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Choline Metabolism in the Cerebral Cortex of Guinea Pigs. Stable-bound Acetylcholine

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Journal Biochem J
Specialty Biochemistry
Date 1972 Dec 1
PMID 4656793
Citations 11
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Abstract

1. The turnover of synaptosomal (vesicular-cytoplasmic) and stable-bound (vesicular) acetylcholine isolated from cortical tissue was investigated after the administration, under local anaesthesia, of [N-Me-(3)H]choline into the lateral ventricles of guinea pigs. 2. Radioactive acetylcholine and choline present in acid extracts of subcellular fractions were separated by a combination of liquid and column ion-exchange and thin-layer chromatography. 3. The specific radioactivity and pattern of labelling of acetylcholine present in a fraction of monodisperse synaptic vesicles was found to be essentially the same as that of synaptosomal acetylcholine. 4. The specific radioactivity of stable-bound acetylcholine present in partially disrupted synaptosomes (fraction H) at short times (10-20min) after the injection of [N-Me-(3)H]choline was very variable and inversely related to the yield of acetylcholine in that fraction. 5. Evidence was found for the existence of two small, but highly labelled pools of acetylcholine, one which could be isolated in fraction H and the other which was lost when synaptosomes, after isolation by gradient centrifugation, were left at 0 degrees C or pelleted. 6. It is concluded that the results are best explained by metabolic differences among the nerve-ending compartments (thought to be vesicles) which contain stable-bound acetylcholine. Computer simulation of our experiments supports this possibility and suggests that the highly labelled pool in fraction H is present in vesicles close to the external membrane.

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References
1.
Gray E, Whittaker V . The isolation of nerve endings from brain: an electron-microscopic study of cell fragments derived by homogenization and centrifugation. J Anat. 1962; 96:79-88. PMC: 1244174. View

2.
Furshpan E . The effects of osmotic pressure changes on the spontaneous activity at motor nerve endings. J Physiol. 1956; 134(3):689-97. PMC: 1359171. DOI: 10.1113/jphysiol.1956.sp005675. View

3.
Fonnum F . Isolation of choline esters from aqueous solutions by extraction with sodium tetraphenylboron in organic solvents. Biochem J. 1969; 113(2):291-8. PMC: 1184635. DOI: 10.1042/bj1130291. View

4.
Richter J, Marchbanks R . Isolation of ( 3 H) acetylcholine pools by subcellular fractionation of cerebral cortex slices incubated with ( 3 H) choline. J Neurochem. 1971; 18(5):705-12. DOI: 10.1111/j.1471-4159.1971.tb12000.x. View

5.
Weakly J . Effect of barbiturates on 'quantal' synaptic transmission in spinal motoneurones. J Physiol. 1969; 204(1):63-77. PMC: 1351593. DOI: 10.1113/jphysiol.1969.sp008898. View