Abstract
1. Low concentrations of l-glutamate were slowly and quantitatively converted into aspartate by aged sheep-liver mitochondria with the loss of C-1 of the glutamate. 2. When propionate was present in addition the rate of conversion of glutamate into aspartate was increased slightly, and the presence of glutamate caused a marked stimulation in the rate at which propionate was metabolized. 3. The stimulatory effect of ;sparker' amounts of l-glutamate on propionate metabolism was matched by the effects of alpha-oxoglutarate, pyruvate, citrate and isocitrate, but not by succinate, fumarate, malate or oxaloacetate. Succinate was stimulatory at higher concentrations, whereas oxaloacetate was inhibitory. 4. When propionate was incubated with l-[1-(14)C]glutamate in the presence of a large excess of unlabelled carbon dioxide, some labelling of dicarboxylic acids and aspartate occurred, but this was much less than would have been expected from an obligatory transcarboxylation from C-1 of alpha-oxoglutarate to propionyl-CoA. 5. Possible mechanisms of these effects are discussed.
Keywords
AGING
AMINO ACID METABOLISM
ASPARTIC ACID
CARBON DIOXIDE
EXPERIMENTAL LAB STUDY
FATTY ACID METABOLISM
FUMARATES
GLUTAMATES
KETOGLUTARIC ACID
LIVER CYTOLOGY
MALATES
MITOCHONDRIA
OXALOACETATES
PHARMACOLOGY
PROPIONATES
SHEEP
SUCCINATES
MeSH Terms
Acyl Coenzyme A
Aging
Amino Acids/metabolism
Animals
Aspartic Acid
Carbon Dioxide
Citrates
Fatty Acids/metabolism
Fumarates
Glutamates
Glutamic Acid
Ketoglutaric Acids
Liver/cytology
Malates
Mitochondria
Mitochondria, Liver
Oxaloacetates
Pharmacology
Propionates
Pyruvates
Research
Sheep
Sheep, Domestic
Succinates
Chemicals
Acyl Coenzyme A
Amino Acids
Citrates
Fatty Acids
Fumarates
Glutamates
Ketoglutaric Acids
Malates
Oxaloacetates
Propionates
Pyruvates
Succinates
Carbon Dioxide
Aspartic Acid
propionyl-coenzyme A
Glutamic Acid
malic acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
SMITH R M
OSBORNE-WHITE W S
RUSSELL G R
References (9)
9 references, click to expand
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