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1. Khan SR. Animal models of kidney stone for-mation: an analysis. World J Urol. 1997; 15:236–243. 2. Lee YH, Chang LS, Chen MT. Characterization of ethylene glycol induced urolithiasis model in rats. J Urol ROC 1991. 2:518–524. 3. Lee YH, Huang WC, Chiang H. Determinant role of testosterone in the pathogenesis of urolithiasis in rats. J Urol 1992. 147:1134–1138. 4. Lee YH, Tsai JY, Huang JK. Combined use of 30% lactose rich diet and 1% ethylene glycol: a new animal model for study of urolithiasis. J Urol ROC 2000. 11:149–154. 5. Leth PM, Gregersen M. Ethylene glycol poison-ing. Forensic Sci Int 2005. 155: 179–184. 6. Green ML, Hatch M, Freel RW. Ethylene glycol induces hyperoxaluria without metabolic acidosis in rats. Am J Physiol Renal Physiol 2005. 289:F536–F543. 7. Pearle MS, Goldfarb DS, Assimos DG et al. Medical management of kidney stones: AUA guideline. J Urol. 2014. 192(2):316–324 8. Skolarikos A, Straub M, Knoll T et al. Metabolic evaluation and recurrence prevention for urinary stone patients: EAU guidelines. Eur Urol. 2015. 67(4):750–763 9. Каприн А.Д., Аполихин О.И., Сивков А.В., и др. Анализ уронефрологической заболеваемости и смертности в Российской Федерации за 2003-2013 гг. Экспериментальная и клиническая урология №2 2015, с4-12 10. Talati JJ, Tiselius HG, Albala DM, YE Z. Urolithiasis. Basic Science and Clinical Practice. ISBN: 978-14471-4383 (Print), Springer London, 2012. 11. Park S, Pearle MS. Pathophysiology and management of calcium stones. Urol Clin North Am. 2007; 34:323–334.