By Regulating Mitochondrial Ca2+-Uptake UCP2 Modulates Intracellular Ca2+

PLoS One. 2016 Feb 5;11(2):e0148359. doi: 10.1371/journal.pone.0148359. eCollection 2016.

Abstract

Introduction: The possible role of UCP2 in modulating mitochondrial Ca2+-uptake (mCa2+-uptake) via the mitochondrial calcium uniporter (MCU) is highly controversial.

Methods: Thus, we analyzed mCa2+-uptake in isolated cardiac mitochondria, MCU single-channel activity in cardiac mitoplasts, dual Ca2+-transients from mitochondrial ((Ca2+)m) and intracellular compartment ((Ca2+)c) in the whole-cell configuration in cardiomyocytes of wild-type (WT) and UCP2-/- mice.

Results: Isolated mitochondria showed a Ru360 sensitive mCa2+-uptake, which was significantly decreased in UCP2-/- (229.4±30.8 FU vs. 146.3±23.4 FU, P<0.05). Single-channel registrations confirmed a Ru360 sensitive voltage-gated Ca2+-channel in mitoplasts, i.e. mCa1, showing a reduced single-channel activity in UCP2-/- (Po,total: 0.34±0.05% vs. 0.07±0.01%, P<0.05). In UCP2-/- cardiomyocytes (Ca2+)m was decreased (0.050±0.009 FU vs. 0.021±0.005 FU, P<0.05) while (Ca2+)c was unchanged (0.032±0.002 FU vs. 0.028±0.004 FU, P>0.05) and transsarcolemmal Ca2+-influx was inhibited suggesting a possible compensatory mechanism. Additionally, we observed an inhibitory effect of ATP on mCa2+-uptake in WT mitoplasts and (Ca2+)m of cardiomyocytes leading to an increase of (Ca2+)c while no ATP dependent effect was observed in UCP2-/-.

Conclusion: Our results indicate regulatory effects of UCP2 on mCa2+-uptake. Furthermore, we propose, that previously described inhibitory effects on MCU by ATP may be mediated via UCP2 resulting in changes of excitation contraction coupling.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adenosine Triphosphate / metabolism
  • Adenosine Triphosphate / pharmacology
  • Animals
  • Calcium / metabolism*
  • Calcium Channels / metabolism
  • Cytosol / drug effects
  • Cytosol / metabolism
  • Dose-Response Relationship, Drug
  • Ion Channels / genetics
  • Ion Channels / metabolism*
  • Male
  • Membrane Potential, Mitochondrial
  • Mice, Mutant Strains
  • Mitochondria, Heart / drug effects
  • Mitochondria, Heart / metabolism*
  • Mitochondrial Proteins / genetics
  • Mitochondrial Proteins / metabolism*
  • Myocytes, Cardiac / metabolism
  • Patch-Clamp Techniques
  • Ruthenium Compounds / administration & dosage
  • Ruthenium Compounds / pharmacology
  • Sarcolemma / metabolism
  • Uncoupling Protein 2

Substances

  • Calcium Channels
  • Ion Channels
  • Mitochondrial Proteins
  • Ru 360
  • Ruthenium Compounds
  • Ucp2 protein, mouse
  • Uncoupling Protein 2
  • Adenosine Triphosphate
  • Calcium

Grants and funding

This work was supported by grants from the Marga and Walter Boll-Stiftung (UCH) and the Paracelsus Medical University, Salzburg (R-12/04038-LAR; LJM and RL). The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.