Literature DB >> 10653479

Mitochondrial proton leak and the uncoupling proteins.

J A Stuart1, K M Brindle, J A Harper, M D Brand.   

Abstract

An energetically significant leak of protons occurs across the mitochondrial inner membranes of eukaryotic cells. This seemingly wasteful proton leak accounts for at least 20% of the standard metabolic rate of a rat. There is evidence that it makes a similar contribution to standard metabolic rate in a lizard. Proton conductance of the mitochondrial inner membrane can be considered as having two components: a basal component present in all mitochondria, and an augmentative component, which may occur in tissues of mammals and perhaps of some other animals. The uncoupling protein of brown adipose tissue, UCP1, is a clear example of such an augmentative component. The newly discovered UCP1 homologs, UCP2, UCP3, and brain mitochondrial carrier protein 1 (BMCP1) may participate in the augmentative component of proton leak. However, they do not appear to catalyze the basal leak, as this is observed in mitochondria from cells which apparently lack these proteins. Whereas UCP1 plays an important role in thermogenesis, the evidence that UCP2 and UCP3 do likewise remains equivocal.

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Year:  1999        PMID: 10653479     DOI: 10.1023/a:1005456725549

Source DB:  PubMed          Journal:  J Bioenerg Biomembr        ISSN: 0145-479X            Impact factor:   2.945


  13 in total

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6.  Effects of magnesium and nucleotides on the proton conductance of rat skeletal-muscle mitochondria.

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9.  UCP2 and ANT differently modulate proton-leak in brain mitochondria of long-term hyperglycemic and recurrent hypoglycemic rats.

Authors:  Susana Cardoso; Maria S Santos; António Moreno; Paula I Moreira
Journal:  J Bioenerg Biomembr       Date:  2013-03-17       Impact factor: 2.945

10.  Mice overexpressing chromogranin A display hypergranulogenic adrenal glands with attenuated ATP levels contributing to the hypertensive phenotype.

Authors:  Saiful A Mir; Ying Li; Jacob D Story; Soma Bal; Linda Awdishu; Anneke A Street; Ravindra L Mehta; Prabhleen Singh; Sucheta M Vaingankar
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