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ROS production in brown adipose tissue mitochondria: the question of UCP1-dependence
Irina G Shabalina1, Marek Vrbacký2, Alena Pecinová2
1Department of Molecular Biosciences, The Wenner-Gren Institute, The Arrhenius Laboratories F3, Stockholm University, SE-106 91 Stockholm, Sweden.
Abstract:
Whether active UCP1 can reduce ROS production in brown-fat mitochondria is presently not settled. The issue is of principal significance, as it can be seen as a proof- or disproof-of-principle concerning the ability of any protein to diminish ROS production through membrane depolarization. We therefore undertook a comprehensive investigation of the significance of UCP1 for ROS production, by comparing the ROS production in brown-fat mitochondria isolated from wildtype mice (that display membrane depolarization) or from UCP1(-/-) mice (with a high membrane potential). We tested the significance of UCP1 for glycerol-3-phosphate-supported ROS production by three methods (fluorescent dihydroethidium and the ESR probe PHH for superoxide, and fluorescent Amplex Red for hydrogen peroxide), and followed ROS production also with succinate, acyl-CoA or pyruvate as substrate. We studied the effects of the reverse electron flow inhibitor rotenone, the UCP1 activity inhibitor GDP, and the uncoupler FCCP. We also examined the effect of a physiologically induced increase in UCP1 amount. We noted GDP effects that were not UCP1-related. We conclude that only ROS production supported by exogenously added succinate was affected by the presence of active UCP1; ROS production supported by any other tested substrate (including endogenously generated succinate) was unaffected. This conclusion indicates that UCP1 is not involved in control of ROS production in brown-fat mitochondria. Extrapolation of these data to other tissues would imply that membrane depolarization may not necessarily decrease physiologically relevant ROS production. This article is a part of a Special Issue entitled: 18th European Bioenergetics Conference (Biochim. Biophys. Acta, Volume 1837, Issue 7, July 2014).
Insights
Uncoupling protein 1 (UCP1) in brown fat mitochondria does not significantly reduce reactive oxygen species (ROS) production, except when succinate is externally supplied. This suggests UCP1 is not a key regulator of ROS in this context.
Area of Science:
- Mitochondrial bioenergetics
- Cellular redox homeostasis
- Brown adipose tissue function
Background:
- The role of uncoupling protein 1 (UCP1) in regulating reactive oxygen species (ROS) production in brown fat mitochondria is debated.
- Understanding this relationship is crucial for assessing the general principle of how membrane depolarization affects ROS generation by proteins.
Purpose of the Study:
- To comprehensively investigate the significance of UCP1 for ROS production in brown fat mitochondria.
- To compare ROS production in mitochondria from wildtype mice versus UCP1 knockout mice under various substrate conditions.
Main Methods:
- Mitochondria isolated from wildtype and UCP1(-/-) mice were used.
- ROS production was measured using dihydroethidium and Amplex Red assays for superoxide and hydrogen peroxide, respectively.
- Various substrates (glycerol-3-phosphate, succinate, acyl-CoA, pyruvate) and inhibitors (rotenone, GDP) were employed.
Main Results:
- UCP1 activity influenced ROS production only when exogenous succinate was the substrate.
- ROS production supported by endogenous succinate or other substrates (glycerol-3-phosphate, acyl-CoA, pyruvate) was unaffected by UCP1 presence.
- Observed GDP effects were not solely attributable to UCP1 activity.
Conclusions:
- Active UCP1 does not control ROS production in brown fat mitochondria, except under specific exogenous succinate conditions.
- These findings suggest that membrane depolarization mediated by UCP1 may not decrease physiologically relevant ROS production in brown adipose tissue.
- The results challenge the extrapolation of UCP1's role in ROS control to other tissues or conditions.
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