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Species- and tissue-specific relationships between mitochondrial permeability transition and generation of ROS in brain and liver mitochondria of rats and mice

Authors :
Panov, Alexander
Dikalov, Sergey
Shalbuyeva, Natalia
Hemendinger, Richelle
Greenamyre, John T.
Rosenfeld, Jeffrey
Source :
The American Journal of Physiology. Feb, 2007, Vol. 292 Issue 2, pC708, 11 p.
Publication Year :
2007

Abstract

In animal models of neurodegenerative diseases pathological changes vary with the type of organ and species of the animals. We studied differences in the mitochondrial permeability transition (mPT) and reactive oxygen species (ROS) generation in the liver (LM) and brain (BM) of Sprague-Dawley rats and C57B1 mice. In the presence of ADP mouse LM and rat LM required three times less [Ca.sup.2+] to initiate raPT than the corresponding BM. Mouse LM and BM sequestered 70% and 50% more [Ca.sup.2+] phosphate than the rat LM and BM. MBM generated 50% more ROS with glutamate than the RBM, but not with succinate. With the NAD substrates, generation of ROS do not depend on the energy state of the BM. Organization of the respiratory complexes into the respirasome is a possible mechanism to prevent ROS generation in the BM. With BM oxidizing succinate, 80% of ROS generation was energy dependent. Induction of mPT does not affect ROS generation with NAD substrates and inhibit with succinate as a substrate. The relative insensitivity of the liver to systemic insults is associated with its high regenerative capacity. Neuronal cells with low regenerative capacity and a long life span protect themselves by minimizing ROS generation and by the ability to withstand very large [Ca.sup.2+] insults. We suggest that additional factors, such as oxidative stress, are required to initiate neurodegeneration. Thus the observed differences in the [Ca.sup.2+]induced mPT and ROS generation may underlie both the organ-specific and species-specific variability in the animal models of neurodegenerative diseases. permeability transition; reactive oxygen species generation; interspecies difference

Details

Language :
English
ISSN :
00029513
Volume :
292
Issue :
2
Database :
Gale General OneFile
Journal :
The American Journal of Physiology
Publication Type :
Academic Journal
Accession number :
edsgcl.161011553