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PMID: 3783502 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion. I. Output connections of Tr1 and Tr2.

Journal of comparative physiology. A, Sensory, neural, and behavioral physiology ·Vol. 159 ·No. 4 ·1986-10-00 ·Pages 489-502

Brodfuehrer PD, Friesen WO

Abstract

The aim of this study was to identify neurons in the subesophageal ganglion of the medicinal leech which initiate swimming activity and to determine their output connections. We found two bilaterally symmetrical pairs of interneurons, Tr1 and Tr2, located in the first division of the subesophageal ganglion which initiate swimming activity in the isolated nervous system when depolarized with brief (1-3 s) current pulses. Tr1 and Tr2 are considered trigger neurons because elicited swimming episodes outlast the stimulus duration, and because the length of elicited swim episodes is nearly independent of the intensity with which Tr1 and Tr2 are stimulated. Tr1 and Tr2 have similar morphologies. The neurites of both cells cross contralaterally in the subesophageal ganglion, project posteriorly, and exit the subesophageal ganglion in the contralateral connective. The axons of Tr1 and Tr2 extend as far posterior as segmental ganglion 18 of the ventral nerve cord. Tr1 provides direct excitatory drive to three groups of segmental neurons which are capable of initiating swimming: swim-initiating interneurons (cells 204 and 205), serotonin-containing interneurons (cells 61 and 21), and the serotonergic Retzius cells. In addition, all Retzius cells in the subesophageal ganglion are excited directly by Tr1. These three groups of neurons are excited even if Tr1 stimulation is subthreshold for swim initiation. In contrast to Tr1, Tr2 stimulation evokes transient inhibition in swim-initiating and serotonin-containing interneurons, and has little immediate effect on Retzius cells. In addition, Tr2 indirectly inhibits several oscillator neurons, including cells 208, 33, and 60. When Tr1 is stimulated during a swimming episode the swim period decreases for several cycles, while stimulation of Tr2 during swimming episodes reliably resets the ongoing swimming rhythm. Our findings indicate that Tr1 and Tr2 are trigger neurons which initiate swimming activity by different pathways. These neurons also have functional interactions with the swim oscillator network since either Tr1 or Tr2 stimulation during swimming can modulate the ongoing swimming rhythm.

MeSH Terms
Animals Ganglia/cytology,physiology Interneurons/physiology Leeches/physiology Motor Activity/physiology Motor Neurons/physiology Periodicity Reaction Time/physiology Serotonin/physiology Swimming
Chemicals
Serotonin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Brodfuehrer P D
Friesen W O
References (28)
28 references, click to expand
  1. Neuronal generation of the leech swimming movement.
    Science. 1978 Jun 23;200(4348):1348-57 PMID: 663615
  2. Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion. II. Role of segmental swim-initiating interneurons.
    J Comp Physiol A. 1986 Oct;159(4):503-10 PMID: 3023603
  3. Cooperative mechanisms for the production of rhythmic movements.
    Symp Soc Exp Biol. 1983;37:55-87 PMID: 6679123
  4. A comparison of chemical and electrical synaptic transmission between single sensory cells and a motoneurone in the central nervous system of the leech.
    J Physiol. 1972 Sep;225(3):637-56 PMID: 4342522
  5. Control of feeding motor output by paracerebral neurons in brain of Pleurobranchaea californica.
    J Neurophysiol. 1982 May;47(5):885-908 PMID: 7086474
  6. Rhythmic swimming activity in neurones of the isolated nerve cord of the leech.
    J Exp Biol. 1976 Dec;65(3):643-68 PMID: 1018167
  7. Command neurons for locomotion in Aplysia.
    J Neurophysiol. 1983 May;49(5):1092-117 PMID: 6864240
  8. Motor systems, with specific reference to the control of locomotion.
    Annu Rev Neurosci. 1978;1:61-81 PMID: 386908
  9. Neuronal control of swimming in the medicinal leech. IV. Identification of a network of oscillatory interneurones.
    J Exp Biol. 1978 Aug;75:25-43 PMID: 702043
  10. Neural control of heartbeat in the leech, Hirudo medicinalis.
    Symp Soc Exp Biol. 1983;37:195-221 PMID: 6679113
  11. Criteria for distinguishing between monosynaptic and polysynaptic transmission.
    Brain Res. 1976 Mar 19;105(1):1-20 PMID: 175886
  12. Intersegmental coordination of leech swimming: comparison of in situ and isolated nerve cord activity with body wall movement.
    Brain Res. 1984 May 14;299(2):363-6 PMID: 6733455
  13. Effects of serotonin on the generation of the motor program for swimming by the medicinal leech.
    J Neurosci. 1981 Sep;1(9):936-44 PMID: 7288474
  14. Fluorescent microscopy of the 5HT- and catecholamine-containing cells in the central nervous system of the leech Hirudo medicinalis.
    Comp Biochem Physiol. 1969 Dec 15;31(6):851-62 PMID: 5308458
  15. Segmental specialization of a leech swim-initiating interneuron, cell 2051.
    J Neurosci. 1982 Jul;2(7):972-85 PMID: 7097322
  16. A sensory system initiating swimming activity in the medicinal leech.
    J Exp Biol. 1984 Jan;108:341-55 PMID: 20968107
  17. Intersegmental coordination of the leech swimming rhythm. II. Comparison of long and short chains of ganglia.
    J Neurophysiol. 1985 Dec;54(6):1460-72 PMID: 4087043
  18. Neuronal control of swimming in the medicinal leech. V. Connexions between the oscillatory interneurones and the motor neurones.
    J Exp Biol. 1978 Aug;75:45-63 PMID: 702044
  19. A multisomatic axon in the central nervous system of the leech.
    J Comp Neurol. 1975 Jan 1;159(1):1-13 PMID: 162801
  20. Mechanisms of pattern generation underlying swimming in Tritonia. IV. Gating of central pattern generator.
    J Neurophysiol. 1985 Feb;53(2):466-80 PMID: 2984350
  21. Vital staining of specific monoamine-containing cells in the leech nervous system.
    Cell Tissue Res. 1974;153(1):55-61 PMID: 4140759
  22. Command interneurons controlling swimmeret movements in the lobster. I. Types of effects on motoneurons.
    J Neurophysiol. 1972 Jan;35(1):1-12 PMID: 5008721
  23. Control of leech swimming activity by the cephalic ganglia.
    J Neurobiol. 1986 Nov;17(6):697-705 PMID: 3794692
  24. Functional connections between cells as revealed by dye-coupling with a highly fluorescent naphthalimide tracer.
    Cell. 1978 Jul;14(3):741-59 PMID: 688392
  25. Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion. III. Sensory inputs to Tr1 and Tr2.
    J Comp Physiol A. 1986 Oct;159(4):511-9 PMID: 3023604
  26. Role of central interneurons in habituation of swimming activity in the medicinal leech.
    J Neurophysiol. 1986 May;55(5):977-94 PMID: 3711976
  27. The shapes of sensory and motor neurones and the distribution of their synapses in ganglia of the leech: a study using intracellular injection of horseradish peroxidase.
    Proc R Soc Lond B Biol Sci. 1976 Nov 12;194(1117):481-99 PMID: 12513
  28. The dual role of serotonin in leech swimming.
    J Physiol (Paris). 1982-1983;78(8):743-7 PMID: 7187448
Article Info
Journal
Journal of comparative physiology. A, Sensory, neural, and behavioral physiology
Abbr.
J Comp Physiol A
Published
1986-10-00
Pages
489-502
Language
English
Region
Germany
NLM ID
8413199
Subset
IM
Grants
NINDS NIH HHS · NS-21778 · United States
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