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C Mauron

Publications and source records attributed to C Mauron.

6 recordsLinked to original sources

Choline increases acetylcholine release and protects against the stimulation-induced decrease in phosphatide levels within membranes of rat corpus striatum.

This study examined the possibility that membrane phospholipids might be a source of choline used for acetylcholine (ACh) synthesis. Slices of rat striatum or cerebellum were superfused with a choline-free or choline-containing (10, 20 or 40 microM) physiological solution with eserine, for alternating 20 min periods of rest or electrical stimulation. Superfusion media were assayed for choline and ACh, and slice samples taken before and after stimulation were assayed for choline, ACh, various phospholipids, protein and DNA. The striatal slices were able to sustain the stimulation-induced release of ACh, releasing a total of about 3 times their initial ACh contents during the 8 periods of stimulation and rest. During these 8 cycles, 885 pmol/micrograms DNA free choline was released from the slices into the medium, an amount about 45-fold higher than the initial or final free choline levels in the slices. Although repeated stimulation of the striatal slices failed to affect tissue levels of free choline or of ACh, this treatment did cause significant, dose-related (i.e., number of stimulation periods) stoichiometric decreases in tissue levels of phosphatidylcholine (PC) and of the other major phospholipids; tissue protein levels also declined significantly. Addition of exogenous choline to the superfusion medium produced dose-related increases in resting and evoked ACh release. The choline also fully protected the striatal slices from phospholipid depletion for as many as 6 stimulation periods. Cerebellar slices liberated large amounts of free choline into the medium but did not release measurable quantities of ACh; their phospholipid and protein levels did not decline with electrical stimulation. These data show that membrane phospholipids constitute a reservoir of free choline that can be used for ACh synthesis. When free choline is in short supply, ACh synthesis and release are sustained at the expense of this reservoir. The consequent reduction in membrane PC apparently is associated with a depletion of cellular membrane. The use of free choline by cholinergic neurons for two purposes, the syntheses of both ACh and membrane phospholipids, may thus impart vulnerability to them in situations where the supply of free choline is less than that needed for acetylation.

Acetylcholine

Phosphatidylcholine as a precursor of choline for acetylcholine synthesis.

It has been hypothesized that the selective vulnerability of certain brain cholinergic neurons in Alzheimer's disease may reflect the unique way that choline is utilized by these neurons, i.e. not only as a component of major membrane phospholipids, e.g. phosphatidylcholine (PC), but also as a precursor of their neurotransmitter, acetylcholine (ACh). A prolonged utilization of choline liberated from PC, for ACh production, without adequate resynthesis of this lipid, might result in a net loss of the phosphatide followed by an impairment of membrane function and loss of cellular viability. Studies described in this paper, performed on electrically stimulated striatal slices and on cholinergic cell lines, test this hypothesis. 1) Electrically-stimulated striatal slices continue to release ACh, and sustain their free choline and ACh levels, even when perfused with a choline-free medium. Striatal levels of PC decline under these circumstances, and this decline can be blocked by adding tetrodotoxin (which blocks neuronal depolarization) or choline to the medium. The other major membrane phospholipids, phosphatidylserine and phosphatidylethanolamine, also decline proportionately to PC when slices are stimulated in the absence of choline. 2) In a population of purely cholinergic cells (human neuroblastoma, LA-N-2), ACh can be synthesized from choline derived from degradation of endogenous PC formed de novo by methylation of phosphatidylethanolamine. 3) PC content of cells in culture (neuroblastoma X glioma hybrid, NG 108-15) can be altered by adding various amounts of choline to the growth media. The proportion of PC in the cells apparently affects cellular survival and rate of growth. Taken together these data demonstrate that cholinergic neurons utilize the choline stored in PC to synthesize ACh; that this process may lead to a depletion in membrane phospholipids (when choline supply is inadequate); and that the resulting changes in neuronal membrane composition might adversely affect cellular viability.

Acetylcholine

Developmental changes in brain indoles, serum tryptophan and other serum neutral amino acids in the rat.

The rates at which brain neurons synthesize and release serotonin depend in part on brain tryptophan concentrations; these, in turn, vary directly with serum (or plasma) tryptophan, and inversely with the serum concentrations of other large neutral amino acids (LNAA). Concentrations of serum tryptophan, LNAA and brain indoles were examined in samples drawn at noontime from rats aged 0-59 days. Developmental changes in serum tryptophan largely paralleled those in the tryptophan/LNAA ratio, and brain tryptophan concentrations. Brain serotonin and 5-hydroxyindole acetic acid (5-HIAA) levels also increased postnatally; the changes in 5-HIAA tended to parallel those in brain tryptophan while those in serotonin did not.

Aging

Morphine analgesia in grouped and isolated rats.

The effects of long-term isolation of young adult male rats on the analgesic effects of morphine were investigated. Isolated rats developed altered patterns of behavior, including muricidal behavior in some animals. Analgesic activity of morphine was assessed with both the tail compression and the hot plate methods. The results indicate that chronically isolated rats, whether developing muricidal behavior or not, show no alteration in either pain thresholds or in their response to morphine-induced analgesia.

Aggression