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PMID: 49421 Published · ppublish English Journal Article

Membrane potentials in pinched-off presynaptic nerve ternimals monitored with a fluorescent probe: evidence that synaptosomes have potassium diffusion potentials.

The Journal of physiology ·Vol. 247 ·No. 3 ·1975-06-00 ·Pages 589-615

Blaustein MP, Goldring JM

Abstract

1. Some physiological properties of tissue fractions from rat brain homogenates have been examined. Of the three fractions studied (presynaptic nerve terminals, mitochondria and fragmented membranes), only the nerve terminals (synaptosomes) have the ability to accumulate 42K from physiological salt solutions. 2. The ability to accumulate and retain K is lost if synaptosomes are exposed to very hypotonic solutions. The K uptake and total K content is reduced by ouabain and by inhibitors of glycolysis and oxidative phosphorylation. 3. These results suggest that synaptosomes in physiological saline accumulate K against a concentration gradient, and may have K diffusion potentials across their surface membranes. The voltage-sensitive fluorescent probe, 3,3'-dipentyl 2,2'-oxacarbocyanine (CC5), was used to test this possibility. 4. In the squid axon, the fluorescent emission of CC5 is directly proportional to membrane potential; depolarization causes an increase in fluorescence. 5. The fluorescence of synaptosomes ('synaptosome fluorescence') treated with CC5 is increased when [K]o is increased or [K]o is reduced; replacement of external Na by Li or choline has little effect on the synaptosome fluorescence. In quantitative terms, synaptosome fluorescence is proportional to log ([K]o plus 0-05[Na]o). Rb is about as effective as K in enhancing synaptosome fluorescence; Cs is about 1/4 as effective. The effect of increased [K]o is reversible. 6. The fluorescence data provide corroborative evidence that there is normally a large K gradient ([K]o smaller than [I]i) across the synaptosome surface membrane. The data suggest the [K]i may be in excess of 100 mM. 7. Replacement of Cl- by methylsulphate did not significantly affect the relationship between synaptosome fluorescence and [K]o, nor did removal of external Ca. 8. The fluorescence of CC5-treated mitochondria, membrane fragmnets, or lysed synaptosomes is unaffected by changes in the K concentration of the medium. 9. Veratridine and gramicidin D, both of which enhance Na permeability (PNa) in some intact tissues, increase synaptosome fluorescence when added to the standard medium. The increment is greatly reduced or abolished when external Na is replaced by choline. 10. If synaptosomes are first Na-loaded (by pre-treatment with cyanide + iodoacetate), and then placed in a choline medium, addition of gramicidin D significantly decreases fluorescence. This effect could be explained if, with [Na]o smaller than [Na]i, the increase in PNa causes the synaptosomes to hyperpolarize. 11. The veratridine-induced increase in synaptosome fluorescence was prevented by 3 times 10- minus 7M tetrodotoxin, which also blocks the depolarizing effect of veratridine in intact neurones. 12. The main conclusion is that synaptosomes may retain resting membrane potentials and the ability to increase Na permeability.

MeSH Terms
Alkenes Animals Brain/physiology Cell Membrane Permeability/drug effects Fluorescence Fluorometry Gramicidin/pharmacology Hypotonic Solutions In Vitro Techniques Membrane Potentials Mitochondria/physiology Ouabain/pharmacology Potassium/metabolism Quinolines Rats Sodium/metabolism Synaptosomes/drug effects,metabolism,physiology Veratridine/pharmacology
Chemicals
Alkenes Hypotonic Solutions Quinolines Gramicidin Ouabain Veratridine Sodium Potassium
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Blaustein M P
Goldring J M
References (36)
36 references, click to expand
  1. The osmotically sensitive potassium and sodium compartments of synaptosomes.
    Biochem J. 1967 Jul;104(1):148-57 PMID: 6035507
  2. The osmotic behavior and permeability to non-electrolytes of mitochondria.
    Arch Biochem Biophys. 1955 Sep;58(1):52-67 PMID: 13259676
  3. [Effect of veratridine and ions on the resting potential of myelinated nerve fibers of frogs].
    Helv Physiol Pharmacol Acta. 1956;14(1):1-28 PMID: 13331324
  4. Intracellular records from Betz cells in the cat.
    Q J Exp Physiol Cogn Med Sci. 1956 Jan;41(1):58-69 PMID: 13485327
  5. Electrochemical aspects of physiological and pharmacological action in excitable cells. I. The resting cell and its alteration by extrinsic factors.
    Pharmacol Rev. 1958 Mar;10(1):59-164 PMID: 13542169
  6. Rubidium and cesium fluxes in muscle as related to the membrane potential.
    J Gen Physiol. 1959 May 20;42(5):983-1003 PMID: 13654746
  7. Cortical intracellular potentials and their responses to strychnine.
    J Neurophysiol. 1959 Jul;22(4):436-50 PMID: 13673295
  8. Cholinergic and non-cholinergic nerve endings in rat brain. I. Isolation and subcellular distribution of acetylcholine and acetylcholinesterase.
    J Neurochem. 1962 Jan-Feb;9:23-35 PMID: 13884490
  9. The isolation of nerve endings from brain: an electron-microscopic study of cell fragments derived by homogenization and centrifugation.
    J Anat. 1962 Jan;96:79-88 PMID: 13901297
  10. The subcellular localization of 5-hydroxytryptamine in guinea pig brain.
    Biochem Pharmacol. 1963 Feb;12:203-11 PMID: 13935442
  11. PROPAGATION OF ELECTRIC ACTIVITY IN MOTOR NERVE TERMINALS.
    Proc R Soc Lond B Biol Sci. 1965 Feb 16;161:453-82 PMID: 14278408
  12. The chloride conductance of frog skeletal muscle.
    J Physiol. 1960 Apr;151:89-102 PMID: 14405647
  13. The osmotic behavior of the sucrose-inaccessible space of mitochondrial pellets from rat liver.
    J Biol Chem. 1959 Nov;234:3027-30 PMID: 14420210
  14. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  15. The effect of sodium ions on the electrical activity of giant axon of the squid.
    J Physiol. 1949 Mar 1;108(1):37-77 PMID: 18128147
  16. Effects of potassium, veratridine, and scorpion venom on calcium accumulation and transmitter release by nerve terminals in vitro.
    J Physiol. 1975 Jun;247(3):617-55 PMID: 238033
  17. The influence of sodium on calcium fluxes in pinched-off nerve terminals in vitro.
    J Physiol. 1975 Jun;247(3):657-86 PMID: 238034
  18. Evidence for recycling of synaptic vesicle membrane during transmitter release at the frog neuromuscular junction.
    J Cell Biol. 1973 May;57(2):315-44 PMID: 4348786
  19. Changes in axon fluorescence during activity: molecular probes of membrane potential.
    J Membr Biol. 1974;19(1):1-36 PMID: 4431037
  20. A large change in axon fluorescence that provides a promising method for measuring membrane potential.
    Nat New Biol. 1973 Jan 31;241(109):159-60 PMID: 4512623
  21. Effects of veratrum alkaloids on membrane potential and conductance of squid and crayfish giant axons.
    J Pharmacol Exp Ther. 1973 Jan;184(1):143-54 PMID: 4686003
  22. Potassium ion-induced swelling of nerve-ending particles by light-scattering measurement.
    Biochim Biophys Acta. 1973 Nov 30;330(1):39-52 PMID: 4762770
  23. Studies on the mechanism by which cyanine dyes measure membrane potential in red blood cells and phosphatidylcholine vesicles.
    Biochemistry. 1974 Jul 30;13(16):3315-30 PMID: 4842277
  24. Determination of membrane potentials in human and Amphiuma red blood cells by means of fluorescent probe.
    J Physiol. 1974 Jun;239(3):519-52 PMID: 4851321
  25. The effect of veratridine on excitable membranes of nerve and muscle.
    Ergeb Physiol. 1969;61:18-71 PMID: 4903416
  26. A light-scattering technique for the study of the permeability of rat brain synaptosomes in vitro.
    J Neurochem. 1970 May;17(5):565-71 PMID: 4912311
  27. The application of subcellular fractionation techniques to the study of brain function.
    Prog Biophys Mol Biol. 1965;15:39-96 PMID: 5338099
  28. Metabolism of glucose and glutamate by synaptosomes from mammalian cerebral cortex.
    J Neurochem. 1969 Nov;16(11):1495-504 PMID: 5380010
  29. The permeability of pinched-off nerve endings to sodium, potassium and chloride and the effects of gramicidin.
    J Neurochem. 1971 Jun;18(6):1097-103 PMID: 5567898
  30. Ouabain and the distribution of calcium and magnesium in cerebral tissues in vitro.
    Exp Brain Res. 1968;6(4):273-83 PMID: 5721761
  31. Respiration in vitro of synaptosomes from mammalian cerebral cortex.
    J Neurochem. 1969 May;16(5):675-84 PMID: 5770014
  32. Effects associated with permeability changes caused by gramicidin A in electroplax membrane.
    Nature. 1969 Feb 8;221(5180):541-5 PMID: 5789298
  33. Biochemical studies of synapses in vitro. II. Potassium transport.
    Biochemistry. 1969 Feb;8(2):725-33 PMID: 5797996
  34. The ouabain-sensitive fluxes of sodium and potassium in squid giant axons.
    J Physiol. 1969 Feb;200(2):459-96 PMID: 5812424
  35. The separation of synaptic vesicles from nerve-ending particles ('synaptosomes').
    Biochem J. 1964 Feb;90(2):293-303 PMID: 5834239
  36. Membrane potential and conductance during transport of sodium, potassium and rubidium in frog muscle.
    J Physiol. 1966 Jun;184(4):970-1014 PMID: 5912216
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1975-06-00
Pages
589-615
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1309490
Subset
IM
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