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Published in: Basic Research in Cardiology 2/2017

01-03-2017 | Original Contribution

Cardioprotective kinase signaling to subsarcolemmal and interfibrillar mitochondria is mediated by caveolar structures

Authors: Wylly Ramsés García-Niño, Francisco Correa, Julia Isabel Rodríguez-Barrena, Juan Carlos León-Contreras, Mabel Buelna-Chontal, Elizabeth Soria-Castro, Rogelio Hernández-Pando, José Pedraza-Chaverri, Cecilia Zazueta

Published in: Basic Research in Cardiology | Issue 2/2017

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Abstract

The demonstration that caveolin-3 overexpression reduces myocardial ischemia/reperfusion injury and our own finding that multiprotein signaling complexes increase in mitochondria in association with caveolin-3 levels, led us to investigate the contribution of caveolae-driven extracellular signal-regulated kinases 1/2 (ERK1/2) on maintaining the function of cardiac mitochondrial subpopulations from reperfused hearts subjected to postconditioning (PostC). Rat hearts were isolated and subjected to ischemia/reperfusion and to PostC. Enhanced cardiac function, reduced infarct size and preserved ultrastructure of cardiomyocytes were associated with increased formation of caveolar structures, augmented levels of caveolin-3 and mitochondrial ERK1/2 activation in PostC hearts in both subsarcolemmal (SSM) and interfibrillar (IFM) subpopulations. Disruption of caveolae with methyl-β-cyclodextrin abolished cardioprotection in PostC hearts and diminished pho-ERK1/2 gold-labeling in both mitochondrial subpopulations in correlation with suppression of resistance to permeability transition pore opening. Also, differences between the mitochondrial subpopulations in the setting of PostC were evaluated. Caveolae disruption with methyl-β-cyclodextrin abolished the cardioprotective effect of postconditioning by inhibiting the interaction of ERK1/2 with mitochondria and promoted decline in mitochondrial function. SSM, which are particularly sensitive to reperfusion damage, take advantage of their location in cardiomyocyte boundary and benefit from the cardioprotective signaling driven by caveolae, avoiding injury propagation.
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Literature
3.
go back to reference Baines CP, Zhang J, Wang GW, Zheng YT, Xiu JX, Cardwell EM, Bolli R, Ping P (2002) Mitochondrial PKCepsilon and MAPK form signaling modules in the murine heart: enhanced mitochondrial PKCepsilon-MAPK interactions and differential MAPK activation in PKCepsilon-induced cardioprotection. Circ Res 90:390–397. doi:10.1161/01.RES.0000069215.36389.8D CrossRefPubMed Baines CP, Zhang J, Wang GW, Zheng YT, Xiu JX, Cardwell EM, Bolli R, Ping P (2002) Mitochondrial PKCepsilon and MAPK form signaling modules in the murine heart: enhanced mitochondrial PKCepsilon-MAPK interactions and differential MAPK activation in PKCepsilon-induced cardioprotection. Circ Res 90:390–397. doi:10.​1161/​01.​RES.​0000069215.​36389.​8D CrossRefPubMed
4.
go back to reference Boengler K, Stahlhofen S, Sand A, Gres P, Ruiz-Meana M, Garcia-Dorado D, Heusch G, Schulz R (2009) Presence of connexin 43 in subsarcolemmal, but not in interfibrillar cardiomyocyte mitochondria. Basic Res Cardiol 104:141–147. doi:10.1007/s00395-009-0007-5 CrossRefPubMed Boengler K, Stahlhofen S, Sand A, Gres P, Ruiz-Meana M, Garcia-Dorado D, Heusch G, Schulz R (2009) Presence of connexin 43 in subsarcolemmal, but not in interfibrillar cardiomyocyte mitochondria. Basic Res Cardiol 104:141–147. doi:10.​1007/​s00395-009-0007-5 CrossRefPubMed
8.
go back to reference Correa F, García N, Gallardo-Pérez J, Carreño-Fuentes L, Rodríguez-Enríquez S, Marín-Hernández A, Zazueta C (2008) Post-conditioning preserves glycolytic ATP during early reperfusion: a survival mechanism for the reperfused heart. Cell Physiol Biochem 22:635–644. doi:10.1159/000185547 CrossRefPubMed Correa F, García N, Gallardo-Pérez J, Carreño-Fuentes L, Rodríguez-Enríquez S, Marín-Hernández A, Zazueta C (2008) Post-conditioning preserves glycolytic ATP during early reperfusion: a survival mechanism for the reperfused heart. Cell Physiol Biochem 22:635–644. doi:10.​1159/​000185547 CrossRefPubMed
9.
14.
go back to reference Folino A, Sprio AE, Di Scipio F, Berta GN, Rastaldo R (2015) Alpha-linolenic acid protects against cardiac injury and remodelling induced by beta-adrenergic overstimulation. Food Funct 6:2231–2239. doi:10.1039/c5fo00034c CrossRefPubMed Folino A, Sprio AE, Di Scipio F, Berta GN, Rastaldo R (2015) Alpha-linolenic acid protects against cardiac injury and remodelling induced by beta-adrenergic overstimulation. Food Funct 6:2231–2239. doi:10.​1039/​c5fo00034c CrossRefPubMed
15.
go back to reference Fridolfsson HN, Kawaraguchi Y, Ali SS, Panneerselvam M, Niesman IR, Finley JC, Kellerhals SE, Migita MY, Okada H, Moreno AL, Jennings M, Kidd MW, Bonds JA, Balijepalli RC, Ross RS, Patel PM, Miyanohara A, Chen Q, Lesnefsky EJ, Head BP, Roth DM, Insel PA, Patel HH (2012) Mitochondria-localized caveolin in adaptation to cellular stress and injury. FASEB J 26:4637–4649. doi:10.1096/fj.12-215798 CrossRefPubMedPubMedCentral Fridolfsson HN, Kawaraguchi Y, Ali SS, Panneerselvam M, Niesman IR, Finley JC, Kellerhals SE, Migita MY, Okada H, Moreno AL, Jennings M, Kidd MW, Bonds JA, Balijepalli RC, Ross RS, Patel PM, Miyanohara A, Chen Q, Lesnefsky EJ, Head BP, Roth DM, Insel PA, Patel HH (2012) Mitochondria-localized caveolin in adaptation to cellular stress and injury. FASEB J 26:4637–4649. doi:10.​1096/​fj.​12-215798 CrossRefPubMedPubMedCentral
16.
go back to reference Galli S, Jahn O, Hitt R, Hesse D, Opitz L, Plessmann U, Urlaub H, Poderoso JJ, Jares-Erijman EA, Jovin TM (2009) A new paradigm for MAPK: structural interactions of hERK1 with mitochondria in HeLa cells 4:7541. doi:10.1371/journal.pone.0007541 Galli S, Jahn O, Hitt R, Hesse D, Opitz L, Plessmann U, Urlaub H, Poderoso JJ, Jares-Erijman EA, Jovin TM (2009) A new paradigm for MAPK: structural interactions of hERK1 with mitochondria in HeLa cells 4:7541. doi:10.​1371/​journal.​pone.​0007541
17.
go back to reference García N, Zazueta C, Martínez-Abundis E, Pavón N, Chávez E (2009) Cyclosporin A is unable to inhibit carboxyatractyloside-induced permeability transition in aged mitochondria. Comp Biochem Physiol C Toxicol Pharmacol 149:374–381. doi:10.1016/j.cbpc.2008.09.006 CrossRefPubMed García N, Zazueta C, Martínez-Abundis E, Pavón N, Chávez E (2009) Cyclosporin A is unable to inhibit carboxyatractyloside-induced permeability transition in aged mitochondria. Comp Biochem Physiol C Toxicol Pharmacol 149:374–381. doi:10.​1016/​j.​cbpc.​2008.​09.​006 CrossRefPubMed
18.
go back to reference García-Niño WR, Tapia E, Zazueta C, Zatarain-Barrón ZL, Hernández-Pando R, Vega-García CC, Pedraza-Chaverrí J (2013) Curcumin pretreatment prevents potassium dichromate-induced hepatotoxicity, oxidative stress, decreased respiratory complex I activity, and membrane permeability transition pore opening. Evid Based Complement Altern Med 2013:424692. doi:10.1155/2013/424692 CrossRef García-Niño WR, Tapia E, Zazueta C, Zatarain-Barrón ZL, Hernández-Pando R, Vega-García CC, Pedraza-Chaverrí J (2013) Curcumin pretreatment prevents potassium dichromate-induced hepatotoxicity, oxidative stress, decreased respiratory complex I activity, and membrane permeability transition pore opening. Evid Based Complement Altern Med 2013:424692. doi:10.​1155/​2013/​424692 CrossRef
20.
go back to reference Hernández-Reséndiz S, Roldán FJ, Correa F, Martínez-Abundis E, Osorio-Valencia G, Ruíz-De-Jesús O, Alexánderson-Rosas E, Vigueras RM, Franco M, Zazueta C (2013) Postconditioning protects against reperfusion injury in hypertensive dilated cardiomyopathy by activating MEK/ERK1/2 signaling. J Card Fail 19:135–146. doi:10.1016/j.cardfail.2013.01.003 CrossRefPubMed Hernández-Reséndiz S, Roldán FJ, Correa F, Martínez-Abundis E, Osorio-Valencia G, Ruíz-De-Jesús O, Alexánderson-Rosas E, Vigueras RM, Franco M, Zazueta C (2013) Postconditioning protects against reperfusion injury in hypertensive dilated cardiomyopathy by activating MEK/ERK1/2 signaling. J Card Fail 19:135–146. doi:10.​1016/​j.​cardfail.​2013.​01.​003 CrossRefPubMed
23.
go back to reference Horikawa YT, Patel HH, Tsutsumi YM, Jennings MM, Kidd WK, Hagiwara Y, Ishikawa Y, Insel PA, Roth DM (2008) Caveolin-3 expression and caveolae are required for isoflurane-induced cardiac protection from hypoxia and ischemia/reperfusion injury. J Mol Cell Cardiol 44:123–130. doi:10.1016/j.yjmcc.2007.10.003 CrossRefPubMed Horikawa YT, Patel HH, Tsutsumi YM, Jennings MM, Kidd WK, Hagiwara Y, Ishikawa Y, Insel PA, Roth DM (2008) Caveolin-3 expression and caveolae are required for isoflurane-induced cardiac protection from hypoxia and ischemia/reperfusion injury. J Mol Cell Cardiol 44:123–130. doi:10.​1016/​j.​yjmcc.​2007.​10.​003 CrossRefPubMed
25.
go back to reference Kurian GA, Berenshtein E, Saada A, Chevion M (2012) Rat cardiac mitochondrial sub-populations show distinct features of oxidative phosphorylation during ischemia, reperfusion and ischemic preconditioning. Cell Physiol Biochem 30:83–94. doi:10.1159/000339043 CrossRefPubMed Kurian GA, Berenshtein E, Saada A, Chevion M (2012) Rat cardiac mitochondrial sub-populations show distinct features of oxidative phosphorylation during ischemia, reperfusion and ischemic preconditioning. Cell Physiol Biochem 30:83–94. doi:10.​1159/​000339043 CrossRefPubMed
27.
go back to reference Lesnefsky EJ, Chen Q, Slabe TJ, Stoll MS, Minkler PE, Hassan MO, Tandler Bernard, Hoppel CL (2007) Ischemia, rather than reperfusion, inhibits respiration through cytochrome oxidase in the isolated, perfused rabbit heart: role of cardiolipin. Am J Physiol Heart Circ Physiol 287:H258–H267. doi:10.1152/ajpheart.00348.2003 CrossRef Lesnefsky EJ, Chen Q, Slabe TJ, Stoll MS, Minkler PE, Hassan MO, Tandler Bernard, Hoppel CL (2007) Ischemia, rather than reperfusion, inhibits respiration through cytochrome oxidase in the isolated, perfused rabbit heart: role of cardiolipin. Am J Physiol Heart Circ Physiol 287:H258–H267. doi:10.​1152/​ajpheart.​00348.​2003 CrossRef
28.
go back to reference Lowry O, Rosebrough N, Farr A, Randall R (1951) Protein measurement with the folin phenol reagent. J Biol Chem 193:265–275PubMed Lowry O, Rosebrough N, Farr A, Randall R (1951) Protein measurement with the folin phenol reagent. J Biol Chem 193:265–275PubMed
31.
go back to reference Patel HH, Tsutsumi YM, Head BP, Niesman IR, Jennings M, Horikawa Y, Huang D, Moreno AL, Patel PM, Insel PA, Roth DM (2007) Mechanisms of cardiac protection from ischemia/reperfusion injury: a role for caveolae and caveolin-1. FASEB J 21:1565–1574. doi:10.1096/fj.06-7719com CrossRefPubMed Patel HH, Tsutsumi YM, Head BP, Niesman IR, Jennings M, Horikawa Y, Huang D, Moreno AL, Patel PM, Insel PA, Roth DM (2007) Mechanisms of cardiac protection from ischemia/reperfusion injury: a role for caveolae and caveolin-1. FASEB J 21:1565–1574. doi:10.​1096/​fj.​06-7719com CrossRefPubMed
32.
go back to reference Penna C, Perrelli MG, Tullio F, Angotti C, Camporeale A, Poli V, Pagliaro P (2013) Diazoxide postconditioning induces mitochondrial protein S-Nitrosylation and a redox-sensitive mitochondrial phosphorylation/translocation of RISK elements: no role for SAFE. Basic Res Cardiol 108:371. doi:10.1007/s00395-013-0371-z CrossRefPubMed Penna C, Perrelli MG, Tullio F, Angotti C, Camporeale A, Poli V, Pagliaro P (2013) Diazoxide postconditioning induces mitochondrial protein S-Nitrosylation and a redox-sensitive mitochondrial phosphorylation/translocation of RISK elements: no role for SAFE. Basic Res Cardiol 108:371. doi:10.​1007/​s00395-013-0371-z CrossRefPubMed
35.
go back to reference See Hoe LE, Schilling JM, Tarbit E, Kiessling CJ, Busija AR, Niesman IR, Du Toit E, Ashton KJ, Roth DM, Headrick JP, Patel HH, Peart JN (2014) Sarcolemmal cholesterol and caveolin-3 dependence of cardiac function, ischemic tolerance, and opioidergic cardioprotection. Am J Physiol Heart Circ Physiol 307:H895–H903. doi:10.1152/ajpheart.00081.2014 CrossRefPubMedPubMedCentral See Hoe LE, Schilling JM, Tarbit E, Kiessling CJ, Busija AR, Niesman IR, Du Toit E, Ashton KJ, Roth DM, Headrick JP, Patel HH, Peart JN (2014) Sarcolemmal cholesterol and caveolin-3 dependence of cardiac function, ischemic tolerance, and opioidergic cardioprotection. Am J Physiol Heart Circ Physiol 307:H895–H903. doi:10.​1152/​ajpheart.​00081.​2014 CrossRefPubMedPubMedCentral
37.
39.
45.
go back to reference Zhuang S, Kinsey GR, Yan Y, Han J, Schnellmann RG (2008) Extracellular signal-regulated kinase activation mediates mitochondrial dysfunction and necrosis induced by hydrogen peroxide in renal proximal tubular cells. J Pharmacol Exp Ther 325:732–740. doi:10.1124/jpet.108.136358 CrossRefPubMed Zhuang S, Kinsey GR, Yan Y, Han J, Schnellmann RG (2008) Extracellular signal-regulated kinase activation mediates mitochondrial dysfunction and necrosis induced by hydrogen peroxide in renal proximal tubular cells. J Pharmacol Exp Ther 325:732–740. doi:10.​1124/​jpet.​108.​136358 CrossRefPubMed
Metadata
Title
Cardioprotective kinase signaling to subsarcolemmal and interfibrillar mitochondria is mediated by caveolar structures
Authors
Wylly Ramsés García-Niño
Francisco Correa
Julia Isabel Rodríguez-Barrena
Juan Carlos León-Contreras
Mabel Buelna-Chontal
Elizabeth Soria-Castro
Rogelio Hernández-Pando
José Pedraza-Chaverri
Cecilia Zazueta
Publication date
01-03-2017
Publisher
Springer Berlin Heidelberg
Published in
Basic Research in Cardiology / Issue 2/2017
Print ISSN: 0300-8428
Electronic ISSN: 1435-1803
DOI
https://doi.org/10.1007/s00395-017-0607-4

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