Skip to main content
Log in

Tooth pulp tissue promotes neurite outgrowth from rat trigeminal ganglia in vitro

  • Published:
Journal of Neurocytology

Abstract

The mammalian tooth pulp becomes innervated by nociceptive and sympathetic axons relatively late during development, when part of the root has formed. In the adult, regenerating axons from an injured tooth nerve or sprouting axons from uninjured nerves in the vicinity rapidly reinnervate denervated tooth pulps. These observations indicate that tooth pulp tissue can use molecular factors to attract pulpal axons from local nerve trunks. The present study examines the hypothesis that these factors include nerve growth factor (NGF), brain derived neurotrophic factor (BDNF) and glial cell line derived neurotrophic factor (GDNF). Explants of trigeminal ganglia from neonatal rat pups showed a distinct neurite outgrowth when co-cultured with pulpal explants collected from molar teeth of 12-day old pups, or after application of a pulpal extract. Control cultures, containing single ganglionic explants, or explants co-cultured with heat-treated pulpal tissue, exhibited a sparse neurite outgrowth. Exogenous NGF and/or GDNF, but not exogenous BDNF, stimulated neurite outgrowth from ganglionic explants. Unexpectedly, application of antibodies against NGF, BDNF and/or GDNF to co-cultures of ganglionic and pulpal explants did not inhibit neuritogenesis. Control experiments showed that IgG molecules readily penetrate the gel used for culture and that even very high concentrations of NGF and GDNF antibodies in combination failed to block neurite growth. On the basis of these data we suggest that other as yet unknown neurite-promoting factors might be present and active in TG/pulpal co-cultures.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Institutional subscriptions

Similar content being viewed by others

References

  • Buchman, V. L. & Davies, A. M. (1993) Different neurotrophins are expressed and act in a developmental sequence to promote the survival of embryonic sensory neurons. Development 118, 989–1001.

    Google Scholar 

  • Byers, M. R., Wheeler, E. F. & Bothwell, M. (1992) Altered expression of NGF and P75 NGF-receptor by fibroblasts of injured teeth precedes sensory nerve sprouting. Growth Factors 6, 41–52.

    Google Scholar 

  • Byers, M. R., Oõneill, P. C., Nishimura, M. C., Phillips, H. S. & Albers, K. M. (1997) Dependence of dental innervation on NGF: comparison of hetero-and homozygous mice lackingNGFwith K14NGFtransgenic or hybrid rescued TKO mice. Society for Neuroscience Abstracts 23, 1704.

    Google Scholar 

  • Ebendal, T. & Jacobson, C. O. (1977) Tissue explants affecting extension and orientation of axons in cultured chick embryo ganglia. Experimental Cell Research 105, 379–387.

    Google Scholar 

  • Ebendal, T., Jordell-kylberg, A. & S¬oderstr¬om, S. (1978) Stimulation by tissue explants on nerve fibre outgrowth in culture. Zoon 6, 235–243.

    Google Scholar 

  • Ebendal, T. E. (1989) Use of collagen gels to bioassay nerve growth factor activity in Nerve growth factors. IBRO Handbook series: methods in the neurosciences, Vol 12 (edited by Rush, R.A.), pp. 81–93. Chichester: John Wiley & Sons.

    Google Scholar 

  • Elsdale, T. & Bard, J. (1972) Collagen substrata for studies on cell behavior. Journal of Cell Biology 54, 626–637.

    Google Scholar 

  • Eriksson, C., Johansson, C. S., Lillesaar, C., Fried, K. & Hildebrand, C. (1998) Neuritogenic influence of tooth pulp tissue on rat trigeminal ganglia in vitro. European Journal of Neuroscience 10 (Suppl. 10), 278.

    Google Scholar 

  • Fried, K. & Erd ´e lyi, G. (1982) Inferior alveolar nerve regeneration and incisor pulpal reinnervation following intramandibular neurotomy in the cat. Brain Research 244, 259–268.

    Google Scholar 

  • Fried, K. & Hildebrand, C. (1981a) Developmental growth and degeneration of pulpal axons in feline primaryincisors. Journal of Comparative Neurology 203, 37–51.

    Google Scholar 

  • Fried, K. & Hildebrand, C. (1981b) Pulpal axons in developing, mature, and aging feline permanent incisors. A study by electron microscopy. Journal of Comparative Neurology 203, 23–36.

    Google Scholar 

  • Fried, K. & Hildebrand, C. (1982) Qualitative structural development of the feline inferior alveolar nerve. Journal of Anatomy 134, 517–531.

    Google Scholar 

  • Hebel, R & Stromberg, M. W. (1986) Anatomy and Embryology of the Laboratory Rat, pp. 16-17. W¬orthsee: BioMed Verlag.

    Google Scholar 

  • Hildebrand, C., Fried, K., Tuisku, F. & Johansson, C. S. (1995) Teeth and tooth nerves. Progress in Neurobiology 45, 165–222.

    Google Scholar 

  • Holland, G. R. & Robinson, P. P. (1987) A morphological study of the collateral reinnervation of the catÕs canine tooth. Experimental Neurology 98, 489–498.

    Google Scholar 

  • Iba ñ ez, C. F., Ernfors, P., Timmusk, T., Ip, N. Y., Arenas, E., Yancopoulos, G. D. & Persson, H. (1993) Neurotrophin-4 is a target-derived neurotrophic factor for neurons of the trigeminal ganglion. Development 117, 1345–1353.

    Google Scholar 

  • Kotzbauer, P. T., Lampe, P.A., Heuckeroth, R. O., Golden, J. P., Creedon, D. J., Johnson JR, E., M. & Milbrandt, J. (1996) Neurturin, a relative of glial-cell-line-derived neurotrophic factor. Nature 384, 467–470.

    Google Scholar 

  • Lefebvre, P. P, Leprince, P., Weber, T., Rigo, J.-M., Delree, P. & Moonen, G. (1990) Neuronotrophic effect of developing otic vesicle on cochleo-vestibular neurons: evidence for nerve growth factor involvment. Brain Research 507, 254–260.

    Google Scholar 

  • Lin, L.-F., Doherty, D. H., Lile, J., Bektesh, S. & Collins, F. (1993) GDNF: a glial cell line-derived neurotrophic factor for midbrain dopaminergic neurones. Science 260, 1130–1132.

    Google Scholar 

  • Lumsden, A. G. S. & Davies A. M. (1983) Earliest sensory nerve fibres are guided to peripheral targets by attractants other than nerve growth factor. Nature 306, 786–788.

    Google Scholar 

  • Luukko, K., Moshnyakov, M., Sainio, K., Saarma, M., Sariola, H. & Thesleff, I. (1996) Expression of neurotrophin receptors during rat tooth development is developmentally regulated, independent of innervation, and suggests functions in the regulation of morphogenesis and innervation. Developmental Dynamics 206, 87–99.

    Google Scholar 

  • Luukko, K., Arum ¬a e, U., Karavanov, A., Moshnyakov, M., Sainio, K., Sariola, H., Saarma, M. & Thesleff, I. (1997a) Neurotrophin mRNA expression in the developing tooth suggests multiple roles in innervation and organogenesis. Developmental Dynamics 210, 117–129.

    Google Scholar 

  • Luukko, K., Suvanto, P., Saarma, M. & Thesleff, I. (1997b) Expression of GDNF and its receptors in developing tooth is developmentally regulated and suggests multiple roles in innervation and organogenesis. Developmental Dynamics 210, 463–471.

    Google Scholar 

  • Luukko, K., Saarma, M. & Thesleff, I. (1998) Neurturin mRNA expression suggests roles in trigeminal innervation of the first branchial arch and in tooth formation. Developmental Dynamics 213, 207–219.

    Google Scholar 

  • Mc mahon, S. B., Armanini, M. P., Ling, L. H. & Phillips, H. S. (1994) Expression and coexpression of Trk receptors in subpopulations of adult primary sensory neurons projecting to identified peripheral targets. Neuron 12, 1161–1171.

    Google Scholar 

  • Mitsiadis, T. A., Dicou, E., Joffre, A. & Magloire, H. (1992) Immunohistochemical localization of nerve growth factor (NGF) and NGF receptor (NGF-R) in the developing first molar tooth of the rat. Differentiation 49, 47–61.

    Google Scholar 

  • Mohamed, S. S. & Atkinson, M. E. (1983) A histological study of the innervation of developing mouse teeth. Journal of Anatomy 136, 735–749.

    Google Scholar 

  • Naftel, J. P. (1987) Sympathetic neuronotrophic activity in the pulp of the cat canine tooth. Archives of Oral Biology 32, 897–905.

    Google Scholar 

  • Naftel, J. P., Shamssoolari, A. & Thueson, R. K. (1992) Immunoassay evidence for a role of nerve growth factor in development of dental innervation. Proceedings of the Finnish Dental Society 88(Suppl. 7), 543–549.

    Google Scholar 

  • Nosrat, C. A., Tomac, A., Lindqvist, E., Lindskog, S., Humpel, C., Str ¬o mberg, I., Ebendal, T., Hoffer, B.J. & Olson, L. (1996) Cellular expression of GDNF mRNA suggests multiple functions inside and outside the nervous system. Cell and Tissue Research 286, 191–207.

    Google Scholar 

  • Nosrat, C. A., Fried, K., Lindskog, S. & Olson, L. (1997) Cellular expression of neurotrophin mRNAs during tooth development. Cell and Tissue Research 290, 569–580.

    Google Scholar 

  • Nosrat, C. A., Fried, K., Ebendal, T. & Olson, L. (1998) NGF, BDNF, NT3, NT4 and GDNF in tooth development. European Journal of Oral Science 106(Suppl. 7), 94–99.

    Google Scholar 

  • Robinson, P. P. (1981) Reinnervation of teeth, mucous membrane and skin following section of the inferior alveolar nerve in the cat. Brain Research 220, 241–253.

    Google Scholar 

  • Takemura, M., Sugimoto, T., Wakisaka, S. & Akai, M. (1990) Reinnervation of rat molar tooth pulp following transection of the inferior alveolar nerve. Neuroscience Letters 108, 65–70.

    Google Scholar 

  • TessieR-lavigne, M. & Placzek, M. (1991) Target attraction: are developing axons guided by chemotrophism? Trends in Neurosciences 14, 303–309.

    Google Scholar 

  • Tuisku, F. & Hildebrand, C. (1994) Evidence for a neural influence on tooth germ generation in a polyphyodont speciesq. Developmental Biology 165, 1–9.

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Lillesaar, C., Eriksson, C., Johansson, C.S. et al. Tooth pulp tissue promotes neurite outgrowth from rat trigeminal ganglia in vitro. J Neurocytol 28, 663–670 (1999). https://doi.org/10.1023/A:1007008815621

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1023/A:1007008815621

Keywords

Navigation