Acceso abierto

Inhalation injury and burn trauma: an experimental investigation of oxidative stress and histopathology


Cite

[1] Rehberg S., Maybauer M., Enkhbaatar P., Maybauer D., Yamamoto Y. and Traber D.L. Pathophysiology, management and treatment of smoke inhalation injury. Expert Rev Respir Med, (2009); pp. 283–297. Search in Google Scholar

[2] Dubick M.A., Carden S.C. Jordan B.S., Paulette C. L. and David W M. Indices of antioxidant status in rats subjected to wood smoke inhalation and/or thermal injury. Toxicology, (2002); 1 (176), pp. 145-157. Search in Google Scholar

[3] Belli S., Ozgur B., Handan O., Suna T., Gülten K., Altug K., Hamdi K. and Haberal M. Protective role of simvastatin on lung damage caused by burn and cotton smoke inhalation in rats. Journal of Surgical Research, 2011; 167 (2), pp e283–e290. 10.1016/j.jss.2010.01.035Search in Google Scholar

[4] Ken M. and Andrew C. Acute inhalation injury. Emerg Med Clin N Am. (2003); 21, pp. 533–557. Search in Google Scholar

[5] Park M.S., Cancio L.C., Jordan B.S., Brinkley W.W., Rivera V.R. and Dubick M.A. Assessment of oxidative stress in lungs from sheep after inhalation of wood smoke. Toxicology, (2004); 15 (195), pp. 97. Search in Google Scholar

[6] Dinçer A., Hakan T., Lilüfer T., Handan Ç., Hakan Ö., Candan Ö., Selim A. Protective effect of trapidil against oxidative organ damage in burn injury. Burns, 2005:31 (7), pp859–865. 10.1016/j.burns.2005.04.013Search in Google Scholar

[7] Suzy A., Marc J., Percy B., Jeffrey H. and Serpil E. Increased glutathione and glutathione peroxidase in lungs of individuals with chronic beryllium disease. Am. J. Respir. Crit. Care Med. 1999; 159 (6), pp.1824-1829. Search in Google Scholar

[8] Horton J .W: Free radicals and lipid peroxidation mediated injury in burn trauma: the role of antioxidant therapy. Toxicology, (2003); 189 (1-2), pp. 75–88. Search in Google Scholar

[9] Katsumi S., Hiroaki N., Maret G., Daniel L. T., Motohiro N. Plasma and tissue vitamin E depletion in sheep with burn and smoke inhalation injury. Burns, 2008; 34 (8), pp. 1137–1141. 10.1016/j.burns.2008.01.015Search in Google Scholar

[10] Toon M., Maybauer M., Greenwood J., Maybauer D .and Fraser J. Management of acute smoke inhalation injury. Critical Care and Resuscitation, 2010; 12(1), pp. 53–61. Search in Google Scholar

[11] Xiaochen Q., Shizhao J., Junjie W., Hengyu L., Ting X., Bohan P., Shichu X. and Zhaofan X. The therapeutic efficacy of Ulinastatin for rats with smoking inhalation injury. International Immunopharmacology, 2012; 14 (3), pp. 289–295. 10.1016/j.intimp.2012.08.002Search in Google Scholar

[12] Zhu F., Qiu X., Wang J., Jin Y, Sun Y, Lv T. and Xia Z. A rat model of smoke inhalation injury. Inhal Toxicol, 2012; 24 , pp. 356–364. 10.3109/08958378.2012.673179Search in Google Scholar

[13] Meyer T.N. & Silva A.L. A standard burn model using rats. Acta Cirurgica Brasileira, 1999; 14(4), Available from URL: http://www.scielo.br/acb. 10.1590/S0102-86501999000400009Search in Google Scholar

[14] Gilpin D.A. Calculation of a new Meeh constant and experimental determination of burn size. Burns, 1996; 22, pp. 607. 10.1016/S0305-4179(96)00064-2Search in Google Scholar

[15] Buege A. & Aust S. Microsomal lipid peroxidation. Methods Enzymol, 1978; 52, pp. 302-310. 10.1016/S0076-6879(78)52032-6Search in Google Scholar

[16] Nebot C. Spectrophotometric assay of SOD activity based on the activated autoxidation of a tricyclic catechol. Analytical Biochemistry,1993; 214,pp. 442-451. 10.1006/abio.1993.1521Search in Google Scholar

[17] Lawrence R. A. & Burk R.F. Glutathione peroxidase activity in selenium-deficient rat liver. Biochem. Biophys. Res. Commun., 1976; 71, pp. 952–958. 10.1016/0006-291X(76)90747-6Search in Google Scholar

[18] Robert H. D. Smoke Inhalation Lung Injury: An Update. An open access journal. www.e-plasty.com. Last visited December, 2012. Search in Google Scholar

[19] Çetin C., Özyilmaz M., Bayçu C., . Köse A. and Karabağli Y. Effects of rolling inhibition on smoke inhalation injury. Burns, 2003; 29(4), pp. 307-314. 10.1016/S0305-4179(03)00005-6Search in Google Scholar

[20] Florea P. & Corbea C. Assessment of pulmonary dysfunction at large burnt. Doctoral thesis, 2009; University of medicine and pharmacy. CRAIOVA. Available at www.umfcv.ro. Search in Google Scholar

[21] Stewart R.J., Yamaguchi K.T., Knost P.M., Mason S.W., Roshdieh B.B., Samadani S. and Chang B.L. Effects of ibuprofen on pulmonary oedema in an animal smoke inhalation model. Burns, 1990; 16, pp. 409-413. 10.1016/0305-4179(90)90067-7Search in Google Scholar

[22] Guy J.S. & Peck M.D. Smoke inhalation injury: pulmonary implications. Respir. Care, 1999; 3, pp. 904–912. Search in Google Scholar

[23] Lee H., Greeley G. and Englande E. Transgenic overexpression of neuroglobin attenuates formation of smoke-inhalation-induced oxidative DNA damage, in vivo, in the mouse brain. Free Radical Biology and Medicine. 2011; 51 (12), pp. 2281–2287. Search in Google Scholar

[24] Nash G., Foley F.D. and Langlinais P.C. Pulmonary interstitial edema and hyaline membranes in adult burn patients. Electron microscopic observations. Hum Pathol. 1974; 5, pp. 149 10.1016/S0046-8177(74)80062-6Search in Google Scholar

[25] Ahn S.Y., Sugi K. and Talke P. Effect of allopurinol on smoke inhalation in the ovine model. J Appl Physiol. 1990; 68, pp. 228 10.1152/jappl.1990.68.1.2282312462Search in Google Scholar

[26] Hubbard G.B., Langlinais P.C. and Shimazu T. The morphology of smoke inhalation injury in sheep. J Trauma. 1991; 31, pp. 1477. Search in Google Scholar

[27] Gute D.C., Ishida T., Yarimizu K. and Korthuis RJ. Inflammatory responses to ischemia and reperfusion in skeletal muscle. Mol. Cell. Biol., (1998); 179, pp. 169–187. Search in Google Scholar

[28] Thom S.R., Mendiguren I., Winkle T.V., Fisher D. and Fisher A.B. Smoke inhalation with a concurrent systemic stress results in lung alveolar injury. Am. J. Respir. Crit. Care Med. (1994); 149, pp. 220–226. Search in Google Scholar

[29] LaLonde C., Nayak U., Hennigan J.and Demling R. Excessive liver oxidant stress causes mortality in response to burn injury combined with endotoxin and is prevented with antioxidants. J. Burn Care Rehabil. 1997a; 18, 192-197. Search in Google Scholar

[30] LaLonde C., Nayak U., Hennigan J. and Demling R. Plasma catalase and glutathione levels are decreased in response to inhalation injury. J. Burn Care Rehabil. 1997b; 18, 515-519. Search in Google Scholar

[31] Cancio L.C & Pruitt B.A. (2003): Inhalation injury “Ch.12” In: Basic and Clinical research in Military, Trauma, and Emergency Medicine edited by Tsokos G.C. & Atkins J. P: 329, Human press Inc., Totowa, London, NJ. Search in Google Scholar

[32] Rongjie Y., Xiaoling G ., Lin H., Zhixing Z., Huahua Z. The novel peptide PACAP-TAT with enhanced traversing ability attenuates the severe lung injury induced by repeated smoke inhalation. Peptides,2012; 38(1), pp. 142–149. 10.1016/j.peptides.2012.09.00522982609Search in Google Scholar

[33] Renée A.S., Teresa T. and Michael B.Z. Dairy attentuates oxidative and inflammatory stress in metabolic syndrome. Am J Clin Nutr. 2011; 94. pp. 422-430. 10.3945/ajcn.111.013342314272121715516Search in Google Scholar

[34] Mahaboob P. B. and Sujitha N. S. Chronic fluoride toxicity and myocardial damage: Antioxidant offered protection in second generation rats. Toxicol Int. 2011; 18(2).pp. 99–104. 10.4103/0971-6580.84260318363221976813Search in Google Scholar

[35] Papi A., Chicca M., Pandit A. and Caramori G. Oxidants and antioxidants \ Antioxidants, Nonenzymatic. Encyclopedia of Respiratory Medicine. 2006; pp. 266–271. 10.1016/B0-12-370879-6/00284-2Search in Google Scholar

[36] Angel C. Lipid peroxidation of membrane phospholipids generates hydroxy-alkenals and oxidized phospholipids active in physiological and/or pathological conditions. Chemistry and Physics of Lipids, 2009; 157(1), pp. 1–11. 10.1016/j.chemphyslip.2008.09.00418977338Search in Google Scholar

[37] Antoni A., Pedro T., Emilia F., Josep A. T., Alfredo C. and Antoni P. Antioxidant response to oxidative stress induced by exhaustive exercise. Physiology & Behavior, 2005; 84, pp.1 –7. 10.1016/j.physbeh.2004.07.03415642600Search in Google Scholar

[38] Simona J., Joško O. and Janja M. Molecular impact of glutathione peroxidases in antioxidant processes. Biochemia Medica 2008; 18(2):162-74. Search in Google Scholar

[39] Sung S. C., Min K., Byoung-Soo Y., Nam S. L., Ji W. P., In K. L., Yun S. L., Jae B. K., Young M., Hong K. L. and Kyong S. P. Glutathione Peroxidase 3 Mediates the Antioxidant Effect of Peroxisome Proliferator-Activated Receptor γ in Human Skeletal Muscle Cells. Mol. Cell. Biol. 2009; 29 (1), pp 20-30. Search in Google Scholar

[40] Valko M., Rhodes C.J. and Moncol J. Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chem Biol Interact. 2006; 160(1), PP: 1-40. Search in Google Scholar

[41] Enkhbaatar P. and Traber D. Pathophysiology of acute lung injury in combined burn and smoke inhalation injury. Clin Sci, 2004; 107, pp: 137- 143.10.1042/CS2004013515151496Search in Google Scholar

ISSN:
1503-9552
Idioma:
Inglés
Calendario de la edición:
2 veces al año
Temas de la revista:
Medicine, Clinical Medicine, other