Skip to main content
Log in

Immunocytochemical demonstration of peptidergic neurons in the central and peripheral nervous systems of the flatworm Microstomum lineare with antiserum to FMRF-amide

  • Published:
Cell and Tissue Research Aims and scope Submit manuscript

Summary

The central nervous system (CNS) and the peripheral nervous system (PNS) of the flatworm Microstomum lineare were studied by means of the peroxidase-antiperoxidase (PAP) immunocytochemical method, with the use of antisera to the molluscan cardioactive peptide FMRF-amide. FMRF-amide immunoreactive perikarya and nerve fibres are observed in the CNS and the PNS. In the CNS, immunoreactive perikarya and nerve fibres occur in the brain, in the epithelial lining and the mesenchymal surroundings of the ciliated pits, and positive fibres in the longitudinal nerve cords. In the PNS, immunoreactive fibre bundles with variocosities occur in the pharyngeal nerve ring, in symmetrical groups of perikarya on each side of the pharynx, and in the mouth area. Positive perikarya and meandering nerve fibres appear in the intestinal wall. A few immunoreactive cells and short nerve processes are observed at the male copulatory organ and on both sides of the vagina. Some immunoreactive peptidergic cells do not correspond to cells previously identified by histological techniques for neurosecretory cells. The distribution of immunoreactivity suggests that the FMRF-amide-like substance in CNS and PNS in this worm has roles similar to those of the brain-gut peptides in vertebrates. The status of FMRF-amide-like peptides as representatives of an evolutionarily old family of peptides is confirmed by the positive immunoreaction to anti-FMRF-amide in this primitive microturbellarian.

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.

Similar content being viewed by others

References

  • Acher R (1981) Evolution of neuropeptides. Trends in Neurosci 4:225–229

    Google Scholar 

  • Bautz A, Schilt J, Richoux JP, Dubois MP (1980) Détection immunocytologique, dénombrement et localisation des cellules à somatostatine (SRIF) chez deux espèces de Planaires, Dugesia lugubris et Dendrocoelum lacteum (Turbellariès, Triclades), CR Acad Sci Paris Ser D 291:833–836

    Google Scholar 

  • Boer HH, Schot LPC, Roubos EW, ter Maat A, Loddes JC, Reichelt D (1979) ACTH-like immunoreactivity in two electrotonically coupled giant neurons in the pond snail Lymnaea stagnalis. Cell Tissue Res 202:231–240

    Google Scholar 

  • Boer HH, Schot LPC, Veenstra JA, Reichelt D (1980) Immunocytochemical identification of neural elements in the central nervous system of a snail, some insects a fish and a mammal with an antiserum to the molluscan cardio-exitatory tetrapeptide FMRF-amide. Cell Tissue Res 213:21–27

    Google Scholar 

  • Boer HH, Schot LPC, Reichelt D, Brand H, ter Maat A (1984) Ultrastructural immunocytochemical evidence for peptidergic neurotransmission in the pond snail Lymnaea stagnalis. Cell Tissue Res (submitted)

  • Carraway R, Ruane SE, Kim H-R (1982) Distribution and immunochemical character of neurotensin-like material in representative vertebrates and invertebrates: apparent conservation of the COOH-terminal region during evolution. Peptides 1:115–123

    Google Scholar 

  • Cottrell GA, Schot LP, Dockray GJ (1983) Identification and probably role of a single neurone containing the neuropeptide Helix FMRF amide. Nature 304:638–640

    Google Scholar 

  • Dockray GJ (1977) Molecular evolution of gut hormones: Application of comparative studies on the regulation of digestion. Gastroenterology 72:344–358

    Google Scholar 

  • Dockray GJ, Vaillant C, Williams RG (1981) New evertebrate brain-gut peptide related to a molluscan neuropeptide and opioid peptide. Nature 293:656–657

    Google Scholar 

  • Erlandsen SL, Parsons JA, Rodning CB (1979) Technical parameters of immunostaining of osmicated tissue in epoxy sections. J Histochem Cytochem 27:1286–1289

    Google Scholar 

  • Geraerts WPM, De with ND, Vreugdenhil E, van Hartingsveldt W, Hogenes TM (1984) Studies on the physiological role of a partially purified small cardioactive neuropeptide of Lymnaea stagnalis. J Comp Physiol B 154:29–34

    Google Scholar 

  • Greenberg MJ, Price DA (1983) Invertebrate neuropeptides: native and naturalized. Ann Rev Physiol 45:271–288

    Google Scholar 

  • Grimmelikhuijzen CJP (1983) FMRF-amide immunoreactivity is generally occurring in the nervous system of coelenterates. Histochemistry 78:361–381

    Google Scholar 

  • Grimmelikhuijzen CJP, Sundler F, Rehfeld JF (1980) Gastrin/CCK-like immunoreactivity in the nervous system of coelenterates. Histochemistry 69:61–68

    CAS  PubMed  Google Scholar 

  • Grimmelikhuijzen CJP, Balfe A, Emson PC, Powell D, Sundler F (1981a) Substance P-like immunoreactivity in the nervous system of hydra. Histochemistry 71:325–334

    CAS  PubMed  Google Scholar 

  • Grimmelikhuijzen CJP, Dockray GJ, Yanaihara N (1981b) Bombesin-like immunoreactivity in the nervous system of hydra. Histochemistry 73:171–180

    CAS  PubMed  Google Scholar 

  • Grimmelikhuijzen CJP, Dierickx K, Boer GJ (1982a) Oxytocin/ vasopressin-like immunoreactivity is present in the nervous system of hydra. Neuroscience 7:3191–3199

    Article  CAS  PubMed  Google Scholar 

  • Grimmelikhuijzen CJP, Dockray GJ, Schot LPC (1982b) FMRF amide-like immunoreactivity in the nervous system of hydra. Histochemistry 73:499–508

    CAS  PubMed  Google Scholar 

  • Martin R, Frösch D, Kiehling C, Voigt KH (1981) Molluscan neuropeptide-like and enkephalin-like material coexists in octopus nerves. Neuropeptides 2:141–150

    Google Scholar 

  • Michetti F, Cocchia D (1982) S-100-like immunoreactivity in a planarian. Cell Tissue Res 223:575–582

    Google Scholar 

  • Normann TC (1976) Neurosecretion by exocytosis. Int Rev Cytol 46:1–77

    Google Scholar 

  • Price DA (1982) The FMRFamide-like peptide of Helix aspersa. Comp Biochem Physiol 72C:325–328

    Google Scholar 

  • Price DA, Greenberg MJ (1977) Structure of a molluscan cardioexitatory neuropeptide. Science 197:670–671

    Google Scholar 

  • Reisinger E (1976) Zur Evolution des stomatogastrischen Nervensystems bei den Plathelminthen. Z Zool Syst Evolutionsforsch 14:241–253

    Google Scholar 

  • Reuter M (1981) The nervous system of Microstomum lineare (Turbellaria, Macrostomida). II. The ultrastructure of synapses and neurosecretory release sites. Cell Tissue Res 218:375–387

    Google Scholar 

  • Reuter M, Palmberg I (1983) Asexual reproduction in Microstomum lineare (Turbellaria). II. The nervous system in the division zone. Int J Invert Repr 6:207–217

    Google Scholar 

  • Reuter M, Wikgren M, Palmberg I (1980) The nervous system of Microstomum lineare (Turbellaria, Macrostomida). I. A fluorescence and electron microscopic study. Cell Tissue Res 211:31–40

    Google Scholar 

  • Scharrer B (1978) Current concepts on the evolution of the neurosecretory neuron. In: Bargmann W, Oksche A, Polenov A, Scharrer B (eds) Neurosecretion and neuroendocrine activity. Evolution, structure and function. Proc VIIth International Symposium on Neurosecretion. Leningrad, Aug 15–21, Springer, Berlin Heidelberg

    Google Scholar 

  • Schilt J, Richoux JP, Dubois MP (1981a) Demonstration of peptides immunologically related to vertebrate neurohormones in Dugesia lugubris (Turbellaria, Tricladida). Gen Comp Endocrinol 43:331–335

    Google Scholar 

  • Schilt J, Richoux JP, Dubois MP (1981b) Mise en evidence de peptides immunologiquement apparentes au SRIF, a l'ACTH, aux neurophysines et a l'angiotensine II chez la planaire Dugesia lugubris (Plathelminthes, Turbellaries). J Physiol (Paris) 77:977–978

    Google Scholar 

  • Schot LPC, Boer HH (1982) Immunocytochemical demonstration of peptidergic cells in the pond snail Lymnaea stagnalis with an antiserum to the molluscan cardioactive tetrapeptide FMRF-amide. Cell Tissue Res 225:347–354

    Google Scholar 

  • Schot LPC, Boer HH, Wijdenes J (1983) Localization of neurons inervating the heart of Lymnaea stagnalis studied immunocytochemically with anti-FMRFamide and anti-vasotocin. In: Lever J, Boer HH (eds) Molluscan neuro-endocrinology. Mon Royal Neth Academy of Arts and Sciences, North Holland Publ Comp, Amsterdam, Oxford, New York, pp 203–208

    Google Scholar 

  • Sternberger LA, Hardy PH Jr, Cuculis JJ, Meyer HG (1970) The unlabelled antibody enzyme method of immunochemistry. Preparations and properties of soluble antigen-antibody complex (horseradish peroxidase-antihorseradish peroxidase) and its use in identification of spirochetes. J Histochem Cytochem 18:315–333

    CAS  PubMed  Google Scholar 

  • Swaab DF, Pool CW (1975) Specificity of oxytocin and vasopressin immunofluorescence. J Endocrinol 66:263–272

    Google Scholar 

  • Veenstra JA, Schooneveld H (1984) Immunocytochemical localization of neurons in the nervous system of the Colorado potato beetle with antisera against FMRFamide and bovine pancreatic peptide. Cell Tissue Res 235:303–308

    Google Scholar 

  • Venturini G, Carolei A, Palladini G, Margotta V, Verbo R (1981) Nalaxone enchanches cAMP levels in planaria. Comp Biochem Physiol 69C:105–108

    Google Scholar 

  • Venturini G, Carolei A, Palladini G, Margotta V, Lauro MG (1983) Radioimmunological and immunocytochemical demonstration of Met-enkephalin in planaria. Comp Biochem Physiol C74:23–25

    Google Scholar 

  • Wagner F von (1890) Zur Kenntnis der ungeschlechtlichen Fortpflanzung von Microstoma nebst allgemeinen Bemerkungen über Teilung und Knospung im Tierreich. Zool Jahrb Abt Anat Ontog Tiere 4:349–423

    Google Scholar 

  • Williams MA (1977) Autoradiography and immunocytochemistry. In: Glauer AM (ed) Practical methods in electron microscopy. North Holland Publ Comp, Amsterdam, Oxford, New York, pp 1–76

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Reuter, M., Karhi, T. & Schot, L.P.C. Immunocytochemical demonstration of peptidergic neurons in the central and peripheral nervous systems of the flatworm Microstomum lineare with antiserum to FMRF-amide. Cell Tissue Res. 238, 431–436 (1984). https://doi.org/10.1007/BF00219857

Download citation

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00219857

Key words

Navigation