In-Depth Characterization of the Effects of Cigarette Smoke Exposure on the Acute Trauma Response and Hemorrhage in Mice
暂无分享,去创建一个
M. Georgieff | B. Nussbaum | P. Radermacher | M. Huber-Lang | M. Gröger | Peter Möller | U. Wachter | E. Calzia | B. Jung | A. Scheuerle | O. McCook | T. Merz | M. Wepler | B. Stahl | Clair Hartmann | Sandra Kress | Jan-Philipp Noirhomme
[1] S. Denk,et al. Role of Hemorrhagic Shock in Experimental Polytrauma , 2017, Shock.
[2] M. Georgieff,et al. The Role of Cystathionine-&ggr;-Lyase In Blunt Chest Trauma in Cigarette Smoke Exposed Mice , 2017, Shock.
[3] M. Georgieff,et al. Role of the Purinergic Receptor P2XR4 After Blunt Chest Trauma in Cigarette Smoke-Exposed Mice , 2017, Shock.
[4] M. Georgieff,et al. Association of Kidney Tissue Barrier Disrupture and Renal Dysfunction in Resuscitated Murine Septic Shock , 2016, Shock.
[5] Arthur S Slutsky,et al. Lung-Kidney Cross-Talk in the Critically Ill Patient. , 2016, American journal of respiratory and critical care medicine.
[6] M. Georgieff,et al. Blunt Chest Trauma in Mice after Cigarette Smoke-Exposure: Effects of Mechanical Ventilation with 100 % O2 , 2015, PloS one.
[7] M. Georgieff,et al. Physiological and Immune-Biological Characterization of a Long-Term Murine Model of Blunt Chest Trauma , 2015, Shock.
[8] M. Georgieff,et al. H2S during circulatory shock: some unresolved questions. , 2014, Nitric oxide : biology and chemistry.
[9] A. Bergmann,et al. Adrenomedullin binding improves catecholamine responsiveness and kidney function in resuscitated murine septic shock , 2013, Intensive Care Medicine Experimental.
[10] J. Moser,et al. Cystathionine γ-lyase protects against renal ischemia/reperfusion by modulating oxidative stress. , 2013, Journal of the American Society of Nephrology : JASN.
[11] Christopher S. Stevenson,et al. Cigarette Smoke Induced Airway Inflammation Is Independent of NF-κB Signalling , 2013, PloS one.
[12] M. Post,et al. Dissociation of Inflammatory Mediators and Function: Experimental Lung Injury in Nonpulmonary Sepsis* , 2013, Critical care medicine.
[13] D. Turnbull,et al. Mitochondrial dysfunction and lipid accumulation in the human diaphragm during mechanical ventilation. , 2012, American journal of respiratory and critical care medicine.
[14] Yahong Chen,et al. The message in the air: Hydrogen sulfide metabolism in chronic respiratory diseases , 2012, Respiratory Physiology & Neurobiology.
[15] S. Ryter,et al. Heme Oxygenase-1/CO as protective mediators in cigarette smoke- induced lung cell injury and chronic obstructive pulmonary disease. , 2012, Current pharmaceutical biotechnology.
[16] I. Andrianakis,et al. Nitrosative and Oxidative Stresses Contribute to Post-Ischemic Liver Injury Following Severe Hemorrhagic Shock: The Role of Hypoxemic Resuscitation , 2012, PloS one.
[17] M. Georgieff,et al. Cardiopulmonary, histologic, and inflammatory effects of intravenous Na2S after blunt chest trauma-induced lung contusion in mice. , 2011, The Journal of trauma.
[18] J. Chao,et al. Monocyte chemoattractant protein-1 released from alveolar macrophages mediates the systemic inflammation of acute alveolar hypoxia. , 2011, American journal of respiratory cell and molecular biology.
[19] M. Georgieff,et al. Inflammatory Effects of Hypothermia and Inhaled H2S During Resuscitated, Hyperdynamic Murine Septic Shock , 2011, Shock.
[20] Yahong Chen,et al. Involvement of endogenous hydrogen sulfide in cigarette smoke-induced changes in airway responsiveness and inflammation of rat lung. , 2011, Cytokine.
[21] Peter Carmeliet,et al. Hypoxia and inflammation. , 2011, The New England journal of medicine.
[22] M. Huber-Lang,et al. Is the function of alveolar macrophages altered following blunt chest trauma? , 2011, Langenbeck's Archives of Surgery.
[23] S. Moochhala,et al. Role of hydrogen sulfide in severe burn injury-induced inflammation in mice. , 2010, Molecular medicine.
[24] M. Georgieff,et al. Cardiac and metabolic effects of hypothermia and inhaled hydrogen sulfide in anesthetized and ventilated mice* , 2010, Critical care medicine.
[25] F. Maltais,et al. Comparative assessment of the quadriceps and the diaphragm in patients with COPD. , 2009, Journal of applied physiology.
[26] Steven L. Kunkel,et al. LUNG CONTUSION: INFLAMMATORY MECHANISMS AND INTERACTION WITH OTHER INJURIES , 2009, Shock.
[27] L. Wollin,et al. Tiotropium bromide exerts anti-inflammatory activity in a cigarette smoke mouse model of COPD. , 2009, Pulmonary pharmacology & therapeutics.
[28] N. Patel,et al. Characterisation of cystathionine gamma-lyase/hydrogen sulphide pathway in ischaemia/reperfusion injury of the mouse kidney: an in vivo study. , 2009, European journal of pharmacology.
[29] Norihiro Shibuya,et al. 3-Mercaptopyruvate sulfurtransferase produces hydrogen sulfide and bound sulfane sulfur in the brain. , 2009, Antioxidants & redox signaling.
[30] K. Pinkerton,et al. NF-kappaB inhibition is involved in tobacco smoke-induced apoptosis in the lungs of rats. , 2008, Toxicology and applied pharmacology.
[31] I. Chaudry,et al. Bench-to-bedside review: Latest results in hemorrhagic shock , 2008, Critical care.
[32] L. C. Pôrto,et al. Light cigarette smoke‐induced emphysema and NFκB activation in mouse lung , 2006, International journal of experimental pathology.
[33] P. Laveneziana,et al. The Clinical Importance of Dynamic Lung Hyperinflation in COPD , 2006, COPD.
[34] R. Bellomo,et al. Acute renal failure – definition, outcome measures, animal models, fluid therapy and information technology needs: the Second International Consensus Conference of the Acute Dialysis Quality Initiative (ADQI) Group , 2004, Critical care.
[35] L. Kinzl,et al. Cardiopulmonary, Histological, and Inflammatory Alterations After Lung Contusion in a Novel Mouse Model of Blunt Chest Trauma , 2003, Shock.
[36] R. Shenkar,et al. Hemorrhage increases cytokine expression in lung mononuclear cells in mice: involvement of catecholamines in nuclear factor-kappaB regulation and cytokine expression. , 1997, The Journal of clinical investigation.