Skip to main content
Erschienen in: Heart Failure Reviews 3-4/2007

01.12.2007

Connexin 43 in ischemic pre- and postconditioning

verfasst von: Rainer Schulz, Kerstin Boengler, Andreas Totzeck, Yukun Luo, David Garcia-Dorado, Gerd Heusch

Erschienen in: Heart Failure Reviews | Ausgabe 3-4/2007

Einloggen, um Zugang zu erhalten

Abstract

Connexin 43 (Cx43) is the predominant protein forming gap junctions and non-junctional hemichannels in ventricular myocardium, but Cx43 is also localized at the inner membrane of cardiomyocyte mitochondria. In cardiomyocytes, Cx43 is involved in the formation of reactive oxygen species, which are central to the signal transduction cascade of ischemic preconditioning’s protection. Accordingly, genetically-induced or age-related loss of Cx43 abolishes infarct size reduction by ischemic preconditioning. Similarly, mitochondrial import inhibition of Cx43 completely blocks infarct size reduction by pharmacological preconditioning with diazoxide. In contrast to its importance for preconditioning-induced cardioprotection, Cx43 is not important for infarct size reduction by ischemic postconditioning. In summary, Cx43––especially Cx43 localized in mitochondria––appears to be one key element of the signal transduction cascade of the protection by preconditioning.
Literatur
1.
Zurück zum Zitat Sohl G, Willecke K (2004) Gap junctions and the connexin protein family. Cardiovasc Res 62:228–232PubMedCrossRef Sohl G, Willecke K (2004) Gap junctions and the connexin protein family. Cardiovasc Res 62:228–232PubMedCrossRef
2.
Zurück zum Zitat van Veen TA, van Rijen HV, Jongsma HJ (2006) Physiology of cardiovascular gap junctions. Adv Cardiol 42:18–40PubMedCrossRef van Veen TA, van Rijen HV, Jongsma HJ (2006) Physiology of cardiovascular gap junctions. Adv Cardiol 42:18–40PubMedCrossRef
3.
Zurück zum Zitat Delmar M, Coombs W, Sorgen P, Duffy HS, Taffet SM (2004) Structural bases for the chemical regulation of connexin43 channels. Cardiovasc Res 62:268–275PubMedCrossRef Delmar M, Coombs W, Sorgen P, Duffy HS, Taffet SM (2004) Structural bases for the chemical regulation of connexin43 channels. Cardiovasc Res 62:268–275PubMedCrossRef
4.
Zurück zum Zitat King TJ, Lampe PD (2005) Temporal regulation of connexin phosphorylation in embryonic and adult tissues. Biochim Biophys Acta 1719:24–35PubMedCrossRef King TJ, Lampe PD (2005) Temporal regulation of connexin phosphorylation in embryonic and adult tissues. Biochim Biophys Acta 1719:24–35PubMedCrossRef
5.
Zurück zum Zitat Veenstra RD, Wang HZ, Beblo DA et al (1995) Selectivity of connexin-specific gap junctions does not correlate with channel conductance. Circ Res 77:1156–1165PubMed Veenstra RD, Wang HZ, Beblo DA et al (1995) Selectivity of connexin-specific gap junctions does not correlate with channel conductance. Circ Res 77:1156–1165PubMed
6.
Zurück zum Zitat Saez JC, Berthoud VM, Branes MC, Martinez AD, Beyer EC (2003) Plasma membrane channels formed by connexins: their regulation and functions. Physiol Rev 83:1359–1400PubMed Saez JC, Berthoud VM, Branes MC, Martinez AD, Beyer EC (2003) Plasma membrane channels formed by connexins: their regulation and functions. Physiol Rev 83:1359–1400PubMed
7.
Zurück zum Zitat Spray DC, Burt JM (1990) Structure-activity relations of the cardiac gap junction channel. Am J Physiol 258:C195–C205PubMed Spray DC, Burt JM (1990) Structure-activity relations of the cardiac gap junction channel. Am J Physiol 258:C195–C205PubMed
8.
Zurück zum Zitat Quist AP, Rhee SK, Lin H, Lal R (2000) Physiological role of gap-junctional hemichannels. Extracellular calcium-dependent isosmotic volume regulation. J Cell Biol 148:1063–1074PubMedCrossRef Quist AP, Rhee SK, Lin H, Lal R (2000) Physiological role of gap-junctional hemichannels. Extracellular calcium-dependent isosmotic volume regulation. J Cell Biol 148:1063–1074PubMedCrossRef
9.
Zurück zum Zitat De MA, Vega VL, Contreras JE (2002) Gap junctions, homeostasis, and injury. J Cell Physiol 191:269–282CrossRef De MA, Vega VL, Contreras JE (2002) Gap junctions, homeostasis, and injury. J Cell Physiol 191:269–282CrossRef
10.
Zurück zum Zitat Plotkin LI, Manolagas SC, Bellido T (2002) Transduction of cell survival signals by connexin-43 hemichannels. J Biol Chem 277:8648–8657PubMedCrossRef Plotkin LI, Manolagas SC, Bellido T (2002) Transduction of cell survival signals by connexin-43 hemichannels. J Biol Chem 277:8648–8657PubMedCrossRef
11.
Zurück zum Zitat Saez JC, Retamal MA, Basilio D, Bukauskas FF, Bennett MV (2005) Connexin-based gap junction hemichannels: gating mechanisms. Biochim Biophys Acta 1711:215–224PubMedCrossRef Saez JC, Retamal MA, Basilio D, Bukauskas FF, Bennett MV (2005) Connexin-based gap junction hemichannels: gating mechanisms. Biochim Biophys Acta 1711:215–224PubMedCrossRef
12.
Zurück zum Zitat Schulz R, Heusch G (2004) Connexin 43 and ischemic preconditioning. Cardiovasc Res 62:335–344PubMedCrossRef Schulz R, Heusch G (2004) Connexin 43 and ischemic preconditioning. Cardiovasc Res 62:335–344PubMedCrossRef
13.
Zurück zum Zitat Lampe PD, TenBroek EM, Burt JM, Kurata WE, Johnson RG, Lau AF (2000) Phosphorylation of connexin43 on serine368 by protein kinase C regulates gap junctional communication. J Cell Biol 149:1503–1512PubMedCrossRef Lampe PD, TenBroek EM, Burt JM, Kurata WE, Johnson RG, Lau AF (2000) Phosphorylation of connexin43 on serine368 by protein kinase C regulates gap junctional communication. J Cell Biol 149:1503–1512PubMedCrossRef
14.
Zurück zum Zitat Bao X, Reuss L, Altenberg GA (2004) Regulation of purified and reconstituted connexin 43 hemichannels by protein kinase C-mediated phosphorylation of Serine 368. J Biol Chem 279:20058–20066PubMedCrossRef Bao X, Reuss L, Altenberg GA (2004) Regulation of purified and reconstituted connexin 43 hemichannels by protein kinase C-mediated phosphorylation of Serine 368. J Biol Chem 279:20058–20066PubMedCrossRef
15.
Zurück zum Zitat Ek-Vitorin JF, King TJ, Heyman NS, Lampe PD, Burt JM (2006) Selectivity of connexin 43 channels is regulated through protein kinase C-dependent phosphorylation. Circ Res 98:1498–1505PubMedCrossRef Ek-Vitorin JF, King TJ, Heyman NS, Lampe PD, Burt JM (2006) Selectivity of connexin 43 channels is regulated through protein kinase C-dependent phosphorylation. Circ Res 98:1498–1505PubMedCrossRef
16.
Zurück zum Zitat Giepmans BN (2004) Gap junctions and connexin-interacting proteins. Cardiovasc Res 62:233–245PubMedCrossRef Giepmans BN (2004) Gap junctions and connexin-interacting proteins. Cardiovasc Res 62:233–245PubMedCrossRef
17.
Zurück zum Zitat Akiyama M, Ishida N, Ogawa T, Yogo K, Takeya T (2005) Molecular cloning and functional analysis of a novel Cx43 partner protein CIP150. Biochem Biophys Res Commun 335:1264–1271PubMedCrossRef Akiyama M, Ishida N, Ogawa T, Yogo K, Takeya T (2005) Molecular cloning and functional analysis of a novel Cx43 partner protein CIP150. Biochem Biophys Res Commun 335:1264–1271PubMedCrossRef
18.
Zurück zum Zitat Matsuda T, Fujio Y, Nariai T et al (2006) N-cadherin signals through Rac1 determine the localization of connexin 43 in cardiac myocytes. J Mol Cell Cardiol 40:495–502PubMedCrossRef Matsuda T, Fujio Y, Nariai T et al (2006) N-cadherin signals through Rac1 determine the localization of connexin 43 in cardiac myocytes. J Mol Cell Cardiol 40:495–502PubMedCrossRef
19.
Zurück zum Zitat Schulz R, Gres P, Skyschally A et al (2003) Ischemic preconditioning preserves connexin 43 phosphorylation during sustained ischemia in pig hearts in vivo. FASEB J 17:1355–1357PubMed Schulz R, Gres P, Skyschally A et al (2003) Ischemic preconditioning preserves connexin 43 phosphorylation during sustained ischemia in pig hearts in vivo. FASEB J 17:1355–1357PubMed
20.
Zurück zum Zitat John SA, Kondo R, Wang SY, Goldhaber JI, Weiss JN (1999) Connexin-43 hemichannels opened by metabolic inhibition. J Biol Chem 274:236–240PubMedCrossRef John SA, Kondo R, Wang SY, Goldhaber JI, Weiss JN (1999) Connexin-43 hemichannels opened by metabolic inhibition. J Biol Chem 274:236–240PubMedCrossRef
21.
Zurück zum Zitat Li F, Sugishita K, Su Z, Ueda I, Barry WH (2001) Activation of connexin-43 hemichannels can elevate [Ca(2+)]i and [Na(+)]i in rabbit ventricular myocytes during metabolic inhibition. J Mol Cell Cardiol 33:2145–2155PubMedCrossRef Li F, Sugishita K, Su Z, Ueda I, Barry WH (2001) Activation of connexin-43 hemichannels can elevate [Ca(2+)]i and [Na(+)]i in rabbit ventricular myocytes during metabolic inhibition. J Mol Cell Cardiol 33:2145–2155PubMedCrossRef
22.
Zurück zum Zitat Vetterlein F, Muhlfeld C, Cetegen C, Volkmann R, Schrader C, Hellige G (2006) Redistribution of connexin43 in regional acute ischemic myocardium: influence of ischemic preconditioning. Am J Physiol Heart Circ Physiol 291:H813–H819PubMedCrossRef Vetterlein F, Muhlfeld C, Cetegen C, Volkmann R, Schrader C, Hellige G (2006) Redistribution of connexin43 in regional acute ischemic myocardium: influence of ischemic preconditioning. Am J Physiol Heart Circ Physiol 291:H813–H819PubMedCrossRef
23.
Zurück zum Zitat Lampe PD, Cooper CD, King TJ, Burt JM (2006) Analysis of connexin43 phosphorylated at S325, S328 and S330 in normoxic and ischemic heart. J Cell Sci 119:3435–3442PubMedCrossRef Lampe PD, Cooper CD, King TJ, Burt JM (2006) Analysis of connexin43 phosphorylated at S325, S328 and S330 in normoxic and ischemic heart. J Cell Sci 119:3435–3442PubMedCrossRef
24.
Zurück zum Zitat Tansey EE, Kwaku KF, Hammer PE et al (2006) Reduction and redistribution of gap and adherens junction proteins after ischemia and reperfusion. Ann Thorac Surg 82:1472–1479PubMedCrossRef Tansey EE, Kwaku KF, Hammer PE et al (2006) Reduction and redistribution of gap and adherens junction proteins after ischemia and reperfusion. Ann Thorac Surg 82:1472–1479PubMedCrossRef
25.
Zurück zum Zitat Beardslee MA, Lerner DL, Tadros PN et al (2000) Dephosphorylation and intracellular redistribution of ventricular connexin43 during electrical uncoupling induced by ischemia. Circ Res 87:656–662PubMed Beardslee MA, Lerner DL, Tadros PN et al (2000) Dephosphorylation and intracellular redistribution of ventricular connexin43 during electrical uncoupling induced by ischemia. Circ Res 87:656–662PubMed
26.
Zurück zum Zitat Axelsen LN, Stahlhut M, Mohammed S et al (2006) Identification of ischemia-regulated phosphorylation sites in connexin43: a possible target for the antiarrhythmic peptide analogue rotigaptide (ZP123). J Mol Cell Cardiol 40:790–798PubMedCrossRef Axelsen LN, Stahlhut M, Mohammed S et al (2006) Identification of ischemia-regulated phosphorylation sites in connexin43: a possible target for the antiarrhythmic peptide analogue rotigaptide (ZP123). J Mol Cell Cardiol 40:790–798PubMedCrossRef
27.
Zurück zum Zitat Miura T, Ohnuma Y, Kuno A et al (2004) Protective role of gap junctions in preconditioning against myocardial infarction. Am J Physiol Heart Circ Physiol 286:H214–H221PubMedCrossRef Miura T, Ohnuma Y, Kuno A et al (2004) Protective role of gap junctions in preconditioning against myocardial infarction. Am J Physiol Heart Circ Physiol 286:H214–H221PubMedCrossRef
28.
Zurück zum Zitat Jain SK, Schuessler RB, Saffitz JE (2003) Mechanisms of delayed electrical uncoupling induced by ischemic preconditioning. Circ Res 92:1138–1144PubMedCrossRef Jain SK, Schuessler RB, Saffitz JE (2003) Mechanisms of delayed electrical uncoupling induced by ischemic preconditioning. Circ Res 92:1138–1144PubMedCrossRef
29.
Zurück zum Zitat Azzam EI, de Toledo SM, Little JB (2001) Direct evidence for the participation of gap junction-mediated intercellular communication in the transmission of damage signals from alpha-particle irradiated to nonirradiated cells. Proc Natl Acad Sci USA 98:473–478PubMedCrossRef Azzam EI, de Toledo SM, Little JB (2001) Direct evidence for the participation of gap junction-mediated intercellular communication in the transmission of damage signals from alpha-particle irradiated to nonirradiated cells. Proc Natl Acad Sci USA 98:473–478PubMedCrossRef
30.
Zurück zum Zitat Garcia-Dorado D, Rodriguez-Sinovas A, Ruiz-Meana M (2004) Gap junction-mediated spread of cell injury and death during myocardial ischemia-reperfusion. Cardiovasc Res 61:386–401PubMedCrossRef Garcia-Dorado D, Rodriguez-Sinovas A, Ruiz-Meana M (2004) Gap junction-mediated spread of cell injury and death during myocardial ischemia-reperfusion. Cardiovasc Res 61:386–401PubMedCrossRef
31.
Zurück zum Zitat Li G, Whittaker P, Yao M, Kloner RA, Przyklenk K (2002) The gap junction uncoupler heptanol abrogates infarct size reduction with preconditioning in mouse hearts. Cardiovasc Pathol 11:158–165PubMedCrossRef Li G, Whittaker P, Yao M, Kloner RA, Przyklenk K (2002) The gap junction uncoupler heptanol abrogates infarct size reduction with preconditioning in mouse hearts. Cardiovasc Pathol 11:158–165PubMedCrossRef
32.
Zurück zum Zitat Schwanke U, Konietzka I, Duschin A, Li X, Schulz R, Heusch G (2002) No ischemic preconditioning in heterozygous connexin43-deficient mice. Am J Physiol Heart Circ Physiol 283:H1740–H1742PubMed Schwanke U, Konietzka I, Duschin A, Li X, Schulz R, Heusch G (2002) No ischemic preconditioning in heterozygous connexin43-deficient mice. Am J Physiol Heart Circ Physiol 283:H1740–H1742PubMed
33.
Zurück zum Zitat Schwanke U, Li X, Schulz R, Heusch G (2003) No ischemic preconditioning in heterozygous connexin 43-deficient mice––a further in vivo study. Basic Res Cardiol 98:181–182PubMed Schwanke U, Li X, Schulz R, Heusch G (2003) No ischemic preconditioning in heterozygous connexin 43-deficient mice––a further in vivo study. Basic Res Cardiol 98:181–182PubMed
34.
Zurück zum Zitat Li X, Heinzel FR, Boengler K, Schulz R, Heusch G (2004) Role of connexin 43 in ischemic preconditioning does not involve intercellular communication through gap junctions. J Mol Cell Cardiol 36:161–163PubMedCrossRef Li X, Heinzel FR, Boengler K, Schulz R, Heusch G (2004) Role of connexin 43 in ischemic preconditioning does not involve intercellular communication through gap junctions. J Mol Cell Cardiol 36:161–163PubMedCrossRef
35.
Zurück zum Zitat Dang X, Doble BW, Kardami E (2003) The carboxy-tail of connexin-43 localizes to the nucleus and inhibits cell growth. Mol Cell Biochem 242:35–38PubMedCrossRef Dang X, Doble BW, Kardami E (2003) The carboxy-tail of connexin-43 localizes to the nucleus and inhibits cell growth. Mol Cell Biochem 242:35–38PubMedCrossRef
36.
Zurück zum Zitat Li H, Brodsky S, Kumari S et al (2002) Paradoxical overexpression and translocation of connexin43 in homocysteine-treated endothelial cells. Am J Physiol Heart Circ Physiol 282:H2124–H2133PubMed Li H, Brodsky S, Kumari S et al (2002) Paradoxical overexpression and translocation of connexin43 in homocysteine-treated endothelial cells. Am J Physiol Heart Circ Physiol 282:H2124–H2133PubMed
37.
Zurück zum Zitat Boengler K, Dodoni G, Rodriguez-Sinovas A et al (2005) Connexin 43 in cardiomyocyte mitochondria and its increase by ischemic preconditioning. Cardiovasc Res 67:234–244PubMedCrossRef Boengler K, Dodoni G, Rodriguez-Sinovas A et al (2005) Connexin 43 in cardiomyocyte mitochondria and its increase by ischemic preconditioning. Cardiovasc Res 67:234–244PubMedCrossRef
38.
Zurück zum Zitat O’Rourke B (2004) Evidence for mitochondrial K+ channels and their role in cardioprotection. Circ Res 94:420–432PubMedCrossRef O’Rourke B (2004) Evidence for mitochondrial K+ channels and their role in cardioprotection. Circ Res 94:420–432PubMedCrossRef
39.
Zurück zum Zitat Halestrap AP, Clarke SJ, Javadov SA (2004) Mitochondrial permeability transition pore opening during myocardial reperfusion––a target for cardioprotection. Cardiovasc Res 61:372–385PubMedCrossRef Halestrap AP, Clarke SJ, Javadov SA (2004) Mitochondrial permeability transition pore opening during myocardial reperfusion––a target for cardioprotection. Cardiovasc Res 61:372–385PubMedCrossRef
40.
Zurück zum Zitat Murphy E (2004) Primary and secondary signaling pathways in early preconditioning that converge on the mitochondria to produce cardioprotection. Circ Res 94:7–16PubMedCrossRef Murphy E (2004) Primary and secondary signaling pathways in early preconditioning that converge on the mitochondria to produce cardioprotection. Circ Res 94:7–16PubMedCrossRef
41.
Zurück zum Zitat Boengler K, Gres P, Cabestrero A et al (2006) Prevention of the ischemia-induced decrease in mitochondrial Tom20 content by ischemic preconditioning. J Mol Cell Cardiol 41:426–430PubMedCrossRef Boengler K, Gres P, Cabestrero A et al (2006) Prevention of the ischemia-induced decrease in mitochondrial Tom20 content by ischemic preconditioning. J Mol Cell Cardiol 41:426–430PubMedCrossRef
42.
Zurück zum Zitat Rodriguez-Sinovas A, Boengler K, Cabestrero A et al (2006) Translocation of connexin 43 to the inner mitochondrial membrane of cardiomyocytes through the heat shock protein 90-dependent TOM pathway and its importance for cardioprotection. Circ Res 99:93–101PubMedCrossRef Rodriguez-Sinovas A, Boengler K, Cabestrero A et al (2006) Translocation of connexin 43 to the inner mitochondrial membrane of cardiomyocytes through the heat shock protein 90-dependent TOM pathway and its importance for cardioprotection. Circ Res 99:93–101PubMedCrossRef
43.
44.
Zurück zum Zitat Schulz R, Cohen MV, Behrends M, Downey JM, Heusch G (2001) Signal transduction of ischemic preconditioning. Cardiovasc Res 52:181–198PubMedCrossRef Schulz R, Cohen MV, Behrends M, Downey JM, Heusch G (2001) Signal transduction of ischemic preconditioning. Cardiovasc Res 52:181–198PubMedCrossRef
45.
Zurück zum Zitat Yellon DM, Downey JM (2003) Preconditioning the myocardium: from cellular physiology to clinical cardiology. Physiol Rev 83:1113–1151PubMed Yellon DM, Downey JM (2003) Preconditioning the myocardium: from cellular physiology to clinical cardiology. Physiol Rev 83:1113–1151PubMed
46.
Zurück zum Zitat Pain T, Yang XM, Critz SD et al (2000) Opening of mitochondrial K(ATP) channels triggers the preconditioned state by generating free radicals. Circ Res 87:460–466PubMed Pain T, Yang XM, Critz SD et al (2000) Opening of mitochondrial K(ATP) channels triggers the preconditioned state by generating free radicals. Circ Res 87:460–466PubMed
47.
Zurück zum Zitat Heinzel FR, Luo Y, Li X et al (2005) Impairment of diazoxide-induced formation of reactive oxygen species and loss of cardioprotection in connexin 43 deficient mice. Circ Res 97:583–586PubMedCrossRef Heinzel FR, Luo Y, Li X et al (2005) Impairment of diazoxide-induced formation of reactive oxygen species and loss of cardioprotection in connexin 43 deficient mice. Circ Res 97:583–586PubMedCrossRef
48.
Zurück zum Zitat Tsang A, Hausenloy DJ, Mocanu MM, Yellon DM (2004) Postconditioning: a form of “modified reperfusion” protects the myocardium by activating the phosphatidylinositol 3-kinase-Akt pathway. Circ Res 95:230–232PubMedCrossRef Tsang A, Hausenloy DJ, Mocanu MM, Yellon DM (2004) Postconditioning: a form of “modified reperfusion” protects the myocardium by activating the phosphatidylinositol 3-kinase-Akt pathway. Circ Res 95:230–232PubMedCrossRef
49.
Zurück zum Zitat Bopassa JC, Ferrera R, Gateau-Roesch O, Couture-Lepetit E, Ovize M (2006) PI 3-kinase regulates the mitochondrial transition pore in controlled reperfusion and postconditioning. Cardiovasc Res 69:178–185PubMedCrossRef Bopassa JC, Ferrera R, Gateau-Roesch O, Couture-Lepetit E, Ovize M (2006) PI 3-kinase regulates the mitochondrial transition pore in controlled reperfusion and postconditioning. Cardiovasc Res 69:178–185PubMedCrossRef
50.
Zurück zum Zitat Darling CE, Jiang R, Maynard M, Whittaker P, Vinten-Johansen J, Przyklenk K (2005) Postconditioning via stuttering reperfusion limits myocardial infarct size in rabbit hearts: role of ERK1/2. Am J Physiol Heart Circ Physiol 289:H1618–H1626PubMedCrossRef Darling CE, Jiang R, Maynard M, Whittaker P, Vinten-Johansen J, Przyklenk K (2005) Postconditioning via stuttering reperfusion limits myocardial infarct size in rabbit hearts: role of ERK1/2. Am J Physiol Heart Circ Physiol 289:H1618–H1626PubMedCrossRef
51.
Zurück zum Zitat Yang XM, Philipp S, Downey JM, Cohen MV (2005) Postconditioning’s protection is not dependent on circulating blood factors or cells but involves adenosine receptors and requires PI3-kinase and guanylyl cyclase activation. Basic Res Cardiol 100:57–63PubMedCrossRef Yang XM, Philipp S, Downey JM, Cohen MV (2005) Postconditioning’s protection is not dependent on circulating blood factors or cells but involves adenosine receptors and requires PI3-kinase and guanylyl cyclase activation. Basic Res Cardiol 100:57–63PubMedCrossRef
52.
Zurück zum Zitat Heusch G, Buchert A, Feldhaus S, Schulz R (2006) No loss of cardioprotection by postconditioning in connexin 43-deficient mice. Basic Res Cardiol 101:354–356PubMedCrossRef Heusch G, Buchert A, Feldhaus S, Schulz R (2006) No loss of cardioprotection by postconditioning in connexin 43-deficient mice. Basic Res Cardiol 101:354–356PubMedCrossRef
53.
Zurück zum Zitat Kin H, Zhao ZQ, Sun HY et al (2004) Postconditioning attenuates myocardial ischemia-reperfusion injury by inhibiting events in the early minutes of reperfusion. Cardiovasc Res 62:74–85PubMedCrossRef Kin H, Zhao ZQ, Sun HY et al (2004) Postconditioning attenuates myocardial ischemia-reperfusion injury by inhibiting events in the early minutes of reperfusion. Cardiovasc Res 62:74–85PubMedCrossRef
54.
Zurück zum Zitat Kin H, Zatta AJ, Lofye MT et al (2005) Postconditioning reduces infarct size via adenosine receptor activation by endogenous adenosine. Cardiovasc Res 67:124–133PubMedCrossRef Kin H, Zatta AJ, Lofye MT et al (2005) Postconditioning reduces infarct size via adenosine receptor activation by endogenous adenosine. Cardiovasc Res 67:124–133PubMedCrossRef
55.
Zurück zum Zitat Tang XL, Sato H, Tiwari S et al (2006) Cardioprotection by postconditioning in conscious rats is limited to coronary occlusions <45 minutes. Am J Physiol Heart Circ Physiol 291:H2308–H2317PubMedCrossRef Tang XL, Sato H, Tiwari S et al (2006) Cardioprotection by postconditioning in conscious rats is limited to coronary occlusions <45 minutes. Am J Physiol Heart Circ Physiol 291:H2308–H2317PubMedCrossRef
56.
Zurück zum Zitat Zatta AJ, Kin H, Lee G et al (2006) Infarct-sparing effect of myocardial postconditioning is dependent on protein kinase C signalling. Cardiovasc Res 70: 315–324PubMedCrossRef Zatta AJ, Kin H, Lee G et al (2006) Infarct-sparing effect of myocardial postconditioning is dependent on protein kinase C signalling. Cardiovasc Res 70: 315–324PubMedCrossRef
57.
Zurück zum Zitat Yang XM, Proctor JB, Cui L, Krieg T, Downey JM, Cohen MV (2004) Multiple, brief coronary occlusions during early reperfusion protect rabbit hearts by targeting cell signaling pathways. J Am Coll Cardiol 44:1103–1110PubMedCrossRef Yang XM, Proctor JB, Cui L, Krieg T, Downey JM, Cohen MV (2004) Multiple, brief coronary occlusions during early reperfusion protect rabbit hearts by targeting cell signaling pathways. J Am Coll Cardiol 44:1103–1110PubMedCrossRef
58.
Zurück zum Zitat Argaud L, Gateau-Roesch O, Raisky O, Loufouat J, Robert D, Ovize M (2005) Postconditioning inhibits mitochondrial permeability transition. Circulation 111:194–197PubMedCrossRef Argaud L, Gateau-Roesch O, Raisky O, Loufouat J, Robert D, Ovize M (2005) Postconditioning inhibits mitochondrial permeability transition. Circulation 111:194–197PubMedCrossRef
59.
Zurück zum Zitat Chiari PC, Bienengraeber MW, Pagel PS, Krolikowski JG, Kersten JR, Warltier DC (2005) Isoflurane protects against myocardial infarction during early reperfusion by activation of phosphatidylinositol-3-kinase signal transduction: evidence for anesthetic-induced postconditioning in rabbits. Anesthesiology 102:102–109PubMedCrossRef Chiari PC, Bienengraeber MW, Pagel PS, Krolikowski JG, Kersten JR, Warltier DC (2005) Isoflurane protects against myocardial infarction during early reperfusion by activation of phosphatidylinositol-3-kinase signal transduction: evidence for anesthetic-induced postconditioning in rabbits. Anesthesiology 102:102–109PubMedCrossRef
60.
Zurück zum Zitat Couvreur N, Lucats L, Tissier R, Bize A, Berdeaux A, Ghaleh B (2006) Differential effects of postconditioning on myocardial stunning and infarction: a study in conscious dogs and anesthetized rabbits. Am J Physiol Heart Circ Physiol 291:H1345–H1350PubMedCrossRef Couvreur N, Lucats L, Tissier R, Bize A, Berdeaux A, Ghaleh B (2006) Differential effects of postconditioning on myocardial stunning and infarction: a study in conscious dogs and anesthetized rabbits. Am J Physiol Heart Circ Physiol 291:H1345–H1350PubMedCrossRef
61.
Zurück zum Zitat Philipp S, Yang XM, Cui L, Davis AM, Downey JM, Cohen MV (2006) Postconditioning protects rabbit hearts through a protein kinase C-adenosine A2b receptor cascade. Cardiovasc Res 70:308–314PubMedCrossRef Philipp S, Yang XM, Cui L, Davis AM, Downey JM, Cohen MV (2006) Postconditioning protects rabbit hearts through a protein kinase C-adenosine A2b receptor cascade. Cardiovasc Res 70:308–314PubMedCrossRef
62.
Zurück zum Zitat Zhao ZQ, Corvera JS, Halkos ME et al (2003) Inhibition of myocardial injury by ischemic postconditioning during reperfusion: comparison with ischemic preconditioning. Am J Physiol Heart Circ Physiol 285:H579–H588PubMed Zhao ZQ, Corvera JS, Halkos ME et al (2003) Inhibition of myocardial injury by ischemic postconditioning during reperfusion: comparison with ischemic preconditioning. Am J Physiol Heart Circ Physiol 285:H579–H588PubMed
63.
Zurück zum Zitat Halkos ME, Kerendi F, Corvera JS et al (2004) Myocardial protection with postconditioning is not enhanced by ischemic preconditioning. Ann Thorac Surg 78:961–969PubMedCrossRef Halkos ME, Kerendi F, Corvera JS et al (2004) Myocardial protection with postconditioning is not enhanced by ischemic preconditioning. Ann Thorac Surg 78:961–969PubMedCrossRef
64.
Zurück zum Zitat Iliodromitis EK, Georgiadis M, Cohen MV, Downey JM, Bofilis E, Kremastinos DT (2006) Protection from postconditioning depends on the number of short ischemic insults in anesthetized pigs. Basic Res Cardiol 101:502–507PubMedCrossRef Iliodromitis EK, Georgiadis M, Cohen MV, Downey JM, Bofilis E, Kremastinos DT (2006) Protection from postconditioning depends on the number of short ischemic insults in anesthetized pigs. Basic Res Cardiol 101:502–507PubMedCrossRef
65.
Zurück zum Zitat Staat P, Rioufol G, Piot C et al (2005) Postconditioning the human heart. Circulation 112:2143–2148PubMedCrossRef Staat P, Rioufol G, Piot C et al (2005) Postconditioning the human heart. Circulation 112:2143–2148PubMedCrossRef
66.
Zurück zum Zitat Valen G, Vaage J (2005) Pre- and postconditioning during cardiac surgery. Basic Res Cardiol 100:179–186PubMedCrossRef Valen G, Vaage J (2005) Pre- and postconditioning during cardiac surgery. Basic Res Cardiol 100:179–186PubMedCrossRef
67.
Zurück zum Zitat Vinten-Johansen J, Yellon DM, Opie LH (2005) Postconditioning: a simple, clinically applicable procedure to improve revascularization in acute myocardial infarction. Circulation 112:2085–2088PubMedCrossRef Vinten-Johansen J, Yellon DM, Opie LH (2005) Postconditioning: a simple, clinically applicable procedure to improve revascularization in acute myocardial infarction. Circulation 112:2085–2088PubMedCrossRef
68.
Zurück zum Zitat Kloner RA, Rezkalla SH (2006) Preconditioning, postconditioning, their application to clinical cardiology. Cardiovasc Res 70:297–307PubMedCrossRef Kloner RA, Rezkalla SH (2006) Preconditioning, postconditioning, their application to clinical cardiology. Cardiovasc Res 70:297–307PubMedCrossRef
69.
Zurück zum Zitat Ramzy D, Rao V, Weisel RD (2006) Clinical applicability of preconditioning, postconditioning: the cardiothoracic surgeons’s view. Cardiovasc Res 70:174–180PubMedCrossRef Ramzy D, Rao V, Weisel RD (2006) Clinical applicability of preconditioning, postconditioning: the cardiothoracic surgeons’s view. Cardiovasc Res 70:174–180PubMedCrossRef
70.
Zurück zum Zitat Yellon DM, Opie LH (2006) Postconditioning for protection of the infarcting heart. Lancet 367:456–458PubMedCrossRef Yellon DM, Opie LH (2006) Postconditioning for protection of the infarcting heart. Lancet 367:456–458PubMedCrossRef
71.
Zurück zum Zitat Fantinelli JC, Mosca SM (2007) Comparative effects of ischemic pre and postconditioning on ischemia-reperfusion injury in spontaneously hypertensive rats (SHR). Mol Cell Biochem 296:45–51PubMedCrossRef Fantinelli JC, Mosca SM (2007) Comparative effects of ischemic pre and postconditioning on ischemia-reperfusion injury in spontaneously hypertensive rats (SHR). Mol Cell Biochem 296:45–51PubMedCrossRef
72.
73.
Zurück zum Zitat Tsang A, Hausenloy DJ, Yellon DM (2005) Myocardial postconditioning: reperfusion injury revisited. Am J Physiol Heart Circ Physiol 289:H2–H7PubMedCrossRef Tsang A, Hausenloy DJ, Yellon DM (2005) Myocardial postconditioning: reperfusion injury revisited. Am J Physiol Heart Circ Physiol 289:H2–H7PubMedCrossRef
74.
Zurück zum Zitat Vinten-Johansen J, Zhao ZQ, Zatta AJ, Kin H, Halkos ME, Kerendi F (2005) Postconditioning––a new link in nature’s armor against myocardial ischemia-reperfusion injury. Basic Res Cardiol 100:295–310PubMedCrossRef Vinten-Johansen J, Zhao ZQ, Zatta AJ, Kin H, Halkos ME, Kerendi F (2005) Postconditioning––a new link in nature’s armor against myocardial ischemia-reperfusion injury. Basic Res Cardiol 100:295–310PubMedCrossRef
75.
Zurück zum Zitat Crisostomo PR, Wairiuko GM, Wang M, Tsai BM, Morrell ED, Meldrum DR (2006) Preconditioning versus postconditioning: mechanisms and therapeutic potentials. J Am Coll Surg 202:797–812PubMedCrossRef Crisostomo PR, Wairiuko GM, Wang M, Tsai BM, Morrell ED, Meldrum DR (2006) Preconditioning versus postconditioning: mechanisms and therapeutic potentials. J Am Coll Surg 202:797–812PubMedCrossRef
76.
Zurück zum Zitat Garcia-Dorado D, Vinten-Johansen J, Piper HM (2006) Bringing preconditioning and postconditioning into focus. Cardiovasc Res 70:167–169PubMedCrossRef Garcia-Dorado D, Vinten-Johansen J, Piper HM (2006) Bringing preconditioning and postconditioning into focus. Cardiovasc Res 70:167–169PubMedCrossRef
77.
Zurück zum Zitat Schwartz LM, Lagranha CJ (2006) Ischemic postconditioning during reperfusion activates Akt and ERK without protecting against lethal myocardial ischemia-reperfusion injury in pigs. Am J Physiol Heart Circ Physiol 290:H1011–H1018PubMedCrossRef Schwartz LM, Lagranha CJ (2006) Ischemic postconditioning during reperfusion activates Akt and ERK without protecting against lethal myocardial ischemia-reperfusion injury in pigs. Am J Physiol Heart Circ Physiol 290:H1011–H1018PubMedCrossRef
78.
Zurück zum Zitat Crisostomo PR, Wang M, Wairiuko GM, Terrell AM, Meldrum DR (2006) Postconditioning in females depends on injury severity. J Surg Res 134:342–347PubMedCrossRef Crisostomo PR, Wang M, Wairiuko GM, Terrell AM, Meldrum DR (2006) Postconditioning in females depends on injury severity. J Surg Res 134:342–347PubMedCrossRef
79.
Zurück zum Zitat Hausenloy DJ, Tsang A, Yellon DM (2005) The reperfusion injury salvage kinase pathway: a common target for both ischemic preconditioning and postconditioning. Trends Cardiovasc Med 15:69–75PubMedCrossRef Hausenloy DJ, Tsang A, Yellon DM (2005) The reperfusion injury salvage kinase pathway: a common target for both ischemic preconditioning and postconditioning. Trends Cardiovasc Med 15:69–75PubMedCrossRef
80.
Zurück zum Zitat Hausenloy DJ, Yellon DM (2006) Survival kinases in ischemic preconditioning and postconditioning. Cardiovasc Res 70:240–253PubMedCrossRef Hausenloy DJ, Yellon DM (2006) Survival kinases in ischemic preconditioning and postconditioning. Cardiovasc Res 70:240–253PubMedCrossRef
81.
Zurück zum Zitat Downey JM, Cohen MV (2005) We think we see a pattern emerging here. Circulation 111:120–121PubMedCrossRef Downey JM, Cohen MV (2005) We think we see a pattern emerging here. Circulation 111:120–121PubMedCrossRef
Metadaten
Titel
Connexin 43 in ischemic pre- and postconditioning
verfasst von
Rainer Schulz
Kerstin Boengler
Andreas Totzeck
Yukun Luo
David Garcia-Dorado
Gerd Heusch
Publikationsdatum
01.12.2007
Erschienen in
Heart Failure Reviews / Ausgabe 3-4/2007
Print ISSN: 1382-4147
Elektronische ISSN: 1573-7322
DOI
https://doi.org/10.1007/s10741-007-9032-3

Weitere Artikel der Ausgabe 3-4/2007

Heart Failure Reviews 3-4/2007 Zur Ausgabe

Foreword

Foreword

Die „Zehn Gebote“ des Endokarditis-Managements

30.04.2024 Endokarditis Leitlinie kompakt

Worauf kommt es beim Management von Personen mit infektiöser Endokarditis an? Eine Kardiologin und ein Kardiologe fassen die zehn wichtigsten Punkte der neuen ESC-Leitlinie zusammen.

Strenge Blutdruckeinstellung lohnt auch im Alter noch

30.04.2024 Arterielle Hypertonie Nachrichten

Ältere Frauen, die von chronischen Erkrankungen weitgehend verschont sind, haben offenbar die besten Chancen, ihren 90. Geburtstag zu erleben, wenn ihr systolischer Blutdruck < 130 mmHg liegt. Das scheint selbst für 80-Jährige noch zu gelten.

Sind Frauen die fähigeren Ärzte?

30.04.2024 Gendermedizin Nachrichten

Patienten, die von Ärztinnen behandelt werden, dürfen offenbar auf bessere Therapieergebnisse hoffen als Patienten von Ärzten. Besonders gilt das offenbar für weibliche Kranke, wie eine Studie zeigt.

Dihydropyridin-Kalziumantagonisten können auf die Nieren gehen

30.04.2024 Hypertonie Nachrichten

Im Vergleich zu anderen Blutdrucksenkern sind Kalziumantagonisten vom Diyhdropyridin-Typ mit einem erhöhten Risiko für eine Mikroalbuminurie und in Abwesenheit eines RAS-Blockers auch für ein terminales Nierenversagen verbunden.

Update Kardiologie

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.