» Articles » PMID: 880241

Development of Mitochondrial Energy Metabolism in Rat Brain

Overview
Journal Biochem J
Specialty Biochemistry
Date 1977 May 15
PMID 880241
Citations 27
Authors
Affiliations
Soon will be listed here.
Abstract

1. The development of pyruvate dehydrogenase and citrate synthase activity in rat brain mitochondria was studied. Whereas the citrate synthase activity starts to increase at about 8 days after birth, that of pyruvate dehydrogenase starts to increase at about 15 days. Measurements of the active proportion of pyruvate dehydrogenase during development were also made. 2. The ability of rat brain mitochondria to oxidize pyruvate follows a similar developmental pattern to that of the pyruvate dehydrogenase. However, the ability to oxidize 3-hydroxybutyrate shows a different developmental pattern (maximal at 20 days and declining by half in the adult), which is compatible with the developmental pattern of the ketone-body-utilizing enzymes. 3. The developmental pattern of both the soluble and the mitochondrially bound hexokinase of rat brain was studied. The total brain hexokinase activity increases markedly at about 15 days, which is mainly due to an increase in activity of the mitochondrially bound form, and reaches the adult situation (approx. 70% being mitochondrial) at about 30 days after birth. 4. The release of the mitochondrially bound hexokinase under different conditions by glucose 6-phosphate was studied. There was insignificant release of the bound hexokinase in media containing high KCl concentrations by glucose 6-phosphate, but in sucrose media half-maximal release of hexokinase was achieved by 70mum-glucose 6-phosphate 5. The production of glucose 6-phosphate by brain mitochondria in the presence of Mg(2+)+glucose was demonstrated, together with the inhibition of this by atractyloside. 6. The results are discussed with respect to the possible biological significance of the similar developmental patterns of pyruvate dehydrogenase and the mitochondrially bound kinases, particularly hexokinase, in the brain. It is suggested that this association may be a mechanism for maintaining an efficient and active aerobic glycolysis which is necessary for full neural expression.

Citing Articles

Integrated network pharmacology and hepatic metabolomics to reveal the mechanism of against major depressive disorder.

Gu X, Zhang G, Wang Q, Song J, Li Y, Xia C Front Cell Dev Biol. 2022; 10:900637.

PMID: 35990602 PMC: 9389016. DOI: 10.3389/fcell.2022.900637.


Pathophysiology of Pediatric Traumatic Brain Injury.

Serpa R, Ferguson L, Larson C, Bailard J, Cooke S, Greco T Front Neurol. 2021; 12:696510.

PMID: 34335452 PMC: 8319243. DOI: 10.3389/fneur.2021.696510.


Sex dependent alterations in mitochondrial electron transport chain proteins following neonatal rat cerebral hypoxic-ischemia.

Demarest T, Schuh R, Waite E, Waddell J, McKenna M, Fiskum G J Bioenerg Biomembr. 2016; 48(6):591-598.

PMID: 27683241 DOI: 10.1007/s10863-016-9678-4.


The Glutamate-Glutamine (GABA) Cycle: Importance of Late Postnatal Development and Potential Reciprocal Interactions between Biosynthesis and Degradation.

Hertz L Front Endocrinol (Lausanne). 2013; 4:59.

PMID: 23750153 PMC: 3664331. DOI: 10.3389/fendo.2013.00059.


The role of astrocytic glycogen in supporting the energetics of neuronal activity.

DiNuzzo M, Mangia S, Maraviglia B, Giove F Neurochem Res. 2012; 37(11):2432-8.

PMID: 22614927 PMC: 4062197. DOI: 10.1007/s11064-012-0802-5.


References
1.
Kraus H, Schlenker S, Schwedesky D . Developmental changes of cerebral ketone body utilization in human infants. Hoppe Seylers Z Physiol Chem. 1974; 355(2):164-70. DOI: 10.1515/bchm2.1974.355.1.164. View

2.
Cremer J, Heath D . The estimation of rates of utilization of glucose and ketone bodies in the brain of the suckling rat using compartmental analysis of isotopic data. Biochem J. 1974; 142(3):527-44. PMC: 1168317. DOI: 10.1042/bj1420527. View

3.
Middleton B . The acetoacetyl-coenzyme A thiolases of rat brain and their relative activities during postnatal development. Biochem J. 1973; 132(4):731-7. PMC: 1177648. DOI: 10.1042/bj1320731. View

4.
Jacobus W, Lehninger A . Creatine kinase of rat heart mitochondria. Coupling of creatine phosphorylation to electron transport. J Biol Chem. 1973; 248(13):4803-10. View

5.
Hucho F . The pyruvate dehydrogenase multienzyme complex. Angew Chem Int Ed Engl. 1975; 14(9):591-601. DOI: 10.1002/anie.197505911. View