In hyperthyroid rats octylguanidine protects the heart from reperfusion damage
详细信息    查看全文
  • 作者:Natalia Pavón (1)
    Alberto Aranda (2)
    Noemí García (1)
    Luz Hernández-Esquivel (1)
    Edmundo Chávez (1)
  • 关键词:Heart ; Ischemia ; Reperfusion ; Hyperthyroidism ; Octylguanidine
  • 刊名:Endocrine
  • 出版年:2009
  • 出版时间:April 2009
  • 年:2009
  • 卷:35
  • 期:2
  • 页码:158-165
  • 全文大小:426KB
  • 参考文献:1. K.A. Woeber, Thyrotoxicosis and the heart. N. Engl. J. Med. 327, 94-8 (1992) CrossRef
    2. I. Klein, G.S. Levey, The Cardiovascular System in Thyrotoxicosis, in / The Thyroid, 8th edn., ed. by L.E. Braveman, R.D. Utiger (Lippicott-Raven, Philadelphia, 2000), pp. 596-04
    3. T.M. Pillar, H.J. Seitz, Thyroid hormone and gene expression in the regulation of mitochondrial respiratory function. Eur. J. Endocrinol. 136, 231-39 (1997) CrossRef
    4. P. Venditti, S. Di Meo, Thyroid hormone-induced oxidative stress. Cell Mol. Life Sci. 63, 414-34 (2006) CrossRef
    5. U.M. Schmidt-Ott, D.D. Ascheim, Thyroid hormone and the heart failure. Curr. Heart Fail. Rep. 3, 114-19 (2006) CrossRef
    6. P. Venditti, A. Bari, L. Di Stefano, C. Agnisola, S. Di Meo, Effect of T3 treatment on the response to ischemia-reperfusion of heart preparations from sedentary and trained rats. Pflugers Arch. 455, 667-76 (2008) CrossRef
    7. P. Masullo, P. Venditti, C. Agnisola, S. Di Meo, Role of nitric oxide in the reperfusion induced injury in hyperthyroid rat hearts. Free Radic. Res. 32, 411-21 (2000) CrossRef
    8. Y. Kusana, M. Bernier, D.J. Hearse, Exacerbation of reperfusion arrhythmias by sudden oxidant stress. Circ. Res. 67, 481-89 (1990)
    9. N.S. Dhalla, L. Golfman, S. Takeda, N. Takeda, M. Nagano, Evidence of oxidative stress in acute ischemic heart disease: a brief review. Can. J. Cardiol. 15, 587-93 (1999)
    10. W.W. Brooks, C.H. Conrad, J.P. Morgan, Reperfusion induced arrhythmias following ischemia in intact rat heart: role of intracellular calcium. Cardiovasc. Res. 29, 536-42 (1995)
    11. G.J. García-Rivas, K. Carvajal, F. Correa, C. Zazueta, Ru360, a specific mitochondrial calcium uptake inhibitor, improves cardiac post ischemic functional recovery in rats in vivo. Brit. J. Pharm. 149, 1188-196 (2006) CrossRef
    12. A.P. Halestrap, S.J. Clarke, S.A. Javadov, Mitochondrial permeability transition pore opening during myocardial reperfusion—a target for cardioprotection. Cardiovasc. Res. 61, 372-85 (2004) CrossRef
    13. T. Wajima, S. Shimizu, T. Hirió, M. Ishii, Y. Kiuchi, Reduction of myocardial infarct size by tetrahydrobiopterin: possible involvement of mitochondrial KATP channels activation through nitric oxide production. J. Cardiovasc. Pharmacol. 47, 243-49 (2006) CrossRef
    14. E. Chávez, M. Franco, H. Reyes-Vivas, C. Zazueta, J. Ramírez, R. Carrillo, Hypothyroidism renders liver mitochondria resistant to the opening of membrane permeability transition pore. Biochim. Biophys. Acta 1407, 243-48 (1998)
    15. I. Bobadilla, M. Franco, D. Cruz, J. Zamora, S.G. Robles, E. Chávez, Hypothyroidism provides resistance to reperfusion injury following myocardium ischemia. Int. J. Biochem. Cell. Biol. 33, 499-06 (2001) CrossRef
    16. M. Schlame, K.Y. Hostetler, Cardiolipin synthase from mammalian mitochondria. Biochim. Biophys. Acta 1348, 207-13 (1997)
    17. K. Dummier, S. Muller, H.J. Seitz, Regulation of adenine nucleotide translocase and glycerol 3-phosphate dehydrogenase expression by thyroid hormones in different tissues. Biochem. J. 317, 913-18 (1996)
    18. S.G. Robles, M. Franco, C. Zazueta, N. García, F. Correa, G. García, E. Chávez, Thyroid hormone may induce changes in the concentration of the mitochondrial calcium uniporter. Comp. Biochem. Physiol. B Biochem. Mol. Biol. 135, 177-82 (2003) CrossRef
    19. V. Kalderon, O. Hermesh, J. Bar-Tana, Mitochondrial permeability transition is induced by in vivo thyroid hormone treatment. Endocrinology 136, 3552-556 (1995) CrossRef
    20. A.D. Toft, N.A. Boon, Thyroid disease and the heart. Heart 84, 455-66 (2000) CrossRef
    21. P. Venditti, C. Agnisola, S. Di Meo, Effect of ischemia-reperfusion on heart mitochondria from hyperthyroid rats. Cardiovasc. Res. 56, 76-5 (2002) CrossRef
    22. R.F. Castilho, A.J. Kowaltoski, A.E. Vercesi, 3,5,3-triiodothyronine induces mitochondrial permeability transition mediated by reactive oxygen species and membrane thiol oxidation. Arch. Biochem. Biophys. 354, 151-57 (1998) CrossRef
    23. A.S. Araujo, M.F. Ribeiro, A. Enzveiler, P. Schenkel, T.R. Fernández, W.A. Partada, M.C. Irigoyen, S. Llesuy, A. Belló-Klein, Myocardial antioxidant enzyme activities and concentration and glutathione metabolism in experimental hyperthyroidism. Mol. Cell. Endocrinol. 249, 133-39 (2006)
    24. F. Di Lisa, P. Bernardi, Mitochondria and ischemia-reperfusion injury of the heart: fixing a hole. Cardiovasc. Res. 70, 191-99 (2006) CrossRef
    25. P. Bernardi, Mitochondrial transport of cations: Channels, exchangers, and permeability transition. Physiol. Rev. 79, 1127-155 (1999)
    26. E. Chávez, A. Pe?a, C. Zazueta, J. Ramírez, N. García, R. Carrillo, Inactivation of mitochondrial permeability transition by octylguanidine and octylamine. J. Bioenerg. Biomembr. 32, 193-98 (2000) CrossRef
    27. E. Parra, D. Cruz, G. García, C. Zazueta, F. Correa, N. García, E. Chávez, Myocardial protective effect of octylguanidine against the damage induced by ischemia reperfusion in rat heart. Mol. Cell. Biochem. 269, 19-6 (2005) CrossRef
    28. M. Klingenberg, Molecular aspects of the adenine nucleotide carrier from mitochondria. Arch. Biochem. Biophys. 270, 1-4 (1989) CrossRef
    29. D. Arteaga, A. Odor, R.M. López, G. Contreras, J. Pichardo, E. García, A. Aranda, E. Chávez, Impairment by cyclosporin A of reperfusion-induced arrhythmias. Life Sci. 51, 1127-134 (1992) CrossRef
    30. F. Correa, V. Soto, C. Zazueta, Mitochondrial permeability transition relevance for apoptotic triggering in the post-ischemic heart. Int. J. Biochem. Cell. Biol. 39, 787-98 (2007) CrossRef
    31. L. Lanoye, P. Segers, V. Tchna-Sato, S. Rolin, J.M. Dogne, A. Guisen, B. Labernot, J. Hanson, T. Desaire, P. Verdonck, V. D’orio, P. Kolh, Cardiovascular control: cardiovascular haemodynamics and ventriculo-arterial coupling in an acute pig model of coronary ischemia-reperfusion. Exp. Phys. 92, 127-39 (2007) CrossRef
    32. S.Y. Ngo, H.C. Chew, When the storm passes unnoticed—a case series of thyroid hormone. Resuscitation 73, 485-90 (2007) CrossRef
    33. M. Wang, B.M. Tsai, P.R. Crisostomo, D.R. Meldrum, Tumor necrosis factor receptor 1 signaling resistance in the female myocardium during ischemia. Circulation 114, 1282-289 (2006) CrossRef
    34. G. Gallagher, S. Menzie, Y. Huang, C. Jackson, S.N. Hunyor, Regional cardiac dysfunction is associated with specific alterations in inflammatory cytokines and matrix metalloproteinases after acute myocardial infarction in sheep. Basic Res. Cardiol. 102, 63-2 (2007) CrossRef
    35. A. Siddiqi, J.P. Monson, D.F. Wood, G.M. Basser, J.M. Burrin, Serum cytokines in thyrotoxicosis. Clin. Endocrinol. Metab. 84, 435-39 (1999) CrossRef
    36. G. Hasko, D.G. Kuhgel, A. Marton, Z.H. Nemeth, E.A. Deitch, C. Szabó, Spermine differentially regulates the production of interleukin-12 p40 and interleukin-10 and suppresses the release of the helper 1 cytokine interferon-gamma. Shock 14, 144-49 (2000) CrossRef
    37. R. Phillips, H. Clarke, The preparation of alkylguanidines. J. Am. Chem. Soc. 45, 1755-757 (1923) CrossRef
    38. E. Chávez, F. Téllez, J. Pichardo, R. Milán, A. Cuellar, K. Carvajal, D. Cruz, On the protection by ketorolac of reperfusion-induced heart damage. Comp. Biochem. Physiol. 115C, 95-00 (1996)
    39. E.A. Palmieri, G. Benincasa, F. Di Rella, C. Casaburi, M.G. Monti, G. De Simona, L. Chiarotti, L. Palombini, C.B. Bruni, L. Sácala, A. Cittadini, Differential expression of TNF-α, IL-6, and IGF-1 by graded mechanical stress in normal rat myocardium. Am. J. Physiol. 282, H925–H934 (2002)
    40. F.J. Neumann, L. Ott, M. Gawaz, H. Holzaptel, M. Jochum, A. Schomig, Cardiac release of cytokines and inflammatory responses in acute myocardial infarction. Circulation 92, 748-55 (1995)
    41. O.H. Lowry, N.J. Rosebrough, A.L. Farr, R.J. Randal, Protein measurement with the folin phenol reagent. J. Biol. Chem. 193, 262-75 (1951)
  • 作者单位:Natalia Pavón (1)
    Alberto Aranda (2)
    Noemí García (1)
    Luz Hernández-Esquivel (1)
    Edmundo Chávez (1)

    1. Departamento de Bioquímica, Instituto Nacional de Cardiología, Ignacio Chávez, Juan Badiano # 1, Col. Sección XVI, Tlalpan, Mexico, D.F., 014080, México
    2. Departamento de Patología, Instituto Nacional de Cardiología, Ignacio Chávez, Mexico, D.F., 014080, México
文摘
Hyperthyroidism sensitizes the heart for reperfusion injury. As known, mitochondrial permeability transition underlies reperfusion heart damage. This study was undertaken to explore the protective effect of octylguanidine (OG), an inhibitor of permeability transition, on hearts from hyperthyroid rats subjected to ischemia/reperfusion. Hyperthyroidism was induced by a daily injection of 2?mg T3/kg body weight for 5?days. OG was injected at a dose of 5?mg/kg body weight. It was found that the amine protects against reperfusion-induced permeability transition, i.e., mitochondria from hyperthyroid rats, treated with OG, retained accumulated Ca2+, similarly to control mitochondria. OG maintained post reperfusion cardiac frequency in hyperthyroid rats at 429?±?16 in comparison to control and T3 treated rats (70?±?12 and 71?±?2, respectively). We also found that OG diminished the post reperfusion accumulation of IFNγ from 34.3?±?2.5 to 18.7?±?1.35, IL-6 from 38.5?±?4.5 to 15.1?±?0.12, IL-1 from 16.78?±?0.73 to 12.19?±?1.54, and TNFα from 45.05?±?3.14 to 29.85?±?4.3 (pg/50?μg myocardial tissue). It is concluded that OG inhibits the hypersensitivity of the hyperthyroid myocardium to undergo reperfusion damage due to its inhibitory action on the permeability transition pore.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700