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Fluorescence marking of neuropile glial cells in the central nervous system of the leech Hirudo medicinalis

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Summary

Neuropile glial (NG) cells in the central nervous system of the medicinal leech, Hirudo medicinalis L., were studied by histological and intracellular electrophysiological methods. Potential profiles of single leech ganglia were mapped by advancing an electrolyte-filled microelectrode into the ganglion as far as the NG cell. A small negative potential usually appeared during or immediately after penetration of the ganglion sheath. Most of the ganglia in the chain (ganglia 1–4 and 7–21) have Retzius-cell-bodies of normal size; in these, the potential associated with the ganglion sheath was followed by a jump to a more negative potential. Superimposed action potentials were associated with entry of the electrode into a Retzius cell. When the electrode tip passed out of the cell into the center of the ganglion, another potential change was observed, namely that to the membrane potential of the anterior NG cell. This membrane potential averaged -60.2 mV and ranged from -50 to -73 mV. In ganglia 5 and 6 the Retzius-cell-bodies are particularly small, and no changes of potential associated with these cells were observed; the first potential to appear after the electrode passed through the sheath of the ganglion was the membrane potential of the NG cell. Potential profiles like those of ganglia 5 and 6 are recorded in the posterior parts of all ganglia.

Potential profiles of single leech ganglia were also recorded with microelectrodes filled with the fluorescent dye Procion Yellow M4-RAN. When the presumed membrane potential of an NG cell appeared, the dye was injected into the ganglion. Subsequent histological examination with the fluorescence microscope revealed that all of the dye was contained in NG cells.

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References

  • Altman JS, Bell EM (1973) A rapid method for the demonstration of nerve cell bodies in invertebrate central nervous systems. Brain Res 63:487–489

    Google Scholar 

  • Baylor DA, Nicholls JG (1969) Changes in extracellular potassium concentration produced by neuronal activity in the central nervous system of the leech. J Physiol Lond 203:555–569

    Google Scholar 

  • Coggeshall RE, Fawcett DW (1964) The fine structure of the central nervous system of the leech, Hirudo medicinalis. J Neurophysiol 27:229–289

    Google Scholar 

  • Fernandez J (1978) Structure of the leech nerve cord: distribution of neurons and organization of fiber pathways. J Comp Neurol 180:165–192

    Google Scholar 

  • Gray EG, Guillery RW (1963) An electronmicroscopical study of the ventral nerve cord of the leech. Z Zellforsch 60:826–849

    Google Scholar 

  • Ito T (1942) Zur Zytologie der Gliazellen in der Bauchganglionkette des japanischen medizinischen Blutegels, Hirudo medicinalis. Okajima Folia Anat Jpn 14:389–411

    Google Scholar 

  • Kuffler SW (1967) Neuroglial cells: physiological properties and a potassium mediated effect of neuronal activity on the glial membrane potential. Proc R Soc B 168:1–21

    Google Scholar 

  • Kuffler SW, Nicholls JG (1966) The physiology of neuroglial cells. Ergebn Physiol 57:1–90

    Google Scholar 

  • Miller JA (1945) Studies in the biology of the leech IX. Ohio J Sci 45:233–246

    Google Scholar 

  • Nicholls JG, Baylor DA (1968) Specific modalities and receptive fields of sensory neurons in CNS of the leech. J Neurophysiol 31:740–756

    CAS  PubMed  Google Scholar 

  • Purves D, McMahan UJ (1972) The distribution of synapses on a physiologically identified motor neuron in the central nervous system of the leech. J Cell Biol 55:205–220

    Google Scholar 

  • Richardson KC, Jarett EH, Finke EH (1960) Embedding in epoxy resins for ultrathin sectioning in electron microscopy. Stain Technol 35:313–323

    CAS  PubMed  Google Scholar 

  • Schlue WR (1976) Current excitation threshold in sensory neurons of leech central nervous system. J Neurophysiol 39:1176–1183

    Google Scholar 

  • Scriban IA, Autrum HJ (1936) Hirudinea. In: Kükenthal W, Krumbach T (eds) Handbuch der Zoologie. 2 (8): 119–352

  • Selverston AI, Kennedy D (1969) Structure and function of identified nerve cells in the crayfish. Endeavour 28:107–113

    Google Scholar 

  • Somjen G (1975) Electrophysiology of neuroglia. Ann Rev Physiol 37:163–190

    Google Scholar 

Download references

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Supported by a Fellowship (Heisenberg-Stipendium, Schl 169/5) and grants (Schl 169/2, 4) to W.R.S. from the Deutsche Forschungsgemeinschaft

The authors thank Gisela Geiger for excellent assistance during this work

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Schlue, W.R., Schliep, A. & Walz, W. Fluorescence marking of neuropile glial cells in the central nervous system of the leech Hirudo medicinalis . Cell Tissue Res. 209, 257–269 (1980). https://doi.org/10.1007/BF00237630

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