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Original Articles

Urinary vanin-1 for predicting acute pyelonephritis in young children with urinary tract infection: a pilot study

ORCID Icon, ORCID Icon, & ORCID Icon
Pages 318-324 | Received 12 Aug 2020, Accepted 14 Feb 2021, Published online: 26 Mar 2021

References

  • Ammenti, A., et al.,; Italian Society of Pediatric Nephrology. 2020. Updated Italian recommendations for the diagnosis, treatment and follow-up of the first febrile urinary tract infection in young children. Acta paediatrica (Oslo, Norway : 1992), 109 (2), 236–247..
  • Atiş, Ö., et al., 2013. Serum Vanin-1 levels in renal transplant patients. Exp clin transpl, 2, 113–116.
  • Aurrand-Lions, M., et al., 1996. Vanin-1, a novel GPI-linked perivascular molecule involved in thymus homing. Immunity, 5 (5), 391–405.
  • Bartucci, R., et al., 2019. Vanin 1: Its Physiological function and role in diseases. International journal of molecular sciences, 20 (16), 3891.
  • Boersma, Y.L., et al., 2014. The structure of vanin 1: a key enzyme linking metabolic disease and inflammation. Acta crystallographica. Section D, biological crystallography, 70 (Pt 12), 3320–3329.
  • Buyukdereli, G., and Guney, I.B., 2006. Role of technetium-99m N,N-ethylenedicysteine renal scintigraphy in the evaluation of differential renal function and cortical defects. Clinical nuclear medicine, 31 (3), 134–138.
  • Chien, J.-W., et al., 2014. Urinary 8-hydroxy-2'-deoxyguanosine (8-oxodG) level can predict acute renal damage in young children with urinary tract infection. Biomarkers : biochemical indicators of exposure, response, and susceptibility to chemicals, 19 (4), 326–331.
  • De Palma, D., 2019. Radionuclide tools in clinical management of febrile UTI in children. Seminars in nuclear medicine., 0, 1–6.
  • Dharmalingam, A., et al., 2017. Tc-99m ethylenedicysteine and Tc-99m dimercaptosuccinic acid scintigraphy-comparison of the two for detection of scarring and differential cortical function. Indian journal of nuclear medicine : IJNM : the official journal of the society of nuclear medicine, India, 32 (2), 93–97.
  • Forster, C.S., et al., 2017. Urinary NGAL deficiency in reccurent urinary tract infections. Pediatric nephrology, 32 (6), 1077–1080.
  • Fugmann, T., et al., 2011. Proteomic identification of Vanin-1 as a marker of kidney damage in a rat model of type 1 diabetic nephropathy. Kidney international, 80 (3), 272–281.
  • Gupta, A., et al., 1996. Reactive oxygen species-mediated tissue injury in experimental ascending pyelonephritis. Kidney international, 49 (1), 26–33.
  • Hosohata, K., et al., 2011. Vanin-1: a potential biomarker for nephrotoxicant-induced renal injury . Toxicology, 290 (1), 82–88.
  • Hosohata, K., Ando, H., and Fujimura, A., 2012. Urinary Vanin-1 as a novel biomarker for early detection of drug-induced acute kidney injury. The journal of pharmacology and experimental therapeutics, 341 (3), 656–662.
  • Hosohata, K., 2016a. Role of oxidative stress in drug-induced kidney injury. International journal of molecular sciences, 17 (11), 1826.
  • Hosohata, K., et al., 2016b. Early prediction of cisplatin-induced nephrotoxicity by urinary Vanin-1 in patients with urothelial carcinoma. Toxicology, 359-360, 71–75.
  • Hosohata, K., et al., 2018. Vanin-1 in renal pelvic urine reflects kidney injury in a rat model of hydronephrosis. International journal of molecular sciences, 19 (10), 3186.
  • Hosohata, K., et al., 2019. Involvement of vanin-1 in ameliorating effect of oxidative renal tubular injury in Dahl-salt sensitive rats. International journal of molecular sciences, 20 (18), 4481.
  • Ismaili, K., et al., 2011. Characteristics of first urinary tract infection with fever in children: a prospective clinical and imaging study. The pediatric infectious disease journal, 30 (5), 371–374.
  • Kajbafzadeh, A.-M., et al., 2020. Urinary carbohydrate antigen 19-9 level as a biomarker in children with acute pyelonephritis. European journal of pediatrics, 179 (9), 1389–1394.
  • Kaufman, J., et al., 2019. Urinary tract infections in children: an overview of diagnosis and management. BMJ paediatrics open, 3 (1), e000487.
  • Kidney Disease: Improving Global Outcomes (KDIGO). CKD Word Group. 2013. KDIGO 2012 Clinical Practice Guideline for the Evaluation and Management of Chronic Kidney Disease. Kidney international supplement, 3 (3), 259–305.
  • Krzemień, G., et al., 2019a. Serum neutrophil gelatinase-associated lipocaln for predicting acute pyelonephritis in infants with urinary tract infection. Centr eur J immunol, 44, 1–6.
  • Krzemień, G., et al., 2019b. Diagnostic accuracy of urine neutrophil gelatinase-associated lipocalin and urine kidney injury molecule-1 as predictors of acute pyelonephritis in young children with febrile urinary tract infection. Central european journal of immunology, 44 (2), 174–180.
  • Lee, J.H., et al., 2019. Reconsideration of urine culture for the diagnosis of acute pyelonephritis in children: a new challenging method for diagnosing acute pyelonephritis. Korean journal of pediatrics, 62 (12), 433–437.
  • Leung, A.K.C., et al., 2019. Urinary tract infection in children. Recent patents on inflammation & allergy drug discovery, 13 (1), 2–18.
  • Ling, L., et al., 2019. MicroRNA-203 acts as a potent suppressor in septic shock by alleviating lung injury via inhibition of VNN1. Kidney & blood pressure research, 44 (4), 565–582.
  • McWilliam, S.J., et al., 2014. Reference intervals for urinary renal injury biomarkers KIM-1 and NGAL in healthy children. Biomarkers in medicine, 8 (10), 1189–1197.
  • Mohammadi-Fallah, M., et al., 2014. Comparison of DMSA scan 99 m and EC scan 99 m in diagnosis of cortical defect and differential renal function. Global journal of health science, 6 (7 Spec No), 38–43.
  • Mohkam, M., 2020. Novel urinary biomarkers for diagnosis of acute pyelonephritis in children. Iranian journal of kidney diseases, 14 (1), 1–7.
  • Morello, W., et al., 2016. Acute pyelonephritis in children. Pediatric nephrology (Berlin, Germany), 31 (8), 1253–1265.
  • Petrović, S., et al., 2013. Clinical application neutrophil gelatinase-associated lipocalin ad kidney injury molecule-1 as indicators of inflammation persistence and acute kidney injury in children with urinary tract infection. Biomed research international., 2013, 947157.
  • Rafiei, A., et al., 2015. Urinary neutrophil gelatinase-associated lipocalin (NGAL) might be an independent marker for anticipating scar formation in children with acute pyelonephritis. Journal of renal injury prevention, 4 (2), 39–44.
  • Roisin-Bouffay, C., et al., 2008. Mouse vanin-1 is cytoprotective for islet beta cells and regulates the development of type 1 diabetes. Diabetologia, 51 (7), 1192–1201.
  • Schley, G., et al., 2015. Comparison of plasma and urine biomarker performance in acute kidney injury. PLOS one, 10 (12), e0145042.
  • Shaikh, N., et al., 2015. Procalcitonin, C-reactive protein, and erythtrocyte sedimentation rate for the diagnosis of acute pyelonephritis in children. Cochrane database syst rev, 20 (1), CD009185.
  • Shaikh, N., et al., 2019a. Association of renal scarring with number of febrile urinary tract infection in children. JAMA pediatrics, 173 (10), 949–952.
  • Shaikh, N., et al., 2019b. Host and bacterial markers that differ in children with cystitis and pyelonephritis. The journal of pediatrics, 209, 146–153.e.1.
  • Simões e Silva, A.C., et al., 2020. Urinary tract infection in pediatrics: an overview. Jornal de pediatria, 96 (S1), 65–79.
  • Subcommittee on Urinary Tract Infection. 2016. Reaffirmation of AAP clinical practice guideline: the diagnosis and management of the initial urinary tract infection in febrile infants and young children 2-24 months of ages. Pediatrics, 138 (6), e20163026.
  • Urbschat, A., et al., 2014. Upper and lower urinary tract infections can be detected early but not be discriminated by urinary NGAL in adults. International urology and nephrology, 46 (12), 2243–2249.
  • Vysakh, A., et al., 2017. Role of antioxidant defence, renal toxicity markers and inflammatory cascade in disease progression of acute pyelonephritis in experimental rat model. Microbial pathogenesis, 109, 189–194.
  • Washino, S., et al., 2018. Early urinary biomarkers of renal tubular damage by a high-salt intake independent of blood pressure in normotensive rats. Clinical and experimental pharmacology & physiology, 45 (3), 261–268.
  • Washino, S., et al., 2019. A novel biomarker for acute kidney injury, Vanin-1, for obstructive nephropathy: a prospective cohort pilot study. International journal of molecular sciences, 20 (4), 899.
  • Zhang, H., et al., 2016. Diagnostic value of serum procalcitonin for acute pyelonephritis in infants and children with urinary tract infections: an updated meta-analysis. World journal of urology, 34 (3), 431–441.

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