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Chapter 4 - Acute Liver Failure in Children

from Section I - Pathophysiology of Pediatric Liver Disease

Published online by Cambridge University Press:  19 January 2021

Frederick J. Suchy
Affiliation:
University of Colorado, Children’s Hospital Colorado, Aurora
Ronald J. Sokol
Affiliation:
University of Colorado, Children’s Hospital Colorado, Aurora
William F. Balistreri
Affiliation:
Cincinnati Children’s Hospital Medical Center, Cincinnati
Jorge A. Bezerra
Affiliation:
Cincinnati Children’s Hospital Medical Center, Cincinnati
Cara L. Mack
Affiliation:
University of Colorado, Children’s Hospital Colorado, Aurora
Benjamin L. Shneider
Affiliation:
Texas Children’s Hospital, Houston
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Summary

Pediatric acute liver failure (PALF) is not a single diagnosis. Rather, PALF is a complex, rapidly progressive clinical syndrome that is the final common pathway for many disparate conditions; some known and others yet to be identified [1, 2]. The estimated frequency of acute liver failure (ALF) in all age groups in the USA is about 17 cases per 100,000 population per year, but the frequency in children is unknown. In the USA, ALF accounts for 10–15% of pediatric liver transplants performed annually [3]. Management requires a multidisciplinary team involving the hepatologist, critical care specialist, and liver transplant surgeon. Acute liver failure is a rapidly evolving clinical condition. The absence of adequately powered studies to inform diagnostic algorithms, to assess markers of disease severity and trajectory, and to guide liver transplant decisions transfers a significant burden to the clinician. Constructing a diagnostic approach and individualized management strategy that may include the decision to pursue liver transplantation is challenging. There are a number of pressing clinical questions faced when children with PALF first present. Does the patient have a condition that is treatable? What is the risk of deterioration or improvement on each day the child is alive with his/her native liver? Is a living related or deceased liver transplant necessary for patient survival? Is full recovery possible without a liver transplant? Are associated morbidities recoverable or irreversible?

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Publisher: Cambridge University Press
Print publication year: 2021

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References

Narkewicz, MR, Horslen, S, Hardison, RM, Shneider, BL, Rodriguez-Baez, N, Alonso, EM, Ng, VL, et al. A learning collaborative approach increases specificity of diagnosis of acute liver failure in pediatric patients. Clin Gastroenterol Hepatol 2018;16:1801–10 e1803.CrossRefGoogle ScholarPubMed
Squires, JE, McKiernan, P, Squires, RH. Acute liver failure: an update. Clin Liver Dis 2018;22:773805.CrossRefGoogle ScholarPubMed
Kim, WR, Lake, JR, Smith, JM, Skeans, MA, Schladt, DP, Edwards, EB, Harper, AM, et al. OPTN/SRTR 2013 Annual Data Report: liver. Am J Transplant 2015;15(Suppl 2):128.Google Scholar
Ng, VL, Li, R, Loomes, KM, Leonis, MA, Rudnick, DA, Belle, SH, Squires, RH, et al. Outcomes of children with and without hepatic encephalopathy from the Pediatric Acute Liver Failure Study Group. J Pediatr Gastroenterol Nutr 2016;63:357–64.Google Scholar
Squires, RH Jr., Shneider, BL, Bucuvalas, J, Alonso, E, Sokol, RJ, Narkewicz, MR, Dhawan, A, et al. Acute liver failure in children: the first 348 patients in the pediatric acute liver failure study group. J Pediatr 2006;148:652–8.Google Scholar
Alonso, EM, Horslen, SP, Behrens, EM, Doo, E. Pediatric acute liver failure of undetermined cause: a research workshop. Hepatology 2017;65:1026–37.Google Scholar
Alam, S, Khanna, R, Sood, V, Lal, BB, Rawat, D. Profile and outcome of the first 109 cases of paediatric acute liver failure at a specialized paediatric liver unit in India. Liver Int 2017;37:1508–14.Google Scholar
Tannuri, AC, Porta, G, Kazue Miura, I, Santos, MM, Moreira Dde, A, de Rezende, NM, Miyatani, HT, et al. Pediatric acute liver failure in Brazil: is living donor liver transplantation the best choice for treatment? Liver Transpl 2016;22:1006–13.Google Scholar
Narkewicz, MR, Dell Olio, D, Karpen, SJ, Murray, KF, Schwarz, K, Yazigi, N, Zhang, S, et al. Pattern of diagnostic evaluation for the causes of pediatric acute liver failure: an opportunity for quality improvement. J Pediatr 2009;155:801–6 e801.CrossRefGoogle ScholarPubMed
Schwarz, KB, Dell Olio, D, Lobritto, SJ, Lopez, MJ, Rodriguez-Baez, N, Yazigi, NA, Belle, SH, et al. Analysis of viral testing in nonacetaminophen pediatric acute liver failure. J Pediatr Gastroenterol Nutr 2014;59:616–23.Google Scholar
Valencia, CA, Wang, X, Wang, J, Peters, A, Simmons, JR, Moran, MC, Mathur, A, et al. Deep sequencing reveals novel genetic variants in children with acute liver failure and tissue evidence of impaired energy metabolism. PLoS One 2016;11:e0156738.Google Scholar
Vilarinho, S, Choi, M, Jain, D, Malhotra, A, Kulkarni, S, Pashankar, D, Phatak, U, et al. Individual exome analysis in diagnosis and management of paediatric liver failure of indeterminate aetiology. J Hepatol 2014;61:1056–63.Google Scholar
Azhar, N, Ziraldo, C, Barclay, D, Rudnick, DA, Squires, RH, Vodovotz, Y. Pediatric Acute Liver Failure Study Group. Analysis of serum inflammatory mediators identifies unique dynamic networks associated with death and spontaneous survival in pediatric acute liver failure. PLoS One 2013;8:e78202.Google Scholar
Zamora, R, Vodovotz, Y, Mi, Q, Barclay, D, Yin, J, Horslen, S, Rudnick, D, et al. Data-driven modeling for precision medicine in pediatric acute liver failure. Mol Med 2017;22:821–9.Google ScholarPubMed
Bucuvalas, J, Filipovich, L, Yazigi, N, Narkewicz, MR, Ng, V, Belle, SH, Zhang, S, et al. Immunophenotype predicts outcome in pediatric acute liver failure. J Pediatr Gastroenterol Nutr 2013;56:311–15.CrossRefGoogle ScholarPubMed
McKenzie, RB, Berquist, WE, Nadeau, KC, Louie, CY, Chen, SF, Sibley, RK, Glader, BE, et al. Novel protocol including liver biopsy to identify and treat CD8+ T-cell predominant acute hepatitis and liver failure. Pediatr Transplant 2014;18:503–9.Google Scholar
Chapin, CA, Burn, T, Meijome, T, Loomes, KM, Melin-Aldana, H, Kreiger, PA, Whitington, PF, et al. Indeterminate pediatric acute liver failure is uniquely characterized by a CD103(+) CD8(+) T-cell infiltrate. Hepatology 2018;68:10871100.Google Scholar
Chapin, CA, Horslen, SP, Squires, JE, Lin, H, Blondet, N, Mohammad, S, Alonso, EM. Corticosteroid therapy for indeterminate pediatric acute liver failure and aplastic anemia with acute hepatitis. J Pediatr 2019;208:23–9.Google Scholar
Li, R, Belle, SH, Horslen, S, Chen, LW, Zhang, S, Squires, RH. Pediatric Acute Liver Failure Study Group. Clinical course among cases of acute liver failure of indeterminate diagnosis. J Pediatr 2016;171:163–70 e161–163.Google Scholar
Squires, JE, Rudnick, DA, Hardison, RM, Horslen, S, Ng, VL, Alonso, EM, Belle, SH, et al. Liver transplant listing in pediatric acute liver failure: practices and participant characteristics. Hepatology 2018;68:2338–47.Google Scholar
Ramachandran, A, Jaeschke, H. Acetaminophen hepatotoxicity. Semin Liver Dis 2019; 39(2):221–34.Google ScholarPubMed
Lee, WM. Acetaminophen (APAP) hepatotoxicity-Isn’t it time for APAP to go away? J Hepatol 2017;67:1324–31.CrossRefGoogle ScholarPubMed
Rumack, BH. Acetaminophen overdose in children and adolescents. Pediatr Clin North Am 1986;33:691701.Google Scholar
Zamora, R, Barclay, D, Yin, J, Alonso, EM, Leonis, MA, Mi, Q, Billiar, TR, et al. HMGB1 is a central driver of dynamic pro-inflammatory networks in pediatric acute liver failure induced by acetaminophen. Sci Rep 2019;9:5971.Google Scholar
Saito, C, Zwingmann, C, Jaeschke, H. Novel mechanisms of protection against acetaminophen hepatotoxicity in mice by glutathione and N-acetylcysteine. Hepatology 2010;51:246–54.Google Scholar
Heubi, JE, Barbacci, MB, Zimmerman, HJ. Therapeutic misadventures with acetaminophen: hepatoxicity after multiple doses in children. J Pediatr 1998;132:22–7.CrossRefGoogle ScholarPubMed
Court, MH, Freytsis, M, Wang, X, Peter, I, Guillemette, C, Hazarika, S, Duan, SX, et al. The UDP-glucuronosyltransferase (UGT) 1 A polymorphism c.2042C>G (rs8330) is associated with increased human liver acetaminophen glucuronidation, increased UGT1A exon 5a/5b splice variant mRNA ratio, and decreased risk of unintentional acetaminophen-induced acute liver failure. J Pharmacol Exp Ther 2013;345: 297307.CrossRefGoogle Scholar
Linakis, MW, Cook, SF, Kumar, SS, Liu, X, Wilkins, DG, Gaedigk, R, Gaedigk, A, et al. Polymorphic expression of UGT1A9 is associated with variable acetaminophen glucuronidation in neonates: a population pharmacokinetic and pharmacogenetic study. Clin Pharmacokinet 2018;57:1325–36.CrossRefGoogle ScholarPubMed
James, LP, Alonso, EM, Hynan, LS, Hinson, JA, Davern, TJ, Lee, WM, Squires, RH, et al. Detection of acetaminophen protein adducts in children with acute liver failure of indeterminate cause. Pediatrics 2006;118:e676681.Google Scholar
Alonso, EM, James, LP, Zhang, S, Squires, RH, Pediatric Acute Liver Failure Study Group. Acetaminophen adducts detected in serum of pediatric patients with acute liver failure. J Pediatr Gastroenterol Nutr 2015;61:102–7.Google Scholar
Devarbhavi, H, Patil, M, Reddy, VV, Singh, R, Joseph, T, Ganga, D. Drug-induced acute liver failure in children and adults: results of a single-centre study of 128 patients. Liver Int 2018;38:1322–9.Google Scholar
Amin, MD, Harpavat, S, Leung, DH. Drug-induced liver injury in children. Curr Opin Pediatr 2015;27:625–33.Google Scholar
Narkewicz, MR, Horslen, S, Belle, SH, Rudnick, DA, Ng, VL, Rosenthal, P, Romero, R, et al. Prevalence and significance of autoantibodies in children with acute liver failure. J Pediatr Gastroenterol Nutr 2017;64:210–17.CrossRefGoogle ScholarPubMed
Stravitz, RT, Lefkowitch, JH, Fontana, RJ, Gershwin, ME, Leung, PS, Sterling, RK, Manns, MP, et al. Autoimmune acute liver failure: proposed clinical and histological criteria. Hepatology 2011;53:517–26.CrossRefGoogle ScholarPubMed
Chinn, IK, Eckstein, OS, Peckham-Gregory, EC, Goldberg, BR, Forbes, LR, Nicholas, SK, Mace, EM, et al. Genetic and mechanistic diversity in pediatric hemophagocytic lymphohistiocytosis. Blood 2018;132:89100.Google Scholar
Chandrakasan, S, Filipovich, AH. Hemophagocytic lymphohistiocytosis: advances in pathophysiology, diagnosis, and treatment. J Pediatr 2013;163:1253–9.CrossRefGoogle ScholarPubMed
Picard, C, Bobby Gaspar, H, Al-Herz, W, Bousfiha, A, Casanova, JL, Chatila, T, Crow, YJ, et al. International Union of Immunological Societies: 2017 Primary Immunodeficiency Diseases Committee Report on Inborn Errors of Immunity. J Clin Immunol 2018;38:96128.Google Scholar
Grunebaum, E, Avitzur, Y. Liver-associated immune abnormalities. Autoimmun Rev 2019;18:1520.Google Scholar
Taylor, SA, Whitington, PF. Neonatal acute liver failure. Liver Transpl 2016;22:677–85.CrossRefGoogle ScholarPubMed
Whitington, PF. Gestational alloimmune liver disease and neonatal hemochromatosis. Semin Liver Dis 2012;32:325–32.Google ScholarPubMed
Sundaram, SS, Alonso, EM, Narkewicz, MR, Zhang, S, Squires, RH. Pediatric Acute Liver Failure Study Group. Characterization and outcomes of young infants with acute liver failure. J Pediatr 2011;159:813–18 e811.Google Scholar
Li, H, Byers, HM, Diaz-Kuan, A, Vos, MB, Hall, PL, Tortorelli, S, Singh, R, et al. Acute liver failure in neonates with undiagnosed hereditary fructose intolerance due to exposure from widely available infant formulas. Mol Genet Metab 2018;123:428–32.Google Scholar
Staufner, C, Haack, TB, Kopke, MG, Straub, BK, Kolker, S, Thiel, C, Freisinger, P, et al. Recurrent acute liver failure due to NBAS deficiency: phenotypic spectrum, disease mechanisms, and therapeutic concepts. J Inherit Metab Dis 2016;39:316.Google Scholar
Squires, RH, Ng, V, Romero, R, Ekong, U, Hardikar, W, Emre, S, Mazariegos, GV. Evaluation of the pediatric patient for liver transplantation: 2014 practice guideline by the American Association for the Study of Liver Diseases, American Society of Transplantation and the North American Society for Pediatric Gastroenterology, Hepatology and Nutrition. Hepatology 2014;60:362–98.CrossRefGoogle Scholar
Parikh, S, Karaa, A, Goldstein, A, Ng, YS, Gorman, G, Feigenbaum, A, Christodoulou, J, et al. Solid organ transplantation in primary mitochondrial disease: proceed with caution. Mol Genet Metab 2016;118:178–84.Google Scholar
Feldman, AG, Sokol, RJ, Hardison, RM, Alonso, EM, Squires, RH, Narkewicz, MR. Pediatric Acute Liver Failure Study Group. Lactate and lactate: pyruvate ratio in the diagnosis and outcomes of pediatric acute liver failure. J Pediatr 2017;182:217–22 e213.Google Scholar
Casey, JP, Slattery, S, Cotter, M, Monavari, AA, Knerr, I, Hughes, J, Treacy, EP, et al. Clinical and genetic characterisation of infantile liver failure syndrome type 1, due to recessive mutations in LARS. J Inherit Metab Dis 2015;38:1085–92.Google Scholar
Shneider, BL, Rinaldo, P, Emre, S, Bucuvalas, J, Squires, R, Narkewicz, M, Gondolesi, G, et al. Abnormal concentrations of esterified carnitine in bile: a feature of pediatric acute liver failure with poor prognosis. Hepatology 2005;41:717–21.CrossRefGoogle Scholar
Faghfoury, H, Baruteau, J, de Baulny, HO, Haberle, J, Schulze, A. Transient fulminant liver failure as an initial presentation in citrullinemia type I. Mol Genet Metab 2011;102:413–17.Google Scholar
Gallagher, RC, Lam, C, Wong, D, Cederbaum, S, Sokol, RJ. Significant hepatic involvement in patients with ornithine transcarbamylase deficiency. J Pediatr 2014;164:720–5 e726.Google Scholar
Korman, JD, Volenberg, I, Balko, J, Webster, J, Schiodt, FV, Squires, RH Jr., Fontana, RJ, et al. Screening for Wilson disease in acute liver failure: a comparison of currently available diagnostic tests. Hepatology 2008;48:1167–74.Google Scholar
Pandit, A, Mathew, LG, Bavdekar, A, Mehta, S, Ramakrishnan, G, Datta, S, Liu, YF. Hepatotropic viruses as etiological agents of acute liver failure and related-outcomes among children in India: a retrospective hospital-based study. BMC Res Notes 2015;8:381.CrossRefGoogle ScholarPubMed
Poddar, U, Thapa, BR, Prasad, A, Singh, K. Changing spectrum of sporadic acute viral hepatitis in Indian children. J Trop Pediatr 2002;48:210–13.Google Scholar
Safadi, R, Or, R, Ilan, Y, Naparstek, E, Nagler, A, Klein, A, Ketzinel-Gilaad, M, et al. Lack of known hepatitis virus in hepatitis-associated aplastic anemia and outcome after bone marrow transplantation. Bone Marrow Transplant 2001;27:183–90.CrossRefGoogle ScholarPubMed
Phillips, MJ, Blendis, LM, Poucell, S, Offterson, J, Petric, M, Roberts, E, Levy, GA, et al. Syncytial giant-cell hepatitis. Sporadic hepatitis with distinctive pathological features, a severe clinical course, and paramyxoviral features. N Engl J Med 1991;324:455–60.Google Scholar
Ojetti, V, Fini, L, Zileri Dal Verme, L, Migneco, A, Pola, P, Gasbarrini, A. Acute cryptogenic liver failure in an untreated coeliac patient: a case report. Eur J Gastroenterol Hepatol 2005;17:1119–21.Google Scholar
Heymann, F, Tacke, F. Immunology in the liver–from homeostasis to disease. Nat Rev Gastroenterol Hepatol 2016;13:88110.Google Scholar
Ramachandran, A, Jaeschke, H. Acetaminophen hepatotoxicity. Semin Liver Dis 2019;39:221–34.Google Scholar
Real, M, Barnhill, MS, Higley, C, Rosenberg, J, Lewis, JH. Drug-induced liver injury: highlights of the recent literature. Drug Saf 2019;42:365–87.Google Scholar
Mi, Q, Li, NY, Ziraldo, C, Ghuma, A, Mikheev, M, Squires, R, Okonkwo, DO, et al. Translational systems biology of inflammation: potential applications to personalized medicine. Per Med 2010;7:549–59.CrossRefGoogle Scholar
Zamora, R, Vodovotz, Y, Mi, Q, Barclay, D, Yin, J, Horslen, S, Rudnick, D, et al. Data-driven modeling for precision medicine in pediatric acute liver failure. Mol Med 2016;22:821–9.CrossRefGoogle ScholarPubMed
Possamai, LA, Thursz, MR, Wendon, JA, Antoniades, CG. Modulation of monocyte/macrophage function: a therapeutic strategy in the treatment of acute liver failure. J Hepatol 2014;61:439–45.CrossRefGoogle ScholarPubMed
Stout, RD, Jiang, C, Matta, B, Tietzel, I, Watkins, SK, Suttles, J. Macrophages sequentially change their functional phenotype in response to changes in microenvironmental influences. J Immunol 2005;175:342–9.CrossRefGoogle ScholarPubMed
Antoniades, CG, Berry, PA, Wendon, JA, Vergani, D. The importance of immune dysfunction in determining outcome in acute liver failure. J Hepatol 2008;49:845–61.CrossRefGoogle ScholarPubMed
Rolando, N, Wade, J, Davalos, M, Wendon, J, Philpott-Howard, J, Williams, R. The systemic inflammatory response syndrome in acute liver failure. Hepatology 2000;32:734–9.Google Scholar
Michalopoulos, GK. Principles of liver regeneration and growth homeostasis. Compr Physiol 2013;3:485513.CrossRefGoogle ScholarPubMed
Huang, J, Schriefer, AE, Cliften, PF, Dietzen, D, Kulkarni, S, Sing, S, Monga, SP, et al. Postponing the hypoglycemic response to partial hepatectomy delays mouse liver regeneration. Am J Pathol 2016;186:587–99.Google Scholar
Rudnick, DA, Dietzen, DJ, Turmelle, YP, Shepherd, R, Zhang, S, Belle, SH, Squires, R, et al. Serum alpha-NH-butyric acid may predict spontaneous survival in pediatric acute liver failure. Pediatr Transplant 2009;13:223–30.Google Scholar
Chapin, CA, Mohammad, S, Bass, LM, Taylor, SA, Kelly, S, Alonso, EM. Liver biopsy can be safely performed in pediatric acute liver failure to aid in diagnosis and management. J Pediatr Gastroenterol Nutr 2018;67:441–5.CrossRefGoogle ScholarPubMed
Alonso, EM, Sokol, RJ, Hart, J, Tyson, RW, Narkewicz, MR, Whitington, PF. Fulminant hepatitis associated with centrilobular hepatic necrosis in young children. J Pediatr 1995;127:888–94.Google Scholar
Squires, RH Jr. Acute liver failure in children. Semin Liver Dis 2008;28:153–66.Google Scholar
Hussain, E, Grimason, M, Goldstein, J, Smith, CM, Alonso, E, Whitington, PF, Wainwright, MS. EEG abnormalities are associated with increased risk of transplant or poor outcome in children with acute liver failure. J Pediatr Gastroenterol Nutr 2014;58:449–56.Google Scholar
Press, CA, Morgan, L, Mills, M, Stack, CV, Goldstein, JL, Alonso, EM, Wainwright, MS. Spectral electroencephalogram analysis for the evaluation of encephalopathy grade in children with acute liver failure. Pediatr Crit Care Med 2017;18:6472.CrossRefGoogle ScholarPubMed
Kamat, P, Kunde, S, Vos, M, Vats, A, Gupta, N, Heffron, T, Romero, R, et al. Invasive intracranial pressure monitoring is a useful adjunct in the management of severe hepatic encephalopathy associated with pediatric acute liver failure. Pediatr Crit Care Med 2012;13:e3338.Google Scholar
Srivastava, A, Yadav, SK, Borkar, VV, Yadav, A, Yachha, SK, Thomas, MA, Rathore, RK, et al. Serial evaluation of children with ALF with advanced MRI, serum proinflammatory cytokines, thiamine, and cognition assessment. J Pediatr Gastroenterol Nutr 2012;55:580–6.Google Scholar
Shawcross, DL, Wendon, JA. The neurological manifestations of acute liver failure. Neurochem Int 2012;60:662–71.Google Scholar
Kawada, PS, Bruce, A, Massicotte, P, Bauman, M, Yap, J. Coagulopathy in children with liver disease. J Pediatr Gastroenterol Nutr 2017;65:603–7.Google Scholar
Lisman, T, Stravitz, RT. Rebalanced hemostasis in patients with acute liver failure. Semin Thromb Hemost 2015;41:468–73.Google Scholar
Barton, CA. Treatment of coagulopathy related to hepatic insufficiency. Crit Care Med 2016;44:1927–33.Google Scholar
Stravitz, RT, Lisman, T, Luketic, VA, Sterling, RK, Puri, P, Fuchs, M, Ibrahim, A, et al. Minimal effects of acute liver injury/acute liver failure on hemostasis as assessed by thromboelastography. J Hepatol 2012;56:129–36.Google Scholar
Patel, KR, Bertuch, A, Sasa, GS, Himes, RW, Wu, H. Features of hepatitis in hepatitis-associated aplastic anemia: clinical and histopathologic study. J Pediatr Gastroenterol Nutr 2017;64:e7e12.Google Scholar
Molina, RA, Katzir, L, Rhee, C, Ingram-Drake, L, Moore, T, Krogstad, P, Martin, MG. Early evidence of bone marrow dysfunction in children with indeterminate fulminant hepatic failure who ultimately develop aplastic anemia. Am J Transplant 2004;4:1656–61.Google Scholar
Leventhal, TM, Liu, KD. What a nephrologist needs to know about acute liver failure. Adv Chronic Kidney Dis 2015;22:376–81.Google Scholar
Jain, V, Dhawan, A. Extracorporeal liver support systems in paediatric liver failure. J Pediatr Gastroenterol Nutr 2017;64:855–63.Google Scholar
Kiss, JE, Berman, D, Van Thiel, D. Effective removal of copper by plasma exchange in fulminant Wilson’s disease. Transfusion 1998;38:327–31.Google Scholar
Singer, AL, Olthoff, KM, Kim, H, Rand, E, Zamir, G, Shaked, A. Role of plasmapheresis in the management of acute hepatic failure in children. Ann Surg 2001;234:418–24.Google Scholar
Larsen, FS, Schmidt, LE, Bernsmeier, C, Rasmussen, A, Isoniemi, H, Patel, VC, Triantafyllou, E, et al. High-volume plasma exchange in patients with acute liver failure: an open randomised controlled trial. J Hepatol 2016;64:6978.CrossRefGoogle ScholarPubMed
Hanish, SI, Stein, DM, Scalea, JR, Essien, EO, Thurman, P, Hutson, WR, Bartlett, ST, et al. Molecular adsorbent recirculating system effectively replaces hepatic function in severe acute liver failure. Ann Surg 2017;266:677–84.Google Scholar
Lexmond, WS, Van Dael, CM, Scheenstra, R, Goorhuis, JF, Sieders, E, Verkade, HJ, Van Rheenen, PF, et al. Experience with molecular adsorbent recirculating system treatment in 20 children listed for high-urgency liver transplantation. Liver Transpl 2015;21:369–80.Google Scholar
Lu, BR, Zhang, S, Narkewicz, MR, Belle, SH, Squires, RH, Sokol, RJ. Pediatric Acute Liver Failure Study Group. Evaluation of the liver injury unit scoring system to predict survival in a multinational study of pediatric acute liver failure. J Pediatr 2013;162:1010–16 e1011–14.Google Scholar
Sundaram, V, Shneider, BL, Dhawan, A, Ng, VL, Im, K, Belle, S, Squires, RH. King’s College Hospital Criteria for non-acetaminophen induced acute liver failure in an international cohort of children. J Pediatr 2013;162:319–23 e311.Google Scholar
Rajanayagam, J, Frank, E, Shepherd, RW, Lewindon, PJ. Artificial neural network is highly predictive of outcome in paediatric acute liver failure. Pediatr Transplant 2013;17:535–42.Google Scholar
Kumar, R, Shalimar, Sharma H, Goyal, R, Kumar, A, Khanal, S, Prakash, S, et al. Prospective derivation and validation of early dynamic model for predicting outcome in patients with acute liver failure. Gut 2012;61:1068–75.Google Scholar
Deep, A, Stewart, CE, Dhawan, A, Douiri, A. Effect of continuous renal replacement therapy on outcome in pediatric acute liver failure. Crit Care Med 2016;44:1910–19.Google Scholar
Lutfi, R, Abulebda, K, Nitu, ME, Molleston, JP, Bozic, MA, Subbarao, G. Intensive care management of pediatric acute liver failure. J Pediatr Gastroenterol Nutr 2017;64:660–70.Google Scholar
Mack, CL, Ferrario, M, Abecassis, M, Whitington, PF, Superina, RA, Alonso, EM. Living donor liver transplantation for children with liver failure and concurrent multiple organ system failure. Liver Transpl 2001;7:890–5.Google Scholar
Ciria, R, Davila, D, Heaton, N. Auxiliary liver transplantation in children. Curr Opin Organ Transplant 2011;16:489–93.Google Scholar
Sorensen, LG, Neighbors, K, Zhang, S, Limbers, CA, Varni, JW, Ng, VL, Squires, RH, et al. Neuropsychological functioning and health-related quality of life: pediatric acute liver failure study group results. J Pediatr Gastroenterol Nutr 2015;60:7583.Google Scholar
Squires, JE, Soltys, KA, McKiernan, P, Squires, RH, Strom, SC, Fox, IJ, Clinical hepatocyte, Soto-Gutierrez A transplantation: what is next? Curr Transplant Rep 2017;4:280–9.Google Scholar
Psacharopoulos, HT, Mowat, AP, Davies, M, Portmann, B, Silk, DB, Williams, R. Fulminant hepatic failure in childhood: an analysis of 31 cases. Arch Dis Child 1980;55:252–8.Google Scholar
Mondragon, R, Mieli-Vergani, G, Heaton, ND, Mowat, AP, Vougas, V, Williams, R, Tan, KC. Liver transplantation for fulminant liver failure in children. Transpl Int 1992;5(Suppl 1):S206–8.Google Scholar

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