Literature DB >> 6849898

Modulation of membrane transport by free fatty acids: inhibition of synaptosomal sodium-dependent amino acid uptake.

D E Rhoads, R K Ockner, N A Peterson, E Raghupathy.   

Abstract

High-affinity, Na+-dependent synaptosomal amino acid uptake systems are strongly stimulated by proteins which are known to bind free fatty acids. The rate of uptake as well as the overall level of accumulation is increased by such proteins as bovine serum albumin, hepatic fatty acid binding protein, beta-lactoglobulin, and fetuin. Such a stimulation is not observed with proteins which do not bind fatty acids. The transport activity of synaptosomal preparations can be directly correlated with the free fatty acid content of the preparation. Thus, incubation with albumin reduces the free fatty acid content of synaptosomal preparations, suggesting that the stimulatory effects of the proteins are related to their removal of inhibitory fatty acids formed by hydrolysis of membrane lipids during incubation. Inhibition of amino acid uptake is seen with most cis-unsaturated long chain fatty acids while saturated and trans-unsaturated fatty acids have relatively little or no effect. Under conditions in which the ionophore gramicidin D causes an increase of 22Na flux into synaptosomes, oleic acid (50 microM) has no effect on the influx. These data are consistent with the hypothesis proposed earlier by us [Rhoads, D. E., Peterson, N. A., & Raghupathy, E. (1982) Biochemistry 21, 4782] that Na+-dependent amino acid transport carrier proteins reside in a relatively fluid lipid domain in the synaptosomal membrane and that the effects of cis-unsaturated fatty acids are mediated by interactions with such domains.

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Year:  1983        PMID: 6849898     DOI: 10.1021/bi00277a035

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  9 in total

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5.  Arachidonic acid inhibits glycine transport in cultured glial cells.

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6.  Inhibitory action of palmitic acid on the growth of Saccharomyces cerevisiae.

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7.  Effect of liver fatty acid binding protein on fatty acid movement between liposomes and rat liver microsomes.

Authors:  M McCormack; P Brecher
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8.  Membrane docosahexaenoate is supplied to the developing brain and retina by the liver.

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Review 9.  Reconstitution of GABA, Glycine and Glutamate Transporters.

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  9 in total

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