Dwyer ME, Krambeck AE, Bergstralh EJ, Milliner DS, Lieske JC, Rule AD. Temporal trends in incidence of kidney stones among children: a 25-year population based study. J Urol. 2012;188:247–52.
PubMed
PubMed Central
Google Scholar
Routh JC, Graham DA, Nelson CP. Epidemiological trends in pediatric urolithiasis at United States freestanding pediatric hospitals. J Urol. 2010;184:1100–5.
PubMed
Google Scholar
Tasian GE, Ross ME, Song L, et al. Annual incidence of nephrolithiasis among children and adults in South Carolina from 1997 to 2012. Clin J Am Soc Nephrol. 2016;11:488–96.
PubMed
PubMed Central
CAS
Google Scholar
Alexander RT, Hemmelgarn BR, Wiebe N, et al. Kidney stones and kidney function loss: a cohort study. BMJ. 2012;345:e5287.
Ferraro PM, Taylor EN, Eisner BH, et al. History of kidney stones and the risk of coronary heart disease. JAMA. 2013;310:408–15.
Denburg MR, Leonard MB, Haynes K, et al. Risk of fracture in urolithiasis: a population-based cohort study using the health improvement network. Clin J Am Soc Nephrol. 2014;9:2133–40.
PubMed
PubMed Central
Google Scholar
Pearle MS, Calhoun EA, Curhan GC, Project UDoA. Urologic diseases in America project: Urolithiasis. J Urol. 2005;173:848–57.
PubMed
Google Scholar
Wang H-HS, Wiener JS, Lipkin ME, Scales CD Jr, Ross SS, Routh JC. Estimating the nationwide, hospital based economic impact of pediatric urolithiasis. J Urol. 2015;193:1855–9.
PubMed
Google Scholar
Ward JB, Feinstein L, Pierce C, et al. Pediatric urinary stone disease in the United States: the urologic diseases in America project. Urology. 2019;129:180–7.
PubMed
PubMed Central
Google Scholar
Issler N, Dufek S, Kleta R, Bockenhauer D, Smeulders N, van‘t Hoff W. Epidemiology of paediatric renal stone disease: a 22-year single centre experience in the UK. BMC Nephrol. 2017;18:136.
Novak TE, Lakshmanan Y, Trock BJ, Gearhart JP, Matlaga BR. Sex prevalence of pediatric kidney stone disease in the United States: An epidemiologic investigation. Urology. 2009;74:104–7.
PubMed
Google Scholar
Cambareri GM, Giel DW, Bayne AP, et al. Do overweight and obese pediatric stone formers have differences in metabolic abnormalities compared with normal-weight stone formers? Urology. 2017;101:26–30.
PubMed
Google Scholar
Taylor EN, Stampfer MJ, Curhan GC. Obesity, weight gain, and the risk of kidney stones. JAMA. 2005;293:455–62.
Kim SS, Luan X, Canning DA, Landis JR, Keren R. Association between body mass index and urolithiasis in children. J Urol. 2011;186:1734–9.
PubMed
PubMed Central
Google Scholar
Sas DJ, Becton LJ, Tutman J, Lindsay LA, Wahlquist AH. Clinical, demographic, and laboratory characteristics of children with nephrolithiasis. Urolithiasis. 2016;44:241–6.
PubMed
CAS
Google Scholar
Alfandary H, Haskin O, Davidovits M, Pleniceanu O, Leiba A, Dagan A. Increasing prevalence of nephrolithiasis in association with increased body mass index in children: a population based study. J Urol. 2018;199:1044–9.
PubMed
Google Scholar
VanDervoort K, Wiesen J, Frank R, et al. Urolithiasis in pediatric patients: a single center study of incidence, clinical presentation and outcome. J Urol. 2007;177:2300–5.
PubMed
Google Scholar
Milliner DS, Murphy ME. Urolithiasis in pediatric patients. Mayo Clin Proc. 1993;68:241–8.
PubMed
CAS
Google Scholar
Hernandez JD, Ellison JS, Lendvay TS. Current trends, evaluation, and management of pediatric nephrolithiasis. JAMA Pediatr. 2015;169:964–70.
PubMed
Google Scholar
Miller LA, Stapleton FB. Urinary volume in children with urolithiasis. J Urol. 1989;141:918–20.
PubMed
CAS
Google Scholar
Sakhaee K, Harvey JA, Padalino PK, Whitson P, Pak CY. The potential role of salt abuse on the risk for kidney stone formation. J Urol. 1993;150:310–2.
PubMed
CAS
Google Scholar
Sampath A, Kossoff EH, Furth SL, Pyzik PL, Vining EP. Kidney stones and the ketogenic diet: risk factors and prevention. J Child Neurol. 2007;22:375–8.
PubMed
Google Scholar
Ferraro PM, Taylor EN, Gambaro G, Curhan GC. Soda and other beverages and the risk of kidney stones. Clin J Am Soc Nephrol. 2013;8:1389–95.
PubMed
PubMed Central
Google Scholar
Kokorowski PJ, Hubert K, Nelson CP. Evaluation of pediatric nephrolithiasis. Indian J Urol. 2010;26:531–5.
PubMed
PubMed Central
Google Scholar
Fulgham PF, Assimos DG, Pearle MS, Preminger GM. Clinical effectiveness protocols for imaging in the management of ureteral calculous disease: AUA technology assessment. T J Urol. 2013;189:1203–13.
Google Scholar
Riccabona M, Avni FE, Blickman JG, et al. Imaging recommendations in paediatric uroradiology. Pediatr Radiol. 2009;39:891–8.
PubMed
Google Scholar
Goske MJ, Applegate KE, Boylan J, et al. The image gently campaign: working together to change practice. Am J Roentgenol. 2008;190:273–4.
Google Scholar
Roberson NP, Dillman JR, O’Hara SM, et al. Comparison of ultrasound versus computed tomography for the detection of kidney stones in the pediatric population: a clinical effectiveness study. Pediatr Radiol. 2018;48:962–72.
PubMed
Google Scholar
Passerotti C, Chow JS, Silva A, et al. Ultrasound versus computerized tomography for evaluating urolithiasis. J Urol. 2009;182:1829–34.
PubMed
Google Scholar
Smith-Bindman R, Aubin C, Bailitz J, et al. Ultrasonography versus computed tomography for suspected nephrolithiasis. New Engl J Med. 2014;371:1100–10.
PubMed
CAS
Google Scholar
Granata A, Andrulli S, Bigi M, et al. Predictive role of duplex Doppler ultrasonography in the diagnosis of acute renal obstruction in patients with unilateral renal colic. Clin Nephrol. 2009;71:680–6.
PubMed
CAS
Google Scholar
Kielar AZ, Shabana W, Vakili M, Rubin J. Prospective evaluation of Doppler sonography to detect the twinkling artifact versus unenhanced computed tomography for identifying urinary tract calculi. J Ultrasound Med. 2012;31:1619–25.
PubMed
Google Scholar
Niemann T, Kollmann T, Bongartz G. Diagnostic performance of low-dose CT for the detection of urolithiasis: a meta-analysis. Am J Roentgenol. 2008;191:396–401.
Google Scholar
Khong P, Ringertz H, Donoghue V, et al. ICRP publication 121: radiological protection in paediatric diagnostic and interventional radiology. Ann ICRP. 2013;42:1–63.
PubMed
Google Scholar
Ristau B, Dudley AG, Casella DP, et al. Tracking of radiation exposure in pediatric stone patients: The time is now. J Pediatr Urol. 2015;11:339. e1–5.
CAS
Google Scholar
Routh JC, Graham DA, Nelson CP. Trends in imaging and surgical management of pediatric urolithiasis at American pediatric hospitals. J Urol. 2010;184:1816–22.
PubMed
Google Scholar
Tasian GE, Pulido JE, Keren R, et al. Use of and regional variation in initial CT imaging for kidney stones. Pediatrics. 2014;134:909–15.
PubMed
PubMed Central
Google Scholar
Johnson EK, Graham DA, Chow JS, Nelson CP. Nationwide emergency department imaging practices for pediatric urolithiasis: room for improvement. J Urol. 2014;192:200–6.
PubMed
PubMed Central
Google Scholar
ElSheemy MS, Shouman AM, Shoukry AI, et al. Ureteric stents vs percutaneous nephrostomy for initial urinary drainage in children with obstructive anuria and acute renal failure due to ureteric calculi: a prospective, randomised study. BJU Int. 2015;115:473–9.
PubMed
Google Scholar
Kalorin CM, Zabinski A, Okpareke I, White M, Kogan BA. Pediatric urinary stone disease—does age matter? J Urol. 2009;181:2267–71.
PubMed
Google Scholar
Pietrow PK, Pope JC, Adams MC, Shyr Y, Brock JW. Clinical outcome of pediatric stone disease. J Urol. 2002;167:670–3.
PubMed
Google Scholar
Dangle P, Ayyash O IV, Shaikh H III, et al. Predicting spontaneous stone passage in prepubertal children: a single institution cohort. J Endourol. 2016;30:945–9.
PubMed
Google Scholar
Özcan C, Aydoğdu O, Senocak C, et al. Predictive factors for spontaneous stone passage and the potential role of serum C-reactive protein in patients with 4 to 10 mm distal ureteral stones: a prospective clinical study. J Urol. 2015;194:1009–13.
PubMed
Google Scholar
Ayaz UY, Dilli A, Ayaz S, Api A. Ultrasonographic evaluation of ureteral stones in children: can we use stone width as a predictor of spontaneous passage? Med Ultrason. 2014;16:298–303.
PubMed
Google Scholar
Masoumi K, Forouzan A, Darian AA, Feli M, Barzegari H, Khavanin A. Comparison of clinical efficacy of intravenous acetaminophen with intravenous morphine in acute renal colic: a randomized, double-blind, controlled trial. Emerg Med Int. 2014;2014:571326.
PubMed
PubMed Central
Google Scholar
Holdgate A, Pollock T. Systematic review of the relative efficacy of non-steroidal anti-inflammatory drugs and opioids in the treatment of acute renal colic. BMJ. 2004;328:1401.
PubMed
PubMed Central
Google Scholar
Hollingsworth JM, Rogers MA, Kaufman SR, et al. Medical therapy to facilitate urinary stone passage: a meta-analysis. Lancet. 2006;368:1171–9.
PubMed
Google Scholar
Tian D, Li N, Huang W, Zong H, Zhang Y. The efficacy and safety of adrenergic alpha-antagonists in treatment of distal ureteral stones in pediatric patients: a systematic review and meta-analysis. J Pediatr Surg. 2017;52:360–5.
PubMed
Google Scholar
Velázquez N, Zapata D, Wang H-HS, Wiener JS, Lipkin ME, Routh JC. Medical expulsive therapy for pediatric urolithiasis: systematic review and meta-analysis. J Pediatr Urol. 2015;11:321–7.
PubMed
PubMed Central
Google Scholar
Assimos D, Krambeck A, Miller NL, et al. Surgical management of stones: American urological association/Endourological society guideline. Part I J Urol. 2016;196:1153–60.
PubMed
Google Scholar
Sarica K, Sahin C. Contemporary minimally invasive surgical management of urinary stones in children. Eur Urol Suppl. 2017;16:2–7.
Google Scholar
Yucel S, Akin Y, Danisman A, Guntekin E. Complications and associated factors of pediatric extracorporeal shock wave lithotripsy. J Urol. 2012;187:1812–6.
PubMed
Google Scholar
Fayad A, El-Sheikh M, Abdelmohsen M, Abdelraouf H. Evaluation of renal function in children undergoing extracorporeal shock wave lithotripsy. J Urol. 2010;184:1111–5.
PubMed
CAS
Google Scholar
El-Nahas AR, Awad BA, El-Assmy AM, et al. Are there long-term effects of extracorporeal shockwave lithotripsy in paediatric patients? BJU Int. 2013;111:666–71.
PubMed
Google Scholar
Denburg MR, Jemielita TO, Tasian GE, et al. Assessing the risk of incident hypertension and chronic kidney disease after exposure to shock wave lithotripsy and ureteroscopy. Kidney Int. 2016;89:185–92.
PubMed
PubMed Central
Google Scholar
Ishii H, Griffin S, Somani BK. Ureteroscopy for stone disease in the paediatric population: a systematic review. BJU Int. 2015;115:867–73.
PubMed
Google Scholar
Herndon CA, Viamonte L, Joseph DB. Ureteroscopy in children: is there a need for ureteral dilation and postoperative stenting? J Pediatr Urol. 2006;2:290–3.
PubMed
Google Scholar
Bhageria A, Nayak B, Seth A, Dogra PN, Kumar R. Paediatric percutaneous nephrolithotomy: single-centre 10-year experience. J Pediatr Urol. 2013;9:472–5.
ElSheemy MS, Daw K, Habib E, et al. Lower calyceal and renal pelvic stones in preschool children: a comparative study of mini-percutaneous nephrolithotomy versus extracorporeal shockwave lithotripsy. Int J Urol. 2016;23:564–70.
PubMed
Google Scholar
Pelit ES, Atis G, Kati B, et al. Comparison of mini-percutaneous nephrolithotomy and retrograde intrarenal surgery in preschool-aged children. Urology. 2017;101:21–5.
PubMed
Google Scholar
Colleran GC, Callahan MJ, Paltiel HJ, et al. Imaging in the diagnosis of pediatric urolithiasis. Pediatr Radiol. 2017;47:5–16.
PubMed
Google Scholar
Morrison JC, Van Batavia JP, Darge K, Long CJ, Shukla AR, Srinivasan AK. Ultrasound guided ureteroscopy in children: Safety and success. J Pediatr Urol. 2018;14:64. e1–6.
Google Scholar
Hong Y, Xu Q, Huang X, Zhu Z, Yang Q, An L. Ultrasound-guided minimally invasive percutaneous nephrolithotomy in the treatment of pediatric patients < 6 years: a single-center 10 years’ experience. Medicine. 2018;97:e01740.
Google Scholar
Tasian GE, Kabarriti AE, Kalmus A, Furth SL. Kidney stone recurrence among children and adolescents. J Urol. 2017;197:246–52.
PubMed
Google Scholar
Sas DJ. An update on the changing epidemiology and metabolic risk factors in pediatric kidney stone disease. Clin J Am Soc Nephrol. 2011;6:2062–8.
PubMed
Google Scholar
Cambareri GM, Kovacevic L, Bayne AP, et al. National multi-institutional cooperative on urolithiasis in children: age is a significant predictor of urine abnormalities. J Pediatr Urol. 2015;11:218–23.
PubMed
Google Scholar
Coward R, Peters C, Duffy P, et al. Epidemiology of paediatric renal stone disease in the UK. Arch Dis Child. 2003;88:962–5.
PubMed
PubMed Central
CAS
Google Scholar
Heilberg IP, Goldfarb DS. Optimum nutrition for kidney stone disease. Adv Chronic Kidney Dis. 2013;20:165–74.
PubMed
Google Scholar
Borghi L, Meschi T, Amato F, Briganti A, Novarini A, Giannini A. Urinary volume, water and recurrences in idiopathic calcium nephrolithiasis: a 5-year randomized prospective study. J Urol. 1996;155:839–43.
PubMed
CAS
Google Scholar
Carvalho-Salemi J, Moreno L, Michael M. Medical nutrition therapy for pediatric kidney stone prevention, part one. J Renal Nutr. 2017;27:e5–8.
Google Scholar
Carvalho-Salemi J, Moreno L, Michael M. Medical nutrition therapy for pediatric kidney stone prevention, part two. J Renal Nutr. 2017;27:e11–4.
Google Scholar
Curhan GC, Willett WC, Rimm EB, Stampfer MJ. A prospective study of dietary calcium and other nutrients and the risk of symptomatic kidney stones. New Engl J Med. 1993;328:833–8.
PubMed
CAS
Google Scholar
Naseri M, Sadeghi R. Role of high-dose hydrochlorothiazide in idiopathic hypercalciuric urolithiasis of childhood. Iran J Kidney Dis. 2011;5:162–8.
PubMed
Google Scholar
Sarica K, Erturhan S, Yurtseven C, Yaǧci F. Effect of potassium citrate therapy on stone recurrence and regrowth after extracorporeal shockwave lithotripsy in children. J Endourol. 2006;20:875–9.
PubMed
Google Scholar
Oğuz U, Unsal A. The efficacy of medical prophylaxis in children with calcium oxalate urolithiasis after percutaneous nephrolithotomy. J Endourol. 2013;27:92–5.
PubMed
Google Scholar
McNally MA, Pyzik PL, Rubenstein JE, Hamdy RF, Kossoff EH. Empiric use of oral potassium citrate reduces symptomatic kidney stone incidence with the ketogenic diet. Pediatrics. 2009;124:e300–4.
PubMed
PubMed Central
Google Scholar