Literature DB >> 26815005

Mg(2+) differentially regulates two modes of mitochondrial Ca(2+) uptake in isolated cardiac mitochondria: implications for mitochondrial Ca(2+) sequestration.

Christoph A Blomeyer1, Jason N Bazil2,3,4, David F Stowe1,4,5,6, Ranjan K Dash3,4,5, Amadou K S Camara7.   

Abstract

The manner in which mitochondria take up and store Ca(2+) remains highly debated. Recent experimental and computational evidence has suggested the presence of at least two modes of Ca(2+) uptake and a complex Ca(2+) sequestration mechanism in mitochondria. But how Mg(2+) regulates these different modes of Ca(2+) uptake as well as mitochondrial Ca(2+) sequestration is not known. In this study, we investigated two different ways by which mitochondria take up and sequester Ca(2+) by using two different protocols. Isolated guinea pig cardiac mitochondria were exposed to varying concentrations of CaCl2 in the presence or absence of MgCl2. In the first protocol, A, CaCl2 was added to the respiration buffer containing isolated mitochondria, whereas in the second protocol, B, mitochondria were added to the respiration buffer with CaCl2 already present. Protocol A resulted first in a fast transitory uptake followed by a slow gradual uptake. In contrast, protocol B only revealed a slow and gradual Ca(2+) uptake, which was approximately 40 % of the slow uptake rate observed in protocol A. These two types of Ca(2+) uptake modes were differentially modulated by extra-matrix Mg(2+). That is, Mg(2+) markedly inhibited the slow mode of Ca(2+) uptake in both protocols in a concentration-dependent manner, but not the fast mode of uptake exhibited in protocol A. Mg(2+) also inhibited Na(+)-dependent Ca(2+) extrusion. The general Ca(2+) binding properties of the mitochondrial Ca(2+) sequestration system were reaffirmed and shown to be independent of the mode of Ca(2+) uptake, i.e. through the fast or slow mode of uptake. In addition, extra-matrix Mg(2+) hindered Ca(2+) sequestration. Our results indicate that mitochondria exhibit different modes of Ca(2+) uptake depending on the nature of exposure to extra-matrix Ca(2+), which are differentially sensitive to Mg(2+). The implications of these findings in cardiomyocytes are discussed.

Entities:  

Keywords:  Calcium efflux; Calcium sequestration; Calcium uptake; Cardiac; Mitochondria

Mesh:

Substances:

Year:  2016        PMID: 26815005      PMCID: PMC5098337          DOI: 10.1007/s10863-016-9644-1

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


  67 in total

1.  STUDIES ON ION TRANSPORT. VI. THE ACCUMULATION OF MG2+ BY HEART MITOCHONDRIA IN THE ABSENCE OF INORGANIC PHOSPHATE.

Authors:  G P BRIERLEY; E MURER; R L O'BRIEN
Journal:  Biochim Biophys Acta       Date:  1964-11-29

Review 2.  The fateful encounter of mitochondria with calcium: how did it happen?

Authors:  Ernesto Carafoli
Journal:  Biochim Biophys Acta       Date:  2010-04-10

3.  Kinetics of mitochondrial calcium transport. II. A kinetic description of the sodium-dependent calcium efflux mechanism of liver mitochondria and inhibition by ruthenium red and by tetraphenylphosphonium.

Authors:  D E Wingrove; T E Gunter
Journal:  J Biol Chem       Date:  1986-11-15       Impact factor: 5.157

4.  Changes in [Na(+)](i), compartmental [Ca(2+)], and NADH with dysfunction after global ischemia in intact hearts.

Authors:  S G Varadarajan; J An; E Novalija; S C Smart; D F Stowe
Journal:  Am J Physiol Heart Circ Physiol       Date:  2001-01       Impact factor: 4.733

Review 5.  Significance of magnesium in congestive heart failure.

Authors:  S Douban; M A Brodsky; D D Whang; R Whang
Journal:  Am Heart J       Date:  1996-09       Impact factor: 4.749

6.  Mitochondrial free [Ca2+] increases during ATP/ADP antiport and ADP phosphorylation: exploration of mechanisms.

Authors:  Johan Haumann; Ranjan K Dash; David F Stowe; Age D Boelens; Daniel A Beard; Amadou K S Camara
Journal:  Biophys J       Date:  2010-08-09       Impact factor: 4.033

7.  A forty-kilodalton protein of the inner membrane is the mitochondrial calcium uniporter.

Authors:  Diego De Stefani; Anna Raffaello; Enrico Teardo; Ildikò Szabò; Rosario Rizzuto
Journal:  Nature       Date:  2011-06-19       Impact factor: 49.962

Review 8.  Cardiovascular consequences of magnesium deficiency and loss: pathogenesis, prevalence and manifestations--magnesium and chloride loss in refractory potassium repletion.

Authors:  M Seelig
Journal:  Am J Cardiol       Date:  1989-04-18       Impact factor: 2.778

Review 9.  Regulation of ATP production by mitochondrial Ca(2+).

Authors:  Andrei I Tarasov; Elinor J Griffiths; Guy A Rutter
Journal:  Cell Calcium       Date:  2012-04-12       Impact factor: 6.817

10.  A minimal model for the mitochondrial rapid mode of Ca²+ uptake mechanism.

Authors:  Jason N Bazil; Ranjan K Dash
Journal:  PLoS One       Date:  2011-06-23       Impact factor: 3.240

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  15 in total

1.  Endogenous and Agonist-induced Opening of Mitochondrial Big Versus Small Ca2+-sensitive K+ Channels on Cardiac Cell and Mitochondrial Protection.

Authors:  David F Stowe; Meiying Yang; James S Heisner; Amadou K S Camara
Journal:  J Cardiovasc Pharmacol       Date:  2017-11       Impact factor: 3.105

2.  Peroxynitrite nitrates adenine nucleotide translocase and voltage-dependent anion channel 1 and alters their interactions and association with hexokinase II in mitochondria.

Authors:  Meiying Yang; Yanji Xu; James S Heisner; Jie Sun; David F Stowe; Wai-Meng Kwok; Amadou K S Camara
Journal:  Mitochondrion       Date:  2018-11-01       Impact factor: 4.160

Review 3.  Different approaches to modeling analysis of mitochondrial swelling.

Authors:  Sabzali Javadov; Xavier Chapa-Dubocq; Vladimir Makarov
Journal:  Mitochondrion       Date:  2017-08-10       Impact factor: 4.160

4.  Identity and function of a cardiac mitochondrial small conductance Ca2+-activated K+ channel splice variant.

Authors:  MeiYing Yang; Amadou K S Camara; Mohammed Aldakkak; Wai-Meng Kwok; David F Stowe
Journal:  Biochim Biophys Acta Bioenerg       Date:  2017-03-22       Impact factor: 3.991

5.  Modulation of peroxynitrite produced via mitochondrial nitric oxide synthesis during Ca2+ and succinate-induced oxidative stress in cardiac isolated mitochondria.

Authors:  Harrison J Gerdes; Meiying Yang; James S Heisner; Amadou K S Camara; David F Stowe
Journal:  Biochim Biophys Acta Bioenerg       Date:  2020-08-20       Impact factor: 3.991

6.  Rapid Treatment with Intramuscular Magnesium Sulfate During Cardiopulmonary Resuscitation Does Not Provide Neuroprotection Following Cardiac Arrest.

Authors:  Rui Zhang; Timothy D Bryson; Garrett M Fogo; Jinhui Liao; Sarita Raghunayakula; Jennifer Mathieu; Joseph M Wider; Xiaodan Ren; Kathleen J Maheras; Katlynn J Emaus; Erin Gruley; Yuguo Chen; Robert W Neumar; Thomas H Sanderson
Journal:  Mol Neurobiol       Date:  2022-01-14       Impact factor: 5.590

7.  Structural Insights into Mitochondrial Calcium Uniporter Regulation by Divalent Cations.

Authors:  Samuel K Lee; Santhanam Shanmughapriya; Mac C Y Mok; Zhiwei Dong; Dhanendra Tomar; Edmund Carvalho; Sudarsan Rajan; Murray S Junop; Muniswamy Madesh; Peter B Stathopulos
Journal:  Cell Chem Biol       Date:  2016-08-25       Impact factor: 8.116

Review 8.  Mitochondrial calcium exchange in physiology and disease.

Authors:  Joanne F Garbincius; John W Elrod
Journal:  Physiol Rev       Date:  2021-10-26       Impact factor: 37.312

9.  LETM1-Mediated K+ and Na+ Homeostasis Regulates Mitochondrial Ca2+ Efflux.

Authors:  Shane Austin; Mojtaba Tavakoli; Christina Pfeiffer; Julia Seifert; Andrea Mattarei; Diego De Stefani; Mario Zoratti; Karin Nowikovsky
Journal:  Front Physiol       Date:  2017-11-17       Impact factor: 4.566

Review 10.  The Involvement of Mg2+ in Regulation of Cellular and Mitochondrial Functions.

Authors:  Ivana Pilchova; Katarina Klacanova; Zuzana Tatarkova; Peter Kaplan; Peter Racay
Journal:  Oxid Med Cell Longev       Date:  2017-07-05       Impact factor: 6.543

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