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ORIGINAL RESEARCH

Age-Related Effect of Uric Acid on Contrast-Induced Acute Kidney Injury of Patients Undergoing Coronary Angiography

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Pages 2053-2061 | Received 29 Apr 2023, Accepted 08 Nov 2023, Published online: 07 Dec 2023

References

  • James MT, Samuel SM, Manning MA., et al. Contrast-induced acute kidney injury and risk of adverse clinical outcomes after coronary angiography: a systematic review and meta-analysis. Circ Cardiovasc Interv. 2013;6(1):37–43. doi:10.1161/circinterventions.112.974493
  • Abu Jawdeh BG, Kanso AA, Schelling JR. Evidence-based approach for prevention of radiocontrast-induced nephropathy. J Hosp Med. 2009;4(8):500–506. doi:10.1002/jhm.477
  • Ozkok S, Ozkok A. Contrast-induced acute kidney injury: a review of practical points. World J Nephrol. 2017;6(3):86–99. doi:10.5527/wjn.v6.i3.86
  • Mehran R, Aymong ED, Nikolsky E, et al. A simple risk score for prediction of contrast-induced nephropathy after percutaneous coronary intervention: development and initial validation. J Am Coll Cardiol. 2004;44(7):1393–1399. doi:10.1016/j.jacc.2004.06.068
  • Mendi MA, Afsar B, Oksuz F, et al. Uric acid is a useful tool to predict contrast-induced nephropathy. Angiology. 2017;68(7):627–632. doi:10.1177/0003319716639187
  • Barbieri L, Verdoia M, Schaffer A, et al. Uric acid levels and the risk of contrast induced nephropathy in patients undergoing coronary angiography or PCI. Nutr Metab Cardiovasc Dis. 2015;25(2):181–186. doi:10.1016/j.numecd.2014.08.008
  • Gephardt MC, Hanlon TJ, Matson CF. BLOOD URIC ACID VALUES AS RELATED TO SEX AND AGE. JAMA. 1964;189:1028–1029. doi:10.1001/jama.1964.03070130048019
  • Goldenberg I, Matetzky S. Nephropathy induced by contrast media: pathogenesis, risk factors and preventive strategies. Cmaj. 2005;172(11):1461–1471. doi:10.1503/cmaj.1040847
  • Aguiar-Souto P, Ferrante G, Del Furia F, Barlis P, Khurana R, Di Mario C. Frequency and predictors of contrast-induced nephropathy after angioplasty for chronic total occlusions. Int J Cardiol. 2010;139(1):68–74. doi:10.1016/j.ijcard.2008.10.006
  • Inker LA, Astor BC, Fox CH, et al. KDOQI US commentary on the 2012 KDIGO clinical practice guideline for the evaluation and management of CKD. Am J Kidney Dis. 2014;63(5):713–735. doi:10.1053/j.ajkd.2014.01.416
  • Yin W, Zhou G, Zhou L, et al. Validation of pre-operative risk scores of contrast-induced acute kidney injury in a Chinese cohort. BMC Nephrol. 2020;21(1):45. doi:10.1186/s12882-020-1700-8
  • Lei L, He Y, Guo Z, et al. A simple nomogram to predict contrast-induced acute kidney injury in patients with congestive heart failure undergoing coronary angiography. Cardiol Res Pract. 2021;2021:9614953. doi:10.1155/2021/9614953
  • Guo W, Liu Y, Chen JY, et al. Hyperuricemia is an independent predictor of contrast-induced acute kidney injury and mortality in patients undergoing percutaneous coronary intervention. Angiology. 2015;66(8):721–726. doi:10.1177/0003319714568516
  • Liu Y, Tan N, Chen J, et al. The relationship between hyperuricemia and the risk of contrast-induced acute kidney injury after percutaneous coronary intervention in patients with relatively normal serum creatinine. Clinics. 2013;68(1):19–25. doi:10.6061/clinics/2013(01)oa04
  • Toprak O, Cirit M, Esi E, Postaci N, Yesil M, Bayata S. Hyperuricemia as a risk factor for contrast-induced nephropathy in patients with chronic kidney disease. Catheter Cardiovasc Interv. 2006;67(2):227–235. doi:10.1002/ccd.20598
  • Nemati E, Khosravi A, Einollahi B, Meshkati M, Taghipour M, Abbaszadeh S. The relationship between dialysis adequacy and serum uric acid in dialysis patients; a cross-sectional multi-center study in Iranian hemodialysis centers. J Renal Inj Prev. 2017;6(2):142–147. doi:10.15171/jrip.2017.28
  • Kanbay M, Solak Y, Afsar B, et al. Serum uric acid and risk for acute kidney injury following contrast. Angiology. 2017;68(2):132–144. doi:10.1177/0003319716644395
  • Guo W, Song F, Chen S, et al. The relationship between hyperuricemia and contrast-induced acute kidney injury undergoing primary percutaneous coronary intervention: secondary analysis protocol for the ATTEMPT RESCIND-1 study. Trials. 2020;21(1):567. doi:10.1186/s13063-020-04505-w
  • Schepers MS, van Ballegooijen ES, Bangma CH, Verkoelen CF. Crystals cause acute necrotic cell death in renal proximal tubule cells, but not in collecting tubule cells. Kidney Int. 2005;68(4):1543–1553. doi:10.1111/j.1523-1755.2005.00566.x
  • Lee TS, Lu TM, Chen CH, Guo BC, Hsu CP. Hyperuricemia induces endothelial dysfunction and accelerates atherosclerosis by disturbing the asymmetric dimethylarginine/dimethylarginine dimethylaminotransferase 2 pathway. Redox Biol. 2021;46:102108. doi:10.1016/j.redox.2021.102108
  • Kanbay M, Huddam B, Azak A, et al. A randomized study of allopurinol on endothelial function and estimated glomular filtration rate in asymptomatic hyperuricemic subjects with normal renal function. Clin J Am Soc Nephrol. 2011;6(8):1887–1894. doi:10.2215/cjn.11451210
  • Kanbay M, Siriopol D, Nistor I, et al. Effects of allopurinol on endothelial dysfunction: a meta-analysis. Am J Nephrol. 2014;39(4):348–356. doi:10.1159/000360609
  • Higashi Y, Sasaki S, Nakagawa K, et al. Tetrahydrobiopterin improves aging-related impairment of endothelium-dependent vasodilation through increase in nitric oxide production. Atherosclerosis. 2006;186(2):390–395. doi:10.1016/j.atherosclerosis.2005.07.025
  • Zigmont V, Garrett A, Peng J, et al. Association between prediagnostic serum 25-hydroxyvitamin D concentration and glioma. Nutr Cancer. 2015;67(7):1120–1130. doi:10.1080/01635581.2015.1073757
  • Tsao YC, Chen JY, Yeh WC, Li WC. Gender- and age-specific associations between visceral obesity and renal function impairment. Obes Facts. 2019;12(1):67–77. doi:10.1159/000496626
  • Nieto FJ, Iribarren C, Gross MD, Comstock GW, Cutler RG. Uric acid and serum antioxidant capacity: a reaction to atherosclerosis? Atherosclerosis. 2000;148(1):131–139. doi:10.1016/s0021-9150(99)00214-2
  • Suliman ME, Johnson RJ, García-López E, et al. J-shaped mortality relationship for uric acid in CKD. Am J Kidney Dis. 2006;48(5):761–771. doi:10.1053/j.ajkd.2006.08.019
  • Hsu SP, Pai MF, Peng YS, Chiang CK, Ho TI, Hung KY. Serum uric acid levels show a ‘J-shaped’ association with all-cause mortality in haemodialysis patients. Nephrol Dial Transplant. 2004;19(2):457–462. doi:10.1093/ndt/gfg563
  • Pillai S, Kriplani A, Chawla A, et al. Acute Kidney Injury Post-Percutaneous Nephrolithotomy (PNL): prospective outcomes from a university teaching hospital. J Clin Med. 2021;10(7). doi:10.3390/jcm10071373
  • Yoshida T, Fujimori T, Nabeshima Y. Mediation of unusually high concentrations of 1,25-dihydroxyvitamin D in homozygous klotho mutant mice by increased expression of renal 1alpha-hydroxylase gene. Endocrinology. 2002;143(2):683–689. doi:10.1210/endo.143.2.8657
  • Devroey D, De Swaef N, Coigniez P, Vandevoorde J, Kartounian J, Betz W. Correlations between lipid levels and age, gender, glycemia, obesity, diabetes, and smoking. Endocr Res. 2004;30(1):83–93. doi:10.1081/erc-120029887
  • Chen HF, Li CY. Effect-modifications by age and sex on the risks of coronary artery disease and revascularization procedures in relation to diabetes. Diabetes Res Clin Pract. 2007;75(1):88–95. doi:10.1016/j.diabres.2006.05.020
  • Li J, Li Y, Wang X, et al. Age, estimated glomerular filtration rate and ejection fraction score predicts contrast-induced acute kidney injury in patients with diabetes and chronic kidney disease: insight from the TRACK-D study. Chin Med J. 2014;127(12):2332–2336.
  • Tang H, Chen H, Li Z, et al. Association between uric acid level and contrast-induced acute kidney injury in patients with type 2 diabetes mellitus after coronary angiography: a retrospective cohort study. BMC Nephrol. 2022;23(1):399. doi:10.1186/s12882-022-03030-z