Low Tidal Volume Ventilation during Cardiopulmonary Bypass Reduces Postoperative Chemokine Serum Concentrations
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H. Ankersmit | G. Roth | L. Beer | A. Mitterbauer | M. Dworschak | T. Szerafin | T. Maros | Tamás Debreceni
[1] H. Ankersmit,et al. Ventilation during cardiopulmonary bypass: impact on heat shock protein release. , 2014, The Journal of cardiovascular surgery.
[2] R. Chambers,et al. Proteinase-activated receptor-1, CCL2, and CCL7 regulate acute neutrophilic lung inflammation. , 2013, American journal of respiratory cell and molecular biology.
[3] H. Ankersmit,et al. Continued mechanical ventilation during coronary artery bypass graft operation attenuates the systemic immune response. , 2013, European journal of cardio-thoracic surgery : official journal of the European Association for Cardio-thoracic Surgery.
[4] A. Durukan,et al. Ventilation during cardiopulmonary bypass did not attenuate inflammatory response or affect postoperative outcomes , 2013, Cardiovascular journal of Africa.
[5] J. Schreiber,et al. The effect of different lung-protective strategies in patients during cardiopulmonary bypass: a meta-analysis and semiquantitative review of randomized trials. , 2012, Journal of cardiothoracic and vascular anesthesia.
[6] 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.
[7] C. Mazer,et al. Endotoxemia related to cardiopulmonary bypass is associated with increased risk of infection after cardiac surgery: a prospective observational study , 2011, Critical care.
[8] M. Caputo,et al. Off-pump coronary artery bypass surgery is associated with fewer gene expression changes in the human myocardium in comparison with on-pump surgery. , 2010, Physiological genomics.
[9] H. Wong,et al. Admission chemokine (C-C motif) ligand 4 levels predict survival in pediatric septic shock* , 2010, Pediatric critical care medicine : a journal of the Society of Critical Care Medicine and the World Federation of Pediatric Intensive and Critical Care Societies.
[10] K. Filos,et al. Lung Dysfunction Following Cardiopulmonary Bypass , 2010, Journal of cardiac surgery.
[11] M. Caputo,et al. Pulmonary injury after cardiopulmonary bypass: beneficial effects of low-frequency mechanical ventilation. , 2009, The Journal of thoracic and cardiovascular surgery.
[12] T. Magin,et al. Cytokines as genetic modifiers in K5–/– mice and in human epidermolysis bullosa simplex , 2009, Human mutation.
[13] D. Adams,et al. Predictors and early and late outcomes of respiratory failure in contemporary cardiac surgery. , 2008, Chest.
[14] L. John,et al. A study assessing the potential benefit of continued ventilation during cardiopulmonary bypass. , 2008, Interactive cardiovascular and thoracic surgery.
[15] A. Ho,et al. Ventilation during cardiopulmonary bypass: impact on cytokine response and cardiopulmonary function. , 2008, The Annals of thoracic surgery.
[16] A. Grayson,et al. Logistic risk model for prolonged ventilation after adult cardiac surgery. , 2007, The Annals of thoracic surgery.
[17] M. Jahangiri,et al. Mechanisms of pulmonary dysfunction after on-pump and off-pump cardiac surgery: a prospective cohort study , 2007, Journal of cardiothoracic surgery.
[18] H. Castro-Faria-Neto,et al. Circulating inflammatory mediators and organ dysfunction after cardiovascular surgery with cardiopulmonary bypass: a prospective observational study , 2006, Critical care.
[19] M. Bauer,et al. Transcriptomic and Proteomic Patterns of Systemic Inflammation in On-Pump and Off-Pump Coronary Artery Bypass Grafting , 2005, Circulation.
[20] C. Booy,et al. Hypoxia aggravates lipopolysaccharide‐induced lung injury , 2005, Clinical and experimental immunology.
[21] B. Naidu,et al. Beta-chemokine function in experimental lung ischemia-reperfusion injury. , 2004, The Annals of thoracic surgery.
[22] R. Lundblad,et al. Changes in the cytokine network and complement parameters during open heart surgery. , 2003, Interactive cardiovascular and thoracic surgery.
[23] John G. Laffey,et al. The Systemic Inflammatory Response to Cardiac Surgery: Implications for the Anesthesiologist , 2002, Anesthesiology.
[24] A. Watanabe,et al. CC‐chemokine receptor 6 and its ligand macrophage inflammatory protein 3α might be involved in the amplification of local necroinflammatory response in the liver , 2001, Hepatology.
[25] C. Schlensak,et al. Bronchial artery perfusion during cardiopulmonary bypass does not prevent ischemia of the lung in piglets: assessment of bronchial artery blood flow with fluorescent microspheres. , 2001, European journal of cardio-thoracic surgery : official journal of the European Association for Cardio-thoracic Surgery.
[26] M. Norcross,et al. Identification of human macrophage inflammatory proteins 1alpha and 1beta as a native secreted heterodimer. , 2001, The Journal of biological chemistry.
[27] M. Baggiolini. Chemokines and leukocyte traffic , 1998, Nature.
[28] T. Standiford,et al. Macrophage inflammatory protein-1 alpha mediates lung leukocyte recruitment, lung capillary leak, and early mortality in murine endotoxemia. , 1995, Journal of immunology.