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PMID: 4202432 Published · ppublish English Journal Article

Activity of magnocellular neuroendocrine cells in the hypothalamus of unanaesthetized monkeys. I. Functional cell types and their anatomical distribution in the supraoptic nucleus and the internuclear zone.

The Journal of physiology ·Vol. 232 ·No. 3 ·1973-08-00 ·Pages 515-43

Hayward JN, Jennings DP

Abstract

1. We recorded with tungsten micro-electrodes the spontaneous and evoked activity of single cells in the supraoptic nucleus (n.s.o.) and internuclear zone (i.n.z.) of trained, unanaesthetized monkeys who accepted experimental restraints and pituitary gland stimulation without anxiety.2. Of the 125 hypothalamic neurones analysed, 109 (87%) we classified as magnocellular neuroendocrine cells on the basis of the anatomical location of the cells, the pattern of spontaneous discharge, the effect of pituitary gland stimulation and the response to arousing sensory stimuli.3. Sixteen (13%) of the cells studied under identical conditions we labelled as non-neuroendocrine cells. Located in the i.n.z. and supraoptic nucleus-optic tract junction (n.s.o.-t.o.), these cells responded to arousing sensory stimuli, showed ;continuously active' (i.n.z.) and ;high-frequency burster' (n.s.o.-t.o.) patterns of discharge and were not driven by pituitary stimuli.4. Thirty-seven (30%) of the magnocellular neuroendocrine cells we describe as ;identified' because with pituitary gland stimulation we evoked antidromic potentials, mean latency 8.1 msec and mean conduction velocity 0.8 m/sec, with collision between orthodromic and antidromic potentials. Antidromic excitation of neuroendocrine cells was followed by inhibition of spontaneous discharge of cells for 80-125 msec suggesting the presence of recurrent collaterals in primate neuroendocrine cells. Seventy-two (57%) of the magnocellular neuroendocrine cells we designated as ;non-identified' because of lack of response, failure of collision or non-tested to pituitary gland stimulation. None of these mangocellular neuroendocrine cells, ;identified' or ;non-identified', responded to non-noxious arousing sensory stimuli.5. We find seventy-nine (63%) magnocellular neuroendocrine cells in the supraoptic nucleus (n.s.o.) and thirty (24%) magnocellular neuroendocrine cells in the internuclear zone (i.n.z.) with three basic patterns of spontaneous activity: ;silent' cells (s., four cells, 3%); ;low-frequency burster' cells (l.f.b., twenty-six cells, 21%); and ;continuously active' cells (c.a., seventy-nine cells, 63%).6. Twenty-six (21%) l.f.b. magnocellular neuroendocrine cells exhibited regular, repetitive, periodic firing patterns with a cycle of 17 sec, involving 5 sec of discharge at 5 spikes/sec and 12 sec of silence. The 26 spikes/burst showed no consistent pattern of serial interspike interval distribution. The burst pattern of discharge was interrupted by intracarotid osmotic stimuli but not by mildly arousing sensory stimuli or sleep-waking behaviour. Mean antidromic latencies of 7.98 msec and the anatomical distributions were the similarities exhibited by the l.f.b. and the c.a. cells.7. We conclude that the three functional types, s., c.a. and l.f.b., of the magnocellular neuroendocrine cells, are randomly distributed in the supraoptic nucleus (n.s.o.) and in the internuclear zone (i.n.z.) with each type receiving ;specific' input connexions. We suggest that these three characteristic firing patterns of magnocellular neuroendocrine cells may be related to the ;cellular' secretion of ;specific' neurohypophysial hormones and neurophysins.

MeSH Terms
Action Potentials Animals Consciousness Electric Stimulation Electrophysiology Evoked Potentials Haplorhini Hypothalamus/cytology Macaca Microelectrodes Neurons/physiology Pituitary Gland/physiology
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Hayward J N
Jennings D P
References (42)
42 references, click to expand
  1. The hormone content of the vertebrate hypothalamo-neurohypophysial system.
    Br Med Bull. 1966 Sep;22(3):227-31 PMID: 5329961
  2. Electrophysiological studies on the hypothalamus.
    Br Med Bull. 1966 Sep;22(3):254-60 PMID: 5329966
  3. Evidence for the synthesis of oxytocin and vasopressin in separate neurons.
    Nature. 1967 Apr 15;214(5085):314-6 PMID: 6034259
  4. Neuronal spike trains and stochastic point processes. I. The single spike train.
    Biophys J. 1967 Jul;7(4):391-418 PMID: 4292791
  5. A technique for recording activity of subcortical neurons in moving animals.
    Electroencephalogr Clin Neurophysiol. 1968 Jan;24(1):83-6 PMID: 4169750
  6. The isolation of the native hormone-binding proteins from bovine pituitary posterior lobes. Crystallization of neurophysin-I and-II as complexes with [8-arginine]-vasopressin.
    Biochem J. 1968 Jan;106(2):557-64 PMID: 5688929
  7. Capping and stabilizing chronic intravascular cannulae.
    J Appl Physiol. 1968 Apr;24(4):577-9 PMID: 5643408
  8. Role of cerebral arterial blood in the regulation of brain temperature in the monkey.
    Am J Physiol. 1968 Aug;215(2):389-403 PMID: 4969787
  9. Spontaneous activity of single neurones in the hypothalamus of rabbits during sleep and waking.
    J Physiol. 1969 Mar;201(1):237-58 PMID: 4304342
  10. The distribution and control of osmosensitive cells within the hypothalamus of the opossum (Didelphis virginiana).
    Neuroendocrinology. 1969;4(1):51-63 PMID: 4889623
  11. A peak amplitude selector for electrophysiological data analysis.
    IEEE Trans Biomed Eng. 1969 Apr;16(2):152-9 PMID: 5804083
  12. Central neuronal response to the activation of osmoreceptors in the osphradium of Aplysia.
    J Exp Biol. 1969 Nov;51(2):347-61 PMID: 5351422
  13. A comparative study of the role of the cerebral arterial blood in the regulation of brain temperature in five mammals.
    Brain Res. 1969 Dec;16(2):417-40 PMID: 4311724
  14. Biosynthesis and release of vasopressin and neurophysin.
    Recent Prog Horm Res. 1969;25:447-91 PMID: 4902949
  15. Identification and distribution of paraventricular units excited by stimulation of the neural lobe of the hypophysis.
    Exp Neurol. 1970 Feb;26(2):316-29 PMID: 5461131
  16. Brain temperature and thermosensitivity of nerve cells in monkey.
    Trans Am Neurol Assoc. 1969;94:157-9 PMID: 4984970
  17. The isolation of three neurophysins from porcine posterior pituitary lobes.
    Biochem J. 1970 Mar;116(5):899-909 PMID: 5441378
  18. Evidence for oxytocin synthesis after electrolytic destruction f the paraventricular nucleus in rats withereditary hypothalamic diabetes insipidus.
    Neuroendocrinology. 1970;6(2):90-7 PMID: 4910834
  19. Activity of single cells in the osmoreceptor-supraoptic nuclear complex in the hypothalamus of the waking rhesus monkey.
    Brain Res. 1970 Sep 29;23(1):105-8 PMID: 4990594
  20. Circhoral oscillations of plasma LH levels in the ovariectomized rhesus monkey.
    Endocrinology. 1970 Nov;87(5):850-3 PMID: 4991672
  21. Phasic discharge of antidromically identified units in the paraventricular nucleus of the hypothalamus.
    Brain Res. 1971 Jan 8;25(1):192-4 PMID: 5541248
  22. Osmosensitive single neurones in the hypothalamus of unanaesthetized monkeys.
    J Physiol. 1970 Nov;210(4):947-72 PMID: 4993518
  23. Morphological identification of Renshaw cells.
    Acta Physiol Scand. 1971 Mar;81(3):428-30 PMID: 4101374
  24. Oxytocin and ADH secretion in relation to electrical activity in antidromically identified supraoptic and paraventricular units.
    J Physiol. 1971 Apr;214(2):245-56 PMID: 5579637
  25. Localization of neurophysin-II in the hypothalamo-neurohypophysial system of the pig by immunofluorescence histochemistry.
    Philos Trans R Soc Lond B Biol Sci. 1971 Jun 17;261(839):371-8 PMID: 4399627
  26. Physiologic investigation of posterior pituitary binding proteins neurophysin I and neurophysin II.
    Metabolism. 1971 Dec;20(12):1148-55 PMID: 5166946
  27. Tentative identification of a vasopressin-neurophysin and an oxytocin-neurophysin in the rat.
    Biochem J. 1971 Oct;124(4):809-13 PMID: 5131737
  28. Antidromic and orthodromic responses of paraventricular and supraoptic neurosecretory cells.
    Brain Res. 1971 Oct 29;33(2):353-66 PMID: 5134925
  29. Recurrent inhibition of antidromically identified rat supraoptic neurones.
    J Physiol. 1972 Jan;220(1):87-103 PMID: 5059239
  30. Studies of antidromically identified neurosecretory cells of the hypothalamus by intracellular and extracellular recordings.
    J Physiol. 1972 Mar;221(3):683-705 PMID: 5016366
  31. Twenty-four hour pattern of luteinizing hormone secretion in normal men with sleep stage recording.
    J Clin Endocrinol Metab. 1972 Jul;35(1):73-81 PMID: 5032517
  32. Inhibition of unit activity in the hypothalamic paraventricular nucleus following antidromic activation.
    Brain Res. 1972 Jul 20;42(2):385-402 PMID: 4340457
  33. Demonstration of neurophysin in the hypothalamo-neurohypophysial system of the normal and dehydrated rat by the use of cross-species reactive anti-neurophysins.
    Z Zellforsch Mikrosk Anat. 1972;131(2):149-70 PMID: 5074132
  34. Osmoreceptors and neurosecretory cells in the supraoptic complex of the unanaesthetized monkey.
    Brain Res. 1972 Oct 13;45(1):278-81 PMID: 4627598
  35. Activity of osmosensitive single cells in the hypothalamus of the behaving monkey during drinking.
    Brain Res. 1972 Sep 29;44(2):371-84 PMID: 4627634
  36. Coherin: a new peptide of the bovine neurohypophysis with activity on gastrointestinal motility.
    Science. 1972 Oct 27;178(4059):419-21 PMID: 5077330
  37. Studies of neurophysin secreting neurons with immunoperoxidase techniques employing antibody to bovine neurophysin. I. Light microscopic findings in monkey and bovine tissues.
    Endocrinology. 1973 Mar;92(3):931-40 PMID: 4121797
  38. Activity of magnocellular neuroendocrine cells in the hypothalamus of unanaesthetized monkeys. II. Osmosensitivity of functional cell types in the supraoptic nucleus and the internuclear zone.
    J Physiol. 1973 Aug;232(3):545-72 PMID: 4202433
  39. Neurosecretory pathways between the hypothalamic paraventricular nucleus and the neurohypophysis.
    J Comp Neurol. 1954 Dec;101(3):543-63 PMID: 13233355
  40. Activity of single neurones in the hypothalamus: effect of osmotic and other stimuli.
    J Physiol. 1959 Oct;148:554-69 PMID: 13813011
  41. FUNCTIONAL SIGNIFICANCE OF OSMOSENSITIVE UNITS IN THE ANTERIOR HYPOTHALAMUS.
    Neurology. 1964 Jun;14:584-90 PMID: 14161760
  42. ELECTRICAL PROPERTIES OF HYPOTHALAMIC NEUROENDOCRINE CELLS.
    J Gen Physiol. 1964 Mar;47:691-717 PMID: 14127607
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1973-08-00
Pages
515-43
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1350507
Subset
IM
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