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Calcium channels that are required for secretion from intact nerve terminals of vertebrates are sensitive to omega-conotoxin and relatively insensitive to dihydropyridines. Optical studies with and without voltage-sensitive dyes.
Obaid AL
,
Flores R
,
Salzberg BM
.
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Extrinsic absorption changes exhibited by potentiometric dyes have established the ionic basis of the action potential in synchronously activated populations of nerve terminals in the intact neurohypophyses of amphibia and mammals (Salzberg et al., 1983; Obaid et al., 1983, 1985b). Also, large and rapid changes in light scattering, measured as transparency, have been shown to follow membrane depolarization and to be intimately associated with the release of neuropeptides from the nerve terminals of the mouse neurohypophysis (Salzberg et al., 1985; Gainer et al., 1986). We report some experiments that help to define the pharmacological profile of the calcium channels present in intact neurosecretory terminals of vertebrates. For these, we used the peptide toxin omega-conotoxin GVIA (1-5 microM) and the dihydropyridine compounds Bay-K 8644 and nifedipine (2-5 microM), together with the after-hyperpolarization of the nerve terminal action potential. This undershoot depends upon the activation of a calcium-mediated potassium channel, as suggested by its sensitivity to [Ca++]o and charybdotoxin. omega-conotoxin GVIA substantially reduced the after-hyperpolarization in neurosecretory terminals of Xenopus, while neither of the dihydropyridine compounds had any effect under conditions that mimic natural stimulation. The effects of these calcium channel modifiers on the action potential recorded optically from the terminals of the Xenopus neurohypophysis were faithfully reflected in the behavior of the light-scattering changes observed in the neurohypophysis of the CD-1 mouse. omega-conotoxin GVIA (5 microM) reduced the size of the intrinsic optical signal associated with secretion by 50%, while the dihydropyridines had little effect. These observations suggest that the type of calcium channel that dominates the secretory behavior of intact vertebrate nerve terminals is at least partially blocked by omega-conotoxin GVIA and is insensitive, under normal conditions, to dihydropyridines.
Abe,
Identification of the receptor for omega-conotoxin in brain. Probable components of the calcium channel.
1987, Pubmed
Abe,
Identification of the receptor for omega-conotoxin in brain. Probable components of the calcium channel.
1987,
Pubmed
Cazalis,
Hormone release from isolated nerve endings of the rat neurohypophysis.
1987,
Pubmed
Cohen,
Optical monitoring of membrane potential: methods of multisite optical measurement.
1986,
Pubmed
Cohen,
Changes in axon light scattering that accompany the action potential: current-dependent components.
1972,
Pubmed
Cohen,
Changes in light scattering that accompany the action potential in squid giant axons: potential-dependent components.
1972,
Pubmed
Douglas,
Stimulus-secretion coupling: variations on the theme of calcium-activated exocytosis involving cellular and extracellular sources of calcium.
1978,
Pubmed
Fox,
Kinetic and pharmacological properties distinguishing three types of calcium currents in chick sensory neurones.
1987,
Pubmed
Gainer,
Action potentials and frequency-dependent secretion in the mouse neurohypophysis.
1986,
Pubmed
Grinvald,
Real-time optical mapping of neuronal activity: from single growth cones to the intact mammalian brain.
1985,
Pubmed
Grinvald,
Simultaneous optical monitoring of activity of many neurons in invertebrate ganglia using a 124-element photodiode array.
1981,
Pubmed
Grinvald,
Visualization of the spread of electrical activity in rat hippocampal slices by voltage-sensitive optical probes.
1982,
Pubmed
Gupta,
Improvements in optical methods for measuring rapid changes in membrane potential.
1981,
Pubmed
Hagiwara,
Calcium channel.
1981,
Pubmed
Hirning,
Dominant role of N-type Ca2+ channels in evoked release of norepinephrine from sympathetic neurons.
1988,
Pubmed
Hirota,
Early events in development of electrical activity and contraction in embryonic rat heart assessed by optical recording.
1985,
Pubmed
Holz,
Characterization of the electrically evoked release of substance P from dorsal root ganglion neurons: methods and dihydropyridine sensitivity.
1988,
Pubmed
Jones,
Sodium currents in dissociated bull-frog sympathetic neurones.
1987,
Pubmed
Kamino,
Localization of pacemaking activity in early embryonic heart monitored using voltage-sensitive dye.
1981,
Pubmed
Konnerth,
Optical recording of electrical activity from parallel fibres and other cell types in skate cerebellar slices in vitro.
1987,
Pubmed
McCleskey,
Omega-conotoxin: direct and persistent blockade of specific types of calcium channels in neurons but not muscle.
1987,
Pubmed
Miller,
Are dihydropyridine binding sites voltage sensitive calcium channels?
1984,
Pubmed
Miller,
Charybdotoxin, a protein inhibitor of single Ca2+-activated K+ channels from mammalian skeletal muscle.
,
Pubmed
Miller,
Multiple calcium channels and neuronal function.
1987,
Pubmed
Morad,
Rapid photochemical inactivation of Ca2+-antagonists shows that Ca2+ entry directly activates contraction in frog heart.
,
Pubmed
Nachshen,
The effects of some organic "calcium antagonists" on calcium influx in presynaptic nerve terminals.
1979,
Pubmed
Nowycky,
Three types of neuronal calcium channel with different calcium agonist sensitivity.
,
Pubmed
Obaid,
Active calcium responses recorded optically from nerve terminals of the frog neurohypophysis.
1985,
Pubmed
,
Xenbase
Olivera,
Peptide neurotoxins from fish-hunting cone snails.
1985,
Pubmed
Orbach,
Optical monitoring of activity from many areas of the in vitro and in vivo salamander olfactory bulb: a new method for studying functional organization in the vertebrate central nervous system.
1983,
Pubmed
Rane,
Dihydropyridine inhibition of neuronal calcium current and substance P release.
1987,
Pubmed
Reynolds,
Brain voltage-sensitive calcium channel subtypes differentiated by omega-conotoxin fraction GVIA.
1986,
Pubmed
Rios,
Involvement of dihydropyridine receptors in excitation-contraction coupling in skeletal muscle.
,
Pubmed
Ross,
Optical measurements of potential changes in axons and processes of neurons of a barnacle ganglion.
1984,
Pubmed
Ross,
Changes in absorption, fluorescence, dichroism, and Birefringence in stained giant axons: : optical measurement of membrane potential.
1977,
Pubmed
Salzberg,
Optical recording of action potentials from vertebrate nerve terminals using potentiometric probes provides evidence for sodium and calcium components.
,
Pubmed
,
Xenbase
Salzberg,
Optical recording of neuronal activity in an invertebrate central nervous system: simultaneous monitoring of several neurons.
1977,
Pubmed
Salzberg,
Large and rapid changes in light scattering accompany secretion by nerve terminals in the mammalian neurohypophysis.
1985,
Pubmed
Senseman,
Multiple-site optical recording of membrane potential from a salivary gland. Interaction of synaptic and electrotonic excitation.
1983,
Pubmed
Tsien,
Calcium channels: mechanisms of selectivity, permeation, and block.
1987,
Pubmed
Yeager,
Transmitter release from presynaptic terminals of electric organ: inhibition by the calcium channel antagonist omega Conus toxin.
1987,
Pubmed