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Chapter 14.3 - Fetal urinary tract obstruction

Fetal cystoscopy

from Section 2 - Fetal disease

Published online by Cambridge University Press:  05 February 2013

Mark D. Kilby
Affiliation:
Department of Fetal Medicine, University of Birmingham
Anthony Johnson
Affiliation:
Baylor College of Medicine, Texas
Dick Oepkes
Affiliation:
Department of Obstetrics, Leiden University Medical Center
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Summary

Introduction

Congenital anomalies of the urinary tract are relatively common, affecting approximately 1:500 pregnancies in which obstructive uropathies account for the majority of cases [1–4]. Obstruction may be at different levels, at the ureteropelvic junction (upper level) or ureterovesical junction (mid level) or urethral (lower level). The upper and mid urinary tract obstructions may be unilateral or bilateral with different consequences depending on the laterality. When the obstruction is bilateral or at the level of urethra (bladder outflow obstruction known as lower urinary tract obstruction or LUTO), the perinatal prognosis is poor due to the consequences of reduced fetal micturition and urine retention, leading to severe oligohydramnios and renal damage [1–3].

According to a British study, LUTO affected 2.2 cases in 10 000 births in a northern region of England between 1984 and 1997 [5]. Despite the low incidence, LUTO has the greatest impact on perinatal and child health among the congenital uropathies [6].

The natural history of LUTO is dependent on the degree of bladder outflow obstruction (complete or partial) and gestational age at presentation. These two factors may be inter-related since complete bladder obstruction is associated with earlier manifestations of the obstructive uropathy.

Type
Chapter
Information
Fetal Therapy
Scientific Basis and Critical Appraisal of Clinical Benefits
, pp. 253 - 260
Publisher: Cambridge University Press
Print publication year: 2012

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References

Kerecuk, L, Schreuder, MF, Woolf AS. Renal tract malformations: perspectives for nephrologists. Nat Clin Pract Nephrol 2008;4(6):312–25.Google Scholar
Lissauer, D, Morris, RK, Kilby, MD. Fetal lower urinary tract obstruction. Semin Fetal Neonatal Med 2007;12(6):464–70.Google Scholar
Vanderheyden, T, Kumar, S, Fisk, NM. Fetal renal impairment. Semin Neonatol 2003;8(4):279–89.Google Scholar
In re Brown. North East Rep Second Ser 1997;689:397–406.
Anumba, DO, Scott, JE, Plant, ND, Robson, SC. Diagnosis and outcome of fetal lower urinary tract obstruction in the northern region of England. Prenat Diagn 2005;25(1):7–13.Google Scholar
Agarwal, SK, Fisk, NM. In utero therapy for lower urinary tract obstruction. Prenat Diagn 2001;21(11):970–6.Google Scholar
Freedman, AL, Johnson, MP, Smith, CA, Gonzalez, R, Evans, MI. Long-term outcome in children after antenatal intervention for obstructive uropathies. Lancet 1999;354(9176):374–7.Google Scholar
Parkhouse, HF, Barratt, TM. Investigation of the dilated urinary tract. Pediatr Nephrol 1988;2(1):43–7.Google Scholar
Robyr, R, Benachi, A, Daikha-Dahmane, F, et al. Correlation between ultrasound and anatomical findings in fetuses with lower urinary tract obstruction in the first half of pregnancy. Ultrasound Obstet Gynecol 2005;25(5):478–82.Google Scholar
Young, ID, McKeever, PA, Brown, LA, Lang, GD. Prenatal diagnosis of the megacystis-microcolon-intestinal hypoperistalsis syndrome. J Med Genet 1989;26(6):403–6.Google Scholar
Sepulveda, W. Megacystis in the first trimester. Prenat Diagn 2004;24(2):144–9.Google Scholar
Favre, R, Kohler, M, Gasser, B, Muller, F, Nisand, I. Early fetal megacystis between 11 and 15 weeks of gestation. Ultrasound Obstet Gynecol 1999;14(6):402–6.Google Scholar
Jouannic, JM, Hyett, JA, Pandya, PP, et al. Perinatal outcome in fetuses with megacystis in the first half of pregnancy. Prenat Diagn 2003;23(4):340–4.Google Scholar
Liao, AW, Sebire, NJ, Geerts, L, Cicero, S, Nicolaides, KH. Megacystis at 10–14 weeks of gestation: chromosomal defects and outcome according to bladder length. Ultrasound Obstet Gynecol 2003;21(4):338–41.Google Scholar
Yilmazturk, A, Schluter, W, Soyaslan-Stranzenbach, M. [Prenatal ultrasound diagnosis in a case of urethral atresia]. Zentralbl Gynakol 1990;112(22):1427–31.Google Scholar
Ruano, R, Duarte, S, Bunduki, V, et al. Fetal cystoscopy for severe lower urinary tract obstruction – initial experience of a single center. Prenat Diagn 2010;30(1):30–9.Google Scholar
Aoba, T, Kitagawa, H, Pringle, KC, et al. Can a pressure-limited vesico-amniotic shunt tube preserve normal bladder function? J Pediatr Surg 2008;43(12):2250–5.Google Scholar
Kitagawa, H, Pringle, KC, Koike, J, et al. Early bladder wall changes after creation of obstructive uropathy in the fetal lamb. Pediatr Surg Int 2006;22(11):875–9.Google Scholar
Nagae, H, Kitagawa, H, Pringle, KC, et al. Pressure-limited vesico-amniotic shunt tube for fetal obstructive uropathy. J Pediatr Surg 2006;41(12):2086–9.Google Scholar
Sato, Y, Kitagawa, H, Pringle, KC, et al. Effects of early vesicostomy in obstructive uropathy on bladder development. J Pediatr Surg 2004;39(12):1849–52.Google Scholar
Harrison, MR, Golbus, MS, Filly, RA, et al. Management of the fetus with congenital hydronephrosis. J Pediatr Surg 1982;17(6):728–42.Google Scholar
Freedman, AL, Qureshi, F, Shapiro, E, et al. Smooth muscle development in the obstructed fetal bladder. Urology 1997;49(1):104–7.Google Scholar
Gloor, JM, Ogburn, PL Jr, Breckle, RJ, Morgenstern, BZ, Milliner, DS. Urinary tract anomalies detected by prenatal ultrasound examination at Mayo Clinic Rochester. Mayo Clin Proc 1995;70(6):526–31.Google Scholar
Shimada, K, Matsumoto, F, Tohda, A, Ueda, M. Histological study of fetal kidney with urethral obstruction and vesicoureteral reflux: a consideration on the etiology of congenital reflux nephropathy. Int J Urol 2003;10(10):518–24.Google Scholar
Bunduki, V, Saldanha, LB, Sadek, L, et al. Fetal renal biopsies in obstructive uropathy: feasibility and clinical correlations – preliminary results. Prenat Diagn 1998;18(2):101–9.Google Scholar
Bernardes, LS, Aksnes, G, Saada, J, et al. Keyhole sign: how specific is it for the diagnosis of posterior urethral valves? Ultrasound Obstet Gynecol 2009;34(4):419–23.Google Scholar
Peters, CA. Lower urinary tract obstruction: clinical and experimental aspects. Br J Urol 1998;81 Suppl 2:22–32.Google Scholar
Wu, S, Johnson, MP. Fetal lower urinary tract obstruction. Clin Perinatol 2009;36(2):377–90, x.Google Scholar
Miller, OF, Lashley, DB, McAleer, IM, Kaplan, GW. Diagnosis of urethral obstruction with prenatal magnetic resonance imaging. J Urol 2002;168(3):1158–9.Google Scholar
Quintero, RA, Hume, R, Smith, C, et al. Percutaneous fetal cystoscopy and endoscopic fulguration of posterior urethral valves. Am J Obstet Gynecol 1995;172(1 Pt 1):206–9.Google Scholar
Quintero, RA, Johnson, MP, Romero, R, et al. In-utero percutaneous cystoscopy in the management of fetal lower obstructive uropathy. Lancet 1995;346(8974):537–40.Google Scholar
Welsh, A, Agarwal, S, Kumar, S, Smith, RP, Fisk, NM. Fetal cystoscopy in the management of fetal obstructive uropathy: experience in a single European centre. Prenat Diagn 2003;23(13):1033–41.Google Scholar
Ruano, R. Fetal surgery for severe lower urinary tract obstruction. Prenat Diagn 2011;31(7):667–74.Google Scholar
Ruano, R, Pimenta, EJ, Duarte, S, Zugaib, M. Four-dimensional ultrasonographic imaging of fetal lower urinary tract obstruction and guidance of percutaneous cystoscopy. Ultrasound Obstet Gynecol 2009;33(2):250–2.Google Scholar
Harrison, MR, Golbus, MS, Filly, RA, Nakayama, DK, deLorimier, AA. Fetal surgical treatment. Pediatr Ann 1982;11(11):896–9, 901–3.Google Scholar
Adra, A, Cordero, D, Mejides, A, et al. Caudal regression syndrome: etiopathogenesis, prenatal diagnosis, and perinatal management. Obstet Gynecol Surv 1994;49(7):508–16.Google Scholar
Brunisholz, Y, Vial, Y, Maillard-Brignon, C, et al. Prenatal diagnosis of urinary malformations: results in a series of 93 consecutive cases. Swiss Med Wkly 2001;131(7–8):95–8.Google Scholar
Damen-Elias, HA, De Jong, TP, Stigter, RH, Visser, GH, Stoutenbeek, PH. Congenital renal tract anomalies: outcome and follow-up of 402 cases detected antenatally between 1986 and 2001. Ultrasound Obstet Gynecol 2005;25(2):134–43.Google Scholar
Karnak, I, Woo, LL, Shah, SN, et al. Prenatally detected ureteropelvic junction obstruction: clinical features and associated urologic abnormalities. Pediatr Surg Int 2008;24(4):395–402.Google Scholar
Kemper, MJ, Mueller-Wiefel, DE. Prognosis of antenatally diagnosed oligohydramnios of renal origin. Eur J Pediatr 2007;166(5):393–8.Google Scholar
Lee, RS, Cendron, M, Kinnamon, DD, Nguyen, HT. Antenatal hydronephrosis as a predictor of postnatal outcome: a meta-analysis. Pediatrics 2006;118(2):586–93.Google Scholar
Mandelbrot, L, Dumez, Y, Muller, F, Dommergues, M. Prenatal prediction of renal function in fetal obstructive uropathies. J Perinat Med 1991;19 Suppl 1:283–7.Google Scholar
Reinberg, Y, de Castano, I, Gonzalez, R. Prognosis for patients with prenatally diagnosed posterior urethral valves. J Urol 1992;148(1):125–6.Google Scholar
Tsatsaris, V, Gagnadoux, MF, Aubry, MC, et al. Prenatal diagnosis of bilateral isolated fetal hyperechogenic kidneys. Is it possible to predict long term outcome? BJOG 2002;109(12):1388–93.Google Scholar
Grignon, A, Filion, R, Filiatrault, D, et al. Urinary tract dilatation in utero: classification and clinical applications. Radiology 1986;160(3):645–7.Google Scholar
Morris, RK, Malin, GL, Khan, KS, Kilby, MD. Antenatal ultrasound to predict postnatal renal function in congenital lower urinary tract obstruction: systematic review of test accuracy. BJOG 2009;116(10):1290–9.Google Scholar
Nicolini, U, Spelzini, F. Invasive assessment of fetal renal abnormalities: urinalysis, fetal blood sampling and biopsy. Prenat Diagn 2001;21(11):964–9.Google Scholar
Qureshi, F, Jacques, SM, Seifman, B, et al. In utero fetal urine analysis and renal histology correlate with the outcome in fetal obstructive uropathies. Fetal Diagn Ther 1996;11(5):306–12.Google Scholar
Eugene, M, Muller, F, Dommergues, M, Le Moyec, L, Dumez, Y. Evaluation of postnatal renal function in fetuses with bilateral obstructive uropathies by proton nuclear magnetic resonance spectroscopy. Am J Obstet Gynecol 1994;170(2):595–602.Google Scholar
Ciardelli, V, Rizzo, N, Farina, A, et al. Prenatal evaluation of fetal renal function based on serum beta(2)-microglobulin assessment. Prenat Diagn 2001;21(7):586–8.Google Scholar
Muller, F, Dommergues, M, Mandelbrot, L, et al. Fetal urinary biochemistry predicts postnatal renal function in children with bilateral obstructive uropathies. Obstet Gynecol 1993;82(5):813–20.Google Scholar
Lipitz, S, Ryan, G, Samuell, C, et al. Fetal urine analysis for the assessment of renal function in obstructive uropathy. Am J Obstet Gynecol 1993;168(1 Pt 1):174–9.Google Scholar
Nicolini, U, Fisk, NM, Rodeck, CH, Beacham, J. Fetal urine biochemistry: an index of renal maturation and dysfunction. Br J Obstet Gynaecol 1992;99(1):46–50.Google Scholar
Nicolini, U, Tannirandorn, Y, Vaughan, J, et al. Further predictors of renal dysplasia in fetal obstructive uropathy: bladder pressure and biochemistry of ‘fresh’ urine. Prenat Diagn 1991;11(3):159–66.Google Scholar
Morris, RK, Quinlan-Jones, E, Kilby, MD, Khan, KS. Systematic review of accuracy of fetal urine analysis to predict poor postnatal renal function in cases of congenital urinary tract obstruction. Prenat Diagn 2007;27(10):900–11.Google Scholar
Ruano, R, Yoshisaki, CT, Salustiano, EM, et al. Early fetal cystoscopy for first-trimester severe megacystis. Ultrasound Obstet Gynecol 2011;37(6):696–701.Google Scholar
Canning, DA. Fetal cystoscopy in the management of fetal obstructive uropathy: experience in a single European centre. J Urol 2005;173(1):238.Google Scholar
Clifton, MS, Harrison, MR, Ball, R, Lee, H. Fetoscopic transuterine release of posterior urethral valves: a new technique. Fetal Diagn Ther 2008;23(2):89–94.Google Scholar
Hofmann, R, Becker, T, Meyer-Wittkopf, M, et al. Fetoscopic placement of a transurethral stent for intrauterine obstructive uropathy. J Urol 2004;171(1):384–6.Google Scholar
Holmes, N, Harrison, MR, Baskin, LS. Fetal surgery for posterior urethral valves: long-term postnatal outcomes. Pediatrics 2001;108(1):E7.Google Scholar
Jung, E, Won, HS, Shim, JY, et al. Successful outcome following prenatal intervention in a female fetus with bladder outlet obstruction. Prenat Diagn 2005;25(12):1107–10.Google Scholar
Quintero, RA, Homsy, Y, Bornick, PW, Allen, M, Johnson, PK. In-utero treatment of fetal bladder-outlet obstruction by a ureterocele. Lancet 2001;357(9272):1947–8.Google Scholar
Quintero, RA, Morales, WJ, Allen, MH, Bornick, PW, Johnson, P. Fetal hydrolaparoscopy and endoscopic cystotomy in complicated cases of lower urinary tract obstruction. Am J Obstet Gynecol 2000;183(2):324–30; discussion 330–3.Google Scholar
Quintero, RA, Shukla, AR, Homsy, YL, Bukkapatnam, R. Successful in utero endoscopic ablation of posterior urethral valves: a new dimension in fetal urology. Urology 2000;55(5):774.Google Scholar
Morris, RK, Ruano, R, Kilby, MD. The effectiveness of fetal cystoscopy as a diagnostic and therapeutic intervention for lower urinary tract obstruction: a systematic review. Ultrasound Obstet Gynecol 2011;37(6):629–37.Google Scholar

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