-H. Kim, J. Yang, D.-H. Jeon, et al., “Differentiation and Establishment of Dental Epithelial-Like Stem Cells Derived From Human ESCs and iPSCs,” International Journal of Molecular Sciences 21, no. 12 (2020): 4384.

[67]

C. Takahashi, H. Yoshida, A. Komine, K. Nakao, T. Tsuji, and Y. Tomooka, “Newly Established Cell Lines From Mouse Oral Epithelium Regenerate Teeth When Combined With Dental Mesenchyme,” In Vitro Cellular & Developmental Biology 46, no. 5 (2009): 457–468.

[68]

E.-J. Kim, H. N. Mai, D.-J. Lee, K.-H. Kim, S.-J. Lee, and H.-S. Jung, “Strategies for Differentiation of hiPSCs Into Dental Epithelial Cell Lineage,” Cell and Tissue Research 386, no. 2 (2021): 415–421.

[69]

S. Chen, Y. Zhao, H. Chu, et al., “Regenerative Teeth Induced by In Vitro Mesenchymal Cells in Mice via Repressing BMP4 and Activating Retinoic Acid/Osteopontin,” Cell Regeneration 14, no. 1 (2025): 51.

[70]

H. Liu, Y. Yue, Z. Xu, et al., “mTORC1 Signaling Pathway Regulates Tooth Repair,” International Journal of Oral Science 15, no. 1 (2023): 14.

[71]

J. D. Ashwell, “When Complex Worlds Collide: Retinoic Acid and Apoptosis,” Cell Death and Differentiation 5, no. 1 (1998): 1–3.

[72]

N. Noy, “Between Death and Survival: Retinoic Acid in Regulation of Apoptosis,” Annual Review of Nutrition 30 (2010): 201–217.

[73]

V. Dhokia and S. Macip, “A Master of All Trades – Linking Retinoids to Different Signalling Pathways Through the Multi-Purpose Receptor STRA6,” Cell Death Discov 7, no. 1 (2021): 358.

[74]

K. Hayashi, H. Yokozaki, K. Naka, W. Yasui, R. Lotan, and E. Tahara, “Overexpression of Retinoic Acid Receptor Beta Induces Growth Arrest and Apoptosis in Oral Cancer Cell Lines,” Japanese Journal of Cancer Research 92, no. 1 (2001): 42–50.

[75]

M. G. Haggagy, L. A. Ahmed, M. Sharaky, M. M. Elhefnawi, and M. M. Omran, “SIRT1 as a Potential Key Regulator for Mediating Apoptosis in Oropharyngeal Cancer Using Cyclophosphamide and All-Trans Retinoic Acid,” Scientific Reports 14, no. 1 (2024): 41.

[76]

T.-Y. Huang, S.-F. Peng, Y.-P. Huang, et al., “Combinational Treatment of All-Trans Retinoic Acid (ATRA) and Bisdemethoxycurcumin (BDMC)-Induced Apoptosis in Liver Cancer Hep3B Cells,” Journal of Food Biochemistry 44, no. 2 (2019): e13122.

[77]

P. Müller, R. Doliva, M. Busch, C. Philippeit, H. Stephan, and N. Dünker, “Additive Effects of Retinoic Acid (RA) and Bone Morphogenetic Protein 4 (BMP-4) Apoptosis Signaling in Retinoblastoma Cell Lines,” PLoS One 10, no. 7 (2015): e0131467.

[78]

J. Wu, C. Zheng, X. Wan, et al., “Retinoic Acid Alleviates Cisplatin-Induced Acute Kidney Injury Through Activation of Autophagy,” Frontiers in Pharmacology 11 (2020): 987.

[79]

N. Blum and G. Begemann, “Retinoic Acid Signaling Controls the Formation, Proliferation and Survival of the Blastema During Adult Zebrafish Fin Regeneration,” Development 139, no. 1 (2011): 107–116.

[80]

V. Besnard, E. Nabeyrat, A. Henrion-Caude, et al., “Protective Role of Retinoic Acid From Antiproliferative Action of TNF-Alpha on Lung Epithelial Cells,” American Journal of Physiology. Lung Cellular and Molecular Physiology 282, no. 4 (2002): L863–L871.

[81]

O. Sorg, C. Tran, P. Carraux, et al., “Spectral Properties of Topical Retinoids Prevent DNA Damage and Apoptosis After Acute UV-B Exposure in Hairless Mice,” Photochemistry and Photobiology 81, no. 4 (2005): 830–836.

[82]

E. Vorotnikova, M. Tries, and S. Braunhut, “Retinoids and TIMP1 Prevent Radiation-Induced Apoptosis of Capillary Endothelial Cells,” Radiation Research 161, no. 2 (2004): 174–184.

Rights & permissions

2026 The Author(s). Cell Proliferation published by Beijing Institute for Stem Cell and Regenerative Medicine and John Wiley & Sons Ltd.

PDF (14273KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/

〈 〉