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Am J Physiol Cell Physiol 291: C1198-C1207, 2006. First published July 19, 2006; doi:10.1152/ajpcell.00246.2006
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MITOCHONDRIAL MODELING AND FUNCTION

Activation of a novel long-chain free fatty acid generation and export system in mitochondria of diabetic rat hearts

Lamar K. Gerber,1 Bruce J. Aronow,2 and Mohammed A. Matlib1

1Department of Pharmacology and Cell Biophysics and 2Department of Pediatrics, University of Cincinnati College of Medicine, Cincinnati, Ohio

Submitted 5 May 2006 ; accepted in final form 17 July 2006

A number of reports indicate that a long-chain free fatty acid export system may be operating in mitochondria. In this study, we sought evidence of its existence in rat heart mitochondria. To determine its potential role, we also sought evidence of its activation or inhibition in streptozotocin (STZ)-induced diabetic rat heart mitochondria. If confirmed, it could be a novel mechanism for regulation of long-chain fatty acid oxidation (FAO) in mitochondria. To obtain evidence of its existence, we tested whether heart mitochondria presented with palmitoyl-carnitine can generate and export palmitate. We found that intact mitochondria indeed generate and export palmitate. We have also found that the rates of these processes are markedly higher in STZ-diabetic rat heart mitochondria, in which palmitoyl-carnitine oxidation is also increased. Since mitochondrial thioesterase-1 (MTE-1) hydrolyzes acyl-CoA to CoA-SH + free fatty acid, and uncoupling protein-3 (UCP-3), reconstituted in liposomes, transports free fatty acids, we examined whether these proteins are also increased in STZ-diabetic rat heart mitochondria. We found that both of these proteins are indeed increased. Gene expression profile analysis revealed striking expression of mitochondrial long-chain fatty acid transport and oxidation genes, accompanying overexpression of MTE-1 and UCP-3 in STZ-diabetic rat hearts. Our findings provide the first direct evidence for the existence of a long-chain free fatty acid generation and export system in mitochondria and its activation in STZ-diabetic rat hearts in which FAO is enhanced. We suggest that its activation may facilitate, and inhibition may limit, enhancement of FAO.

fatty acid oxidation; diabetes; lipotoxic cardiomyopathy; gene array



Address for reprint requests and other correspondence: M. A. Matlib, Dept. of Pharmacology and Cell Biophysics, Univ. of Cincinnati College of Medicine, 231 Albert Sabin Way, P.O. Box 670575, Cincinnati, OH 43267–0575 (e-mail: matlibma{at}uc.edu)




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