« Previous
Next »
American Journal of Kidney Diseases
Volume 53, Issue 4
, Pages 584-595
, April 2009
Mass Spectrometry–Based Proteomic Analysis of Urine in Acute Kidney Injury Following Cardiopulmonary Bypass: A Nested Case-Control Study
References
- Preoperative renal risk stratification. Circulation. 1997;95:878–884
- A clinical score to predict acute renal failure after cardiac surgery. J Am Soc Nephrol. 2005;16:162–168
- Renal dysfunction after myocardial revascularization: Risk factors, adverse outcomes, and hospital resource utilization. Ann Intern Med. 1998;128:194–203
- Immediate postoperative renal function deterioration in cardiac surgical patients predicts in-hospital mortality and long-term survival. J Am Soc Nephrol. 2005;16:195–200
- Biomarkers of acute renal injury and renal failure. Shock. 2006;26:245–253
- . Recent advances in the pathophysiology of ischemic acute renal failure. J Am Soc Nephrol. 2003;14:2199–2210
- Gene expression in early ischemic renal injury: Clues towards pathogenesis, biomarker discovery, and novel therapeutics. Mol Genet Metab. 2003;80:365–376
- Is kidney function altered by the duration of cardiopulmonary bypass?. Ann Thorac Surg. 2003;75:906–912
- On-pump versus off-pump coronary artery bypass grafting: Impact on post-operative renal failure requiring renal replacement therapy. Ann Thorac Surg. 2004;77:1250–1256
- Acute renal failure in coronary artery bypass surgery: Independent effect of cardiopulmonary bypass. Ann Thorac Surg. 2004;77:968–972
- . Acute kidney injury associated with cardiac surgery. Clin J Am Soc Nephrol. 2006;1:19–32
- . Ischemic acute renal failure: An inflammatory disease?. Kidney Int. 2004;66:480–485
- Proteomic-based detection of urine proteins associated with acute renal allograft rejection. J Am Soc Nephrol. 2004;15:219–227
- Proteomic-based identification of cleaved urinary β2-microglobulin as a potential marker for acute tubular injury in renal allografts. Am J Transplant. 2005;5:729–738
- Detection of serum hepcidin in renal failure and inflammation by using ProteinChip system. Blood. 2006;108:1381–1387
- . Mass spectrometry-based hepcidin measurements in serum and urine: Analytical aspects and clinical implications. Clin Chem. 2007;53:620–628
- Measurement of urinary hepcidin levels by SELDI-TOF-MS in HFE-hemochromatosis. Blood Cells Mol Dis. 2008;40:347–352
- Allergic humans are hyporesponsive to a CXCR3 ligand-mediated Th1 immunity-promoting loop. FASEB J. 2004;18:329–331
- Role of CXC chemokine receptor 3 pathway in renal ischemic injury. J Am Soc Nephrol. 2006;17:716–723
- . Chemokines in ischemia and reperfusion. Thromb Haemost. 2007;97:738–747
- . Microvascular endothelial injury and dysfunction during ischemic acute renal failure. Kidney Int. 2002;62:1539–1549
- Alpha1-microglobulin: An indicator protein for renal tubular function. J Clin Pathol. 1983;36:253–259
- Interpreting complex urinary patterns with MDI lablink: A statistical evaluation. Clin Chim Acta. 2000;297:261–273
- Changes in urinary α1-microglobulin in assessment of prognosis in renal transplant recipients. Transplantation. 2000;70:1154–1159
- Plasma and urinary cytokine homeostasis and renal function during cardiac surgery without cardiopulmonary bypass. Cytokine. 2002;17:61–65
- Megalin knockout mice as an animal model of low molecular weight proteinuria. Am J Pathol. 1999;155:1361–1370
- . Megalin and cubilin: Synergistic endocytic receptors in renal proximal tubule. Am J Physiol Renal Physiol. 2001;280:F562–F573
- Identification of neutrophil gelatinase-associated lipocalin as a novel early urinary biomarker for ischemic renal injury. J Am Soc Nephrol. 2003;14:2534–2543
- Neutrophil gelatinase-associated lipocalin (NGAL) as a biomarker for acute renal injury after cardiac surgery. Lancet. 2005;365:1231–1238
- Association between increases in urinary neutrophil gelatinase-associated lipocalin and acute renal dysfunction after adult cardiac surgery. Anesthesiology. 2006;105:485–491
- The endocytic receptor megalin binds the iron transporting neutrophil-gelatinase-associated lipocalin with high affinity and mediates its cellular uptake. FEBS Lett. 2005;579:773–777
- . Pharmacological treatment of acute kidney injury: Why drugs haven't worked and what is on the horizon. Clin J Am Soc Nephrol. 2007;2:356–365
- . Hemolysis during cardiopulmonary bypass: Update. Perfusion. 2001;16:345–351
- Oxidant mechanisms in toxic acute renal failure. Drug Met Rev. 1999;31:971–997
- Acute renal failure after cardiopulmonary bypass is related to decreased serum ferritin levels. J Am Soc Nephrol. 1999;10:2396–2402
- . Molecular control of iron transport. J Am Soc Nephrol. 2007;18:394–400
- The iron-regulatory peptide hormone hepcidin: Expression and cellular localization in the mammalian kidney. J Endocrinol. 2005;184:361–370
- Endocytic delivery of lipocalin-siderophore-iron complex rescues the kidney from ischemia reperfusion injury. J Clin Invest. 2005;115:610–621
- . Acute kidney injury associated with cardiac surgery. Clin J Am Soc Nephrol. 2006;1:19–32
- Maladaptive role of IL-6 in ischemic acute renal failure. J Am Soc Nephrol. 2005;16:3315–3325
- Endogenous interleukin-6 enhances the renal injury, dysfunction, and inflammation caused by ischemia/reperfusion. J Pharm Exp Ther. 2005;312:1170–1178
Originally published online as doi:10.1053/j.ajkd.2008.10.037 on December 15, 2008.
J.H. and M.L. contributed equally to this manuscript.
PII: S0272-6386(08)01564-3
doi: 10.1053/j.ajkd.2008.10.037
© 2009 National Kidney Foundation, Inc. Published by Elsevier Inc All rights reserved.
« Previous
Next »
American Journal of Kidney Diseases
Volume 53, Issue 4
, Pages 584-595
, April 2009
