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Published in: Inflammation 1/2012

01-02-2012

Attenuation of Hyperoxia-induced Lung Injury in Rats by Adrenomedullin

Authors: Wei Tao, Yu-Sheng Shu, Qian-Bing Miao, Ya-Bing Zhu

Published in: Inflammation | Issue 1/2012

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Abstract

Oxidative stress and inflammation are involved in the pathogenesis of acute lung injury (ALI). Adrenomedullin (AM) is an endogenous peptide with anti-inflammatory and antioxidant properties. This study investigated that whether AM treatment may ameliorate hyperoxia-induced ALI in rats via inhibition of oxidative stress and inflammation. Rats were randomized to receive continuous intravenous infusion of AM or saline through a microosmotic pump, and then ALI was induced by exposing the animals in sealed cages >95% oxygen for 72 h. Exposure to hyperoxia caused lung injury as increased infiltration of inflammatory cells and disruption of lung architecture. AM administration markedly improved these changes. Additionally, AM administration significantly increased glutathione peroxidase and superoxide dismutase activities. Meanwhile, hyperoxia-induced increase of lipid hydroperoxide level was markedly reduced by AM treatment. Moreover, nuclear factor-kappa B-DNA-binding activity, and production of the inflammatory mediators interleukin-6, keratinocyte-derived chemokine, and matrix metalloproteinase 9, were significantly inhibited by AM treatment. AM ameliorates hyperoxia-induced ALI in rats by suppression of oxidative stress and inflammation.
Literature
1.
go back to reference Papaiahgari, S., S.R. Kleeberger, H.Y. Cho, et al. 2004. NADPH oxidase and ERK signaling regulates hyperoxia-induced Nrf2-ARE transcriptional response in pulmonary epithelial cells. The Journal of Biological Chemistry 279: 42302–42312.PubMedCrossRef Papaiahgari, S., S.R. Kleeberger, H.Y. Cho, et al. 2004. NADPH oxidase and ERK signaling regulates hyperoxia-induced Nrf2-ARE transcriptional response in pulmonary epithelial cells. The Journal of Biological Chemistry 279: 42302–42312.PubMedCrossRef
2.
go back to reference Itoh, T., H. Obata, S. Murakami, et al. 2007. Adrenomedullin ameliorates lipopolysaccharide-induced acute lung injury in rats. American Journal of Physiology. Lung Cellular and Molecular Physiology 293: L446–L452.PubMedCrossRef Itoh, T., H. Obata, S. Murakami, et al. 2007. Adrenomedullin ameliorates lipopolysaccharide-induced acute lung injury in rats. American Journal of Physiology. Lung Cellular and Molecular Physiology 293: L446–L452.PubMedCrossRef
3.
go back to reference Müller, H.C., M. Witzenrath, T. Tschernig, et al. 2010. Adrenomedullin attenuates ventilator-induced lung injury in mice. Thorax 65: 1077–1084.PubMedCrossRef Müller, H.C., M. Witzenrath, T. Tschernig, et al. 2010. Adrenomedullin attenuates ventilator-induced lung injury in mice. Thorax 65: 1077–1084.PubMedCrossRef
4.
go back to reference Bloomfield, G.L., S. Holloway, P.C. Ridings, et al. 1997. Pretreatment with inhaled nitric oxide inhibits neutrophil migration and oxidative activity resulting in attenuated sepsis-induced acute lung injury. Critical Care Medicine 25: 584–593.PubMedCrossRef Bloomfield, G.L., S. Holloway, P.C. Ridings, et al. 1997. Pretreatment with inhaled nitric oxide inhibits neutrophil migration and oxidative activity resulting in attenuated sepsis-induced acute lung injury. Critical Care Medicine 25: 584–593.PubMedCrossRef
5.
go back to reference Hess, M.L., E. Okabe, and H.A. Kontos. 1981. Proton and free oxygen radical interaction with the calcium transport system of cardiac sarcoplasmic reticulum. Journal of Molecular and Cellular Cardiology 13: 767–772.PubMedCrossRef Hess, M.L., E. Okabe, and H.A. Kontos. 1981. Proton and free oxygen radical interaction with the calcium transport system of cardiac sarcoplasmic reticulum. Journal of Molecular and Cellular Cardiology 13: 767–772.PubMedCrossRef
6.
go back to reference Rosen, H., and S.J. Klebanoff. 1979. Hydroxyl radical generation by polymorphonuclear leukocytes measured by electron spin resonance spectroscopy. Journal of Clinical Investigation 64: 1725–1729.PubMedCrossRef Rosen, H., and S.J. Klebanoff. 1979. Hydroxyl radical generation by polymorphonuclear leukocytes measured by electron spin resonance spectroscopy. Journal of Clinical Investigation 64: 1725–1729.PubMedCrossRef
7.
go back to reference Rahman, I., and W. MacNee. 2000. Oxidative stress and regulation of glutathione in lung inflammation. The European Respiratory Journal 16: 534–554.PubMedCrossRef Rahman, I., and W. MacNee. 2000. Oxidative stress and regulation of glutathione in lung inflammation. The European Respiratory Journal 16: 534–554.PubMedCrossRef
8.
go back to reference Comhair, S.A., and S.C. Erzurum. 2002. Antioxidant responses to oxidant-mediated lung diseases. American Journal of Physiology. Lung Cellular and Molecular Physiology 283: L246–L255.PubMed Comhair, S.A., and S.C. Erzurum. 2002. Antioxidant responses to oxidant-mediated lung diseases. American Journal of Physiology. Lung Cellular and Molecular Physiology 283: L246–L255.PubMed
9.
go back to reference Reddy, N.M., S.R. Kleeberger, T.W. Kensler, et al. 2009. Disruption of Nrf2 impairs the resolution of hyperoxia-induced acute lung injury and inflammation in mice. Journal of Immunology 182: 7264–7271.CrossRef Reddy, N.M., S.R. Kleeberger, T.W. Kensler, et al. 2009. Disruption of Nrf2 impairs the resolution of hyperoxia-induced acute lung injury and inflammation in mice. Journal of Immunology 182: 7264–7271.CrossRef
10.
go back to reference Weiss, S.J. 1989. Tissue destruction by neutrophils. The New England Journal of Medicine 320: 365–376.PubMedCrossRef Weiss, S.J. 1989. Tissue destruction by neutrophils. The New England Journal of Medicine 320: 365–376.PubMedCrossRef
11.
go back to reference Fan, J., R.D. Ye, and A.B. Malik. 2001. Transcriptional mechanisms of acute lung injury. American Journal of Physiology. Lung Cellular and Molecular Physiology 281: L1037–L1050.PubMed Fan, J., R.D. Ye, and A.B. Malik. 2001. Transcriptional mechanisms of acute lung injury. American Journal of Physiology. Lung Cellular and Molecular Physiology 281: L1037–L1050.PubMed
12.
go back to reference Hagiwara, S., H. Iwasaka, K. Togo, et al. 2008. A neutrophil elastase inhibitor, sivelestat, reduces lung injury following endotoxin-induced shock in rats by inhibiting HMGB1. Inflammation 31: 227–234.PubMedCrossRef Hagiwara, S., H. Iwasaka, K. Togo, et al. 2008. A neutrophil elastase inhibitor, sivelestat, reduces lung injury following endotoxin-induced shock in rats by inhibiting HMGB1. Inflammation 31: 227–234.PubMedCrossRef
13.
go back to reference Kitamura, K., K. Kangawa, M. Kawamoto, et al. 1993. Adrenomedullin: a novel hypotensive peptide isolated from human pheochromocytoma. Biochemical and Biophysical Research Communications 192: 553–560.PubMedCrossRef Kitamura, K., K. Kangawa, M. Kawamoto, et al. 1993. Adrenomedullin: a novel hypotensive peptide isolated from human pheochromocytoma. Biochemical and Biophysical Research Communications 192: 553–560.PubMedCrossRef
14.
go back to reference Elsasser, T.H., and S. Kahl. 2002. Adrenomedullin has multiple roles in disease stress: development and remission of the inflammatory response. Microscopy Research and Technique 57: 120–129.PubMedCrossRef Elsasser, T.H., and S. Kahl. 2002. Adrenomedullin has multiple roles in disease stress: development and remission of the inflammatory response. Microscopy Research and Technique 57: 120–129.PubMedCrossRef
15.
go back to reference Shimosawa, T., Y. Shibagaki, K. Ishibashi, et al. 2002. Adrenomedullin, an endogenous peptide, counteracts cardiovascular damage. Circulation 105: 106–111.PubMedCrossRef Shimosawa, T., Y. Shibagaki, K. Ishibashi, et al. 2002. Adrenomedullin, an endogenous peptide, counteracts cardiovascular damage. Circulation 105: 106–111.PubMedCrossRef
16.
go back to reference Kim, J.Y., J.H. Yim, J.H. Cho, et al. 2006. Adrenomedullin regulates cellular glutathione content via modulation of gamma-glutamate-cysteine ligase catalytic subunit expression. Endocrinology 147: 1357–1364.PubMedCrossRef Kim, J.Y., J.H. Yim, J.H. Cho, et al. 2006. Adrenomedullin regulates cellular glutathione content via modulation of gamma-glutamate-cysteine ligase catalytic subunit expression. Endocrinology 147: 1357–1364.PubMedCrossRef
17.
go back to reference Rahman, M., A. Nishiyama, P. Guo, et al. 2006. Effects of adrenomedullin on cardiac oxidative stress and collagen accumulation in aldosterone-dependent malignant hypertensive rats. The Journal of Pharmacology and Experimental Therapeutics 318: 1323–1329.PubMedCrossRef Rahman, M., A. Nishiyama, P. Guo, et al. 2006. Effects of adrenomedullin on cardiac oxidative stress and collagen accumulation in aldosterone-dependent malignant hypertensive rats. The Journal of Pharmacology and Experimental Therapeutics 318: 1323–1329.PubMedCrossRef
18.
go back to reference Murakami, K., R. McGuire, R.A. Cox, et al. 2002. Heparin nebulization attenuates acute lung injury in sepsis following smoke inhalation in sheep. Shock 18: 236–241.PubMedCrossRef Murakami, K., R. McGuire, R.A. Cox, et al. 2002. Heparin nebulization attenuates acute lung injury in sepsis following smoke inhalation in sheep. Shock 18: 236–241.PubMedCrossRef
19.
go back to reference Kozar, R.A., C.J. Weibel, J. Cipolla, et al. 2000. Antioxidant enzymes are induced during recovery from acute lung injury. Critical Care Medicine 28: 2486–2491.PubMedCrossRef Kozar, R.A., C.J. Weibel, J. Cipolla, et al. 2000. Antioxidant enzymes are induced during recovery from acute lung injury. Critical Care Medicine 28: 2486–2491.PubMedCrossRef
20.
go back to reference Sciuto, A.M., M.B. Cascio, T.S. Moran, et al. 2003. The fate of antioxidant enzymes in bronchoalveolar lavage fluid over 7 days in mice with acute lung injury. Inhalation Toxicology 15: 675–685.PubMed Sciuto, A.M., M.B. Cascio, T.S. Moran, et al. 2003. The fate of antioxidant enzymes in bronchoalveolar lavage fluid over 7 days in mice with acute lung injury. Inhalation Toxicology 15: 675–685.PubMed
21.
go back to reference Hassoun, E.A., and J. Cearfoss. 2011. Dichloroacetate- and trichloroacetate-induced modulation of superoxide dismutase, catalase, and glutathione peroxidase activities and glutathione level in the livers of mice after subacute and subchronic exposure. Toxicological and Environmental Chemistry 93: 332–344.PubMedCrossRef Hassoun, E.A., and J. Cearfoss. 2011. Dichloroacetate- and trichloroacetate-induced modulation of superoxide dismutase, catalase, and glutathione peroxidase activities and glutathione level in the livers of mice after subacute and subchronic exposure. Toxicological and Environmental Chemistry 93: 332–344.PubMedCrossRef
22.
go back to reference Kim, S.M., J.Y. Kim, S. Lee, et al. 2010. Adrenomedullin protects against hypoxia/reoxygenation-induced cell death by suppression of reactive oxygen species via thiol redox systems. FEBS Letters 584: 213–218.PubMedCrossRef Kim, S.M., J.Y. Kim, S. Lee, et al. 2010. Adrenomedullin protects against hypoxia/reoxygenation-induced cell death by suppression of reactive oxygen species via thiol redox systems. FEBS Letters 584: 213–218.PubMedCrossRef
23.
go back to reference Rabbani, Z.N., M.S. Anscher, R.J. Folz, et al. 2005. Overexpression of extracellular superoxide dismutase reduces acute radiation induced lung toxicity. BMC Cancer 5: 59.PubMedCrossRef Rabbani, Z.N., M.S. Anscher, R.J. Folz, et al. 2005. Overexpression of extracellular superoxide dismutase reduces acute radiation induced lung toxicity. BMC Cancer 5: 59.PubMedCrossRef
24.
go back to reference Oury, T.D., L.M. Schaefer, C.L. Fattman, et al. 2002. Depletion of pulmonary EC-SOD after exposure to hyperoxia. American Journal of Physiology. Lung Cellular and Molecular Physiology 283: L777–L784.PubMed Oury, T.D., L.M. Schaefer, C.L. Fattman, et al. 2002. Depletion of pulmonary EC-SOD after exposure to hyperoxia. American Journal of Physiology. Lung Cellular and Molecular Physiology 283: L777–L784.PubMed
25.
go back to reference Liu, J., T. Shimosawa, H. Matsui, et al. 2007. Adrenomedullin inhibits angiotensin II-induced oxidative stress via Csk-mediated inhibition of Src activity. American Journal of Physiology. Heart and Circulatory Physiology 292: H1714–H1721.PubMedCrossRef Liu, J., T. Shimosawa, H. Matsui, et al. 2007. Adrenomedullin inhibits angiotensin II-induced oxidative stress via Csk-mediated inhibition of Src activity. American Journal of Physiology. Heart and Circulatory Physiology 292: H1714–H1721.PubMedCrossRef
26.
go back to reference Fink, M.P. 2002. Role of reactive oxygen and nitrogen species in acute respiratory distress syndrome. Current Opinion in Critical Care 8: 6–11.PubMedCrossRef Fink, M.P. 2002. Role of reactive oxygen and nitrogen species in acute respiratory distress syndrome. Current Opinion in Critical Care 8: 6–11.PubMedCrossRef
27.
go back to reference Dreger, H., K. Westphal, A. Weller, et al. 2009. Nrf2-dependent upregulation of antioxidative enzymes: a novel pathway for proteasome inhibitor-mediated cardioprotection. Cardiovascular Research 83: 354–361.PubMedCrossRef Dreger, H., K. Westphal, A. Weller, et al. 2009. Nrf2-dependent upregulation of antioxidative enzymes: a novel pathway for proteasome inhibitor-mediated cardioprotection. Cardiovascular Research 83: 354–361.PubMedCrossRef
28.
go back to reference Pugazhenthi, S., L. Akhov, G. Selvaraj, et al. 2007. Regulation of heme oxygenase-1 expression by demethoxy curcuminoids through Nrf2 by a PI3-kinase/Akt-mediated pathway in mouse β cells. American Journal of Physiology. Endocrinology and Metabolism 293: E645–E655.PubMedCrossRef Pugazhenthi, S., L. Akhov, G. Selvaraj, et al. 2007. Regulation of heme oxygenase-1 expression by demethoxy curcuminoids through Nrf2 by a PI3-kinase/Akt-mediated pathway in mouse β cells. American Journal of Physiology. Endocrinology and Metabolism 293: E645–E655.PubMedCrossRef
29.
go back to reference Okumura, H., N. Nagaya, T. Itoh, et al. 2004. Adrenomedullin infusion attenuates myocardial ischemia/reperfusion injury through the phosphatidylinositol 3-kinase/Akt-dependent pathway. Circulation 109: 242–248.PubMedCrossRef Okumura, H., N. Nagaya, T. Itoh, et al. 2004. Adrenomedullin infusion attenuates myocardial ischemia/reperfusion injury through the phosphatidylinositol 3-kinase/Akt-dependent pathway. Circulation 109: 242–248.PubMedCrossRef
30.
go back to reference Shapiro, H., I. Kagan, M. Shalita-Chesner, et al. 2010. Inhaled aerosolized insulin: a “topical” anti-inflammatory treatment for acute lung injury and respiratory distress syndrome? Inflammation 33: 315–319.PubMedCrossRef Shapiro, H., I. Kagan, M. Shalita-Chesner, et al. 2010. Inhaled aerosolized insulin: a “topical” anti-inflammatory treatment for acute lung injury and respiratory distress syndrome? Inflammation 33: 315–319.PubMedCrossRef
31.
go back to reference Schmeck, B., P.D. N’Guessan, M. Ollomang, et al. 2007. Legionella pneumophila-induced NF-kappaB-and MAPK-dependent cytokine release by lung epithelial cells. The European Respiratory Journal 29: 25–33.PubMedCrossRef Schmeck, B., P.D. N’Guessan, M. Ollomang, et al. 2007. Legionella pneumophila-induced NF-kappaB-and MAPK-dependent cytokine release by lung epithelial cells. The European Respiratory Journal 29: 25–33.PubMedCrossRef
32.
go back to reference Lee, E.G., S.I. Lee, H.J. Chae, et al. 2011. Adrenomedullin Inhibits IL-1beta-Induced Rheumatoid Synovial Fibroblast Proliferation and MMPs, COX-2 and PGE2 Production. Inflammation. doi:10.1007/s10753-010-9239-7 Lee, E.G., S.I. Lee, H.J. Chae, et al. 2011. Adrenomedullin Inhibits IL-1beta-Induced Rheumatoid Synovial Fibroblast Proliferation and MMPs, COX-2 and PGE2 Production. Inflammation. doi:10.​1007/​s10753-010-9239-7
33.
go back to reference Jin, D., K. Otani, K. Yamahara, et al. 2011. Adrenomedullin reduces expression of adhesion molecules on lymphatic endothelial cells. Regulatory Peptides 166: 21–27.PubMedCrossRef Jin, D., K. Otani, K. Yamahara, et al. 2011. Adrenomedullin reduces expression of adhesion molecules on lymphatic endothelial cells. Regulatory Peptides 166: 21–27.PubMedCrossRef
34.
go back to reference Boland, C., V. Collet, E. Laterre, et al. 2011. Electrical vagus nerve stimulation and nicotine effects in peritonitis-induced acute lung injury in rats. Inflammation 34(1): 29–35. Boland, C., V. Collet, E. Laterre, et al. 2011. Electrical vagus nerve stimulation and nicotine effects in peritonitis-induced acute lung injury in rats. Inflammation 34(1): 29–35.
35.
go back to reference Yang, S., M. Zhou, D.E. Fowler, et al. 2002. Mechanisms of the beneficial effect of adrenomedullin and adrenomedullin-binding protein-1 in sepsis: down-regulation of proinflammatory cytokines. Critical Care Medicine 30: 2729–2735.PubMedCrossRef Yang, S., M. Zhou, D.E. Fowler, et al. 2002. Mechanisms of the beneficial effect of adrenomedullin and adrenomedullin-binding protein-1 in sepsis: down-regulation of proinflammatory cytokines. Critical Care Medicine 30: 2729–2735.PubMedCrossRef
36.
go back to reference Lee, B.H., T.J. Lee, J.W. Jung, et al. 2009. The role of keratinocyte-derived chemokine in hemorrhage-induced acute lung injury in mice. Journal of Korean Medical Science 24: 775–781.PubMedCrossRef Lee, B.H., T.J. Lee, J.W. Jung, et al. 2009. The role of keratinocyte-derived chemokine in hemorrhage-induced acute lung injury in mice. Journal of Korean Medical Science 24: 775–781.PubMedCrossRef
37.
go back to reference Saito, Y., C. Nakagawa, H. Uchida, et al. 2001. Adrenomedullin suppresses fMLP-induced upregulation of CD11b of human neutrophils. Inflammation 25: 197–201.PubMedCrossRef Saito, Y., C. Nakagawa, H. Uchida, et al. 2001. Adrenomedullin suppresses fMLP-induced upregulation of CD11b of human neutrophils. Inflammation 25: 197–201.PubMedCrossRef
38.
go back to reference Yousufzai, S.Y., N. Ali, and A.A. Abdel-Latif. 1999. Effects of adrenomedullin on cyclic AMP formation and on relaxation in iris sphincter smooth muscle. Investigative Ophthalmology and Visual Science 40: 3245–3253.PubMed Yousufzai, S.Y., N. Ali, and A.A. Abdel-Latif. 1999. Effects of adrenomedullin on cyclic AMP formation and on relaxation in iris sphincter smooth muscle. Investigative Ophthalmology and Visual Science 40: 3245–3253.PubMed
39.
go back to reference Hippenstiel, S., M. Witzenrath, B. Schmeck, et al. 2002. Adrenomedullin reduces endothelial hyperpermeability. Circulation Research 91: 618–625.PubMedCrossRef Hippenstiel, S., M. Witzenrath, B. Schmeck, et al. 2002. Adrenomedullin reduces endothelial hyperpermeability. Circulation Research 91: 618–625.PubMedCrossRef
40.
go back to reference Hocke, A.C., B. Temmesfeld-Wollbrueck, B. Schmeck, et al. 2006. Perturbation of endothelial junction proteins by Staphylococcus aureus alpha-toxin: inhibition of endothelial gap formation by adrenomedullin. Histochemistry and Cell Biology 126: 305–316.PubMedCrossRef Hocke, A.C., B. Temmesfeld-Wollbrueck, B. Schmeck, et al. 2006. Perturbation of endothelial junction proteins by Staphylococcus aureus alpha-toxin: inhibition of endothelial gap formation by adrenomedullin. Histochemistry and Cell Biology 126: 305–316.PubMedCrossRef
41.
go back to reference Temmesfeld-Wollbrück, B., B. Brell, C. zu Dohna, et al. 2009. Adrenomedullin reduces intestinal epithelial permeability in vivo and in vitro. American Journal of Physiology. Gastrointestinal and Liver Physiology 297: G43–G51.PubMedCrossRef Temmesfeld-Wollbrück, B., B. Brell, C. zu Dohna, et al. 2009. Adrenomedullin reduces intestinal epithelial permeability in vivo and in vitro. American Journal of Physiology. Gastrointestinal and Liver Physiology 297: G43–G51.PubMedCrossRef
42.
go back to reference Nagase, H., and J.F. Woessner Jr. 1999. Matrix metalloproteinases. The Journal of Biological Chemistry 274: 21491–21494.PubMedCrossRef Nagase, H., and J.F. Woessner Jr. 1999. Matrix metalloproteinases. The Journal of Biological Chemistry 274: 21491–21494.PubMedCrossRef
43.
go back to reference Gushima, Y., K. Ichikado, M. Suga, et al. 2001. Expression of matrix metalloproteinases in pigs with hyperoxia-induced acute lung injury. The European Respiratory Journal 18: 827–837.PubMedCrossRef Gushima, Y., K. Ichikado, M. Suga, et al. 2001. Expression of matrix metalloproteinases in pigs with hyperoxia-induced acute lung injury. The European Respiratory Journal 18: 827–837.PubMedCrossRef
44.
go back to reference Kim, J.H., M.H. Suk, D.W. Yoon, et al. 2006. Inhibition of matrix metalloproteinase-9 prevents neutrophilic in flammation in ventilator-induced lung injury. American Journal of Physiology. Lung Cellular and Molecular Physiology 291: L580–L587.PubMedCrossRef Kim, J.H., M.H. Suk, D.W. Yoon, et al. 2006. Inhibition of matrix metalloproteinase-9 prevents neutrophilic in flammation in ventilator-induced lung injury. American Journal of Physiology. Lung Cellular and Molecular Physiology 291: L580–L587.PubMedCrossRef
45.
go back to reference Kong, M.Y., A. Gaggar, Y. Li, et al. 2009. Matrix metalloproteinase activity in pediatric acute lung injury. International Journal of Medical Sciences 6: 9–17.PubMedCrossRef Kong, M.Y., A. Gaggar, Y. Li, et al. 2009. Matrix metalloproteinase activity in pediatric acute lung injury. International Journal of Medical Sciences 6: 9–17.PubMedCrossRef
46.
go back to reference Tacon, C.E., S. Wiehler, N.S. Holden, et al. 2010. Human rhinovirus infection up-regulates MMP-9 production in airway epithelial cells via NF-{kappa}B. American Journal of Respiratory Cell and Molecular Biology 43: 201–209.PubMedCrossRef Tacon, C.E., S. Wiehler, N.S. Holden, et al. 2010. Human rhinovirus infection up-regulates MMP-9 production in airway epithelial cells via NF-{kappa}B. American Journal of Respiratory Cell and Molecular Biology 43: 201–209.PubMedCrossRef
Metadata
Title
Attenuation of Hyperoxia-induced Lung Injury in Rats by Adrenomedullin
Authors
Wei Tao
Yu-Sheng Shu
Qian-Bing Miao
Ya-Bing Zhu
Publication date
01-02-2012
Publisher
Springer US
Published in
Inflammation / Issue 1/2012
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-011-9300-1

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