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N-Acetylcysteine in Biliary Atresia After Kasai Portoenterostomy

A Phase 2 Trial of N-Acetylcysteine in Biliary Atresia After Kasai Portoenterostomy

Status
Completed
Phases
Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT03499249
Enrollment
13
Registered
2018-04-17
Start date
2018-05-18
Completion date
2024-03-23
Last updated
2024-03-26

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Biliary Atresia

Keywords

Biliary Atresia, N-Acetylcysteine, Glutathione, Kasai portoenterostomy, Bile flow, Serum bile acids, Serum bilirubin

Brief summary

Biliary atresia (BA) is a devastating liver disease of infancy, characterized by bile duct obstruction leading to liver fibrosis, cirrhosis, and eventual need for transplantation in most cases. BA is treated with Kasai portoenterostomy (KP). KPs can achieve bile drainage and improve outcomes. However, even with standard evidence of good bile flow, bile flow rarely normalizes completely and liver disease continues to progress. In this study, the investigators test whether intravenous N-acetylcysteine (NAC) can improve bile flow after KP. The rationale is that NAC leads to synthesis of glutathione, which is a powerful stimulator of bile flow. The primary objective is to determine whether NAC normalizes total serum bile acid (TSBA) concentrations within 24 weeks of KP. Achieving normal TSBAs is uncommon with current standard-of-care, and is predicted to be associated with better long-term outcomes. The secondary objectives are to describe how other parameters commonly followed in BA change with NAC therapy, as well as report adverse events occurring with therapy and in the first two years of life. This study follows the minimax Phase 2 clinical trial design.

Detailed description

Biliary atresia (BA) is a disease characterized by fibro-obliteration of extrahepatic bile ducts leading to impaired bile flow (Sokol et al., 2007). BA is treated with the Kasai portoenterostomy (KP), an operation which connects the liver directly to the intestine in attempt to relieve bile back-up and promote bile flow. KPs have variable success. KPs occasionally normalize bile flow and stop disease progression (Jimenez-Rivera et al., 2013). More commonly, however, bile flow never completely normalizes after KP. This can be detected by elevated total bilirubin (TB) or conjugated bilirubin (Bc) serum concentrations, or, when TB and Bc are normal, elevated total serum bile acids (TSBA) concentrations (Bezerra et al., 2014; Shneider et al., 2015; Venkat et al., 2014). Impaired flow leads to fibrosis, cirrhosis, and eventual need for liver transplantation. Given these uneven results, therapies are urgently needed to enhance the KP's success. The investigators hypothesize that N-acetylcysteine (NAC) will improve outcomes after KP, because NAC is a precursor for the powerful choleretic molecule glutathione (Ballatori and Truong, 1989, 1992, Ballatori et al., 1986, 1989). The hypothesis assumes that better bile flow will lead to better outcomes. This is supported by previous reports demonstrating that good bile flow correlates with slower disease progression in BA. For example, a recent study showed infants with good bile flow after KP were significantly less likely to develop failure-to-thrive, ascites, hypoalbuminemia, or coagulopathy in the first two years of life (Shneider et al., 2015). Furthermore, these infants had significantly higher transplant-free survival in the same time period. In this study, TB \<2.0 mg/dL within three months of KP was used as the marker for good bile flow. NAC has a number of properties that make it an especially attractive potential therapeutic agent. First, glutathione creates an osmotic gradient in the bile duct lumen which drives one-third of total bile flow in humans (the other drivers are bile acids and secretin/bicarbonate) (Ballatori and Truong, 1989, 1992, Ballatori et al., 1986, 1989). Second, NAC is a Food and Drug Administration-approved therapy for another serious liver condition in neonates and children (acetaminophen overdose). It has also been used for other liver and non-liver indications in neonates, with few reported adverse events (Ahola et al., 2003; Flynn et al., 2003; Jenkins et al., 2016; Kortsalioudaki et al., 2008; Mager et al., 2008; Soghier and Brion, 2006; Squires et al., 2013; Wiest et al., 2014). Third, glutathione is an anti-oxidant, which could scavenge the free radicals contributing to cirrhosis. Preclinical studies are also promising, with glutathione's strong choleretic properties best established in rat flow studies and NAC's hepatoprotective effects documented in rescuing different mouse models of cholestasis (Ballatori et al., 1986; Galicia-Moreno et al., 2009, 2012; Tahan et al., 2007). To test the hypotheses, the investigators will administer intravenous NAC continuously for seven days and determine the number of subjects with normal TSBAs (0-10 umol/L) within 24 weeks of KP. In addition, markers of BA progression, such as abnormal laboratory results, failure-to-thrive, and occurrence of complications related to chronic liver disease, will be described over the first two years of life. Finally, all adverse events occurring during NAC infusion and in the 21 days after its completion will be recorded. The study employs the two-stage minimax Phase 2 clinical trial design, a design commonly used in oncological trials to determine whether a particularly therapy has sufficient activity to warrant a larger Phase 3 trial (Simon, 1989). The two-stage minimax design offers two distinct advantages compared to other designs: (i) early termination if the drug is not efficacious; and (ii) small sample sizes, because historical controls rather than a separate control arm are used.

Interventions

DRUGN-Acetyl cysteine

Intravenous NAC therapy (6.25 mg/kg/hour of 10 mg/ml solution, or 0.625 ml/kg/hour, to give 150 mg/kg/day), starting within 24 hours of completion of KP and lasting for a total of 7 days

Sponsors

Baylor College of Medicine
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

This is a Phase 2 clinical trial using the two-stage minimax design described by Simon (Simon, 1989). As a Phase 2 trial, the trial's objective is to determine whether NAC has sufficient biological activity as adjunctive therapy for BA to warrant further study. By choosing the two-stage minimax design, we gain two advantages: (i) early termination if the drug is not efficacious, and (ii) using historical controls and therefore an overall smaller sample size to test the hypothesis, i.e., no randomization or control arm. This study design only identifies large effects (response \>20%). For BA this is appropriate, because the field is in need of a robust therapy that can substantially limit liver damage and delay/prevent need for liver transplantation.

Eligibility

Sex/Gender
ALL
Age
0 Days to 90 Days
Healthy volunteers
No

Inclusion criteria

1. Age less than or equal to 90 days at time of KP (standard age range in which KPs are performed) 2. BA diagnosis made by intraoperative cholangiography and KP performed at Texas Children's Hospital, Texas Medical Center Campus 3. Legal guardian(s) sign consent after understanding risks and investigational nature of study

Exclusion criteria

1. Decompensated liver disease (INR \>1.3) despite parenteral Vitamin K administration) 2. KP not performed for any reason (i.e., normal intraoperative cholangiography, or liver found to be too diseased intraoperatively to proceed with KP) 3. Active respiratory infection 4. Renal impairment, as defined by having an eGFR \< 60 mL/min/1.73m2 or creatinine clearance \< 60 mL/min (https://www.niddk.nih.gov/health-information/communication-programs/nkdep/laboratory-evaluation/glomerular-filtration-rate-calculators/children-conventional-units) 5. Presence of severe concurrent illnesses, such as pulmonary (i.e., bronchopulmonary dysplasia), neurological, cardiovascular, metabolic, endocrine, and renal disorders, which may be congenital or acquired, that would interfere with the conduct and results of the study

Design outcomes

Primary

MeasureTime frameDescription
Number of Patients With Biliary Atresia (BA) Achieving Total Serum Bile Acids Less Than or Equal to 10 *U*Mol/L Within 24 Weeks of Kasai Portoenterostomy (KP)Within 24 weeks after KPExpected is \ 5% of participants based on historical controls (see protocol for summary of historical controls); a higher number is a better outcome

Secondary

MeasureTime frameDescription
Aspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)3 days after KP compared to baseline (before KP); 7 days after KP compared to baseline (before KP)fold-change from baseline (ratio); a fold-change \<1 is a better outcome.
Number of Patients Experiencing Sentinel Events in the First 2 Years of LifeFirst two years of lifeEvents include Nasogastric (NG) feeds or Total Parental Nutrition (TPN) initiation, Splenomegaly (based on ultrasound findings), Thrombocytopenia (platelets \<150,000/mm3), Ascites (recorded when diuretics were needed for fluid accumulation), GI bleed (varices documented by endoscopy), Portal hypertension (one of the following: ascites, or combination of splenomegaly and thrombocytopenia), and Liver transplant or death; units are number of patients, higher numbers are worse outcomes.
Number of Patients With Adverse Events Possibly Related to NAC, Including Rash, Urticaria, Pruritus, Tachycardia, Hypotension, Vomiting, Edema, Anaphylaxis, and Intravenous Line IssuesWithin four weeks after KPUnits are number of patients, higher number is worse outcome

Countries

United States

Participant flow

Participants by arm

ArmCount
N-Acetylcysteine Treatment
Will receive continuous intravenous NAC therapy (6.25 mg/kg/hour of 10 mg/ml solution, or 0.625 ml/kg/hour, to give 150 mg/kg/day), starting within 24 hours of completion of KP and lasting for a total of 7 days N-Acetyl cysteine: Intravenous NAC therapy (6.25 mg/kg/hour of 10 mg/ml solution, or 0.625 ml/kg/hour, to give 150 mg/kg/day), starting within 24 hours of completion of KP and lasting for a total of 7 days
13
Total13

Withdrawals & dropouts

PeriodReasonFG000
Overall StudyPhysician Decision1

Baseline characteristics

CharacteristicN-Acetylcysteine Treatment
Age, Categorical
<=18 years
13 Participants
Age, Categorical
>=65 years
0 Participants
Age, Categorical
Between 18 and 65 years
0 Participants
Age, Continuous36 days
STANDARD_DEVIATION 22
Aspartate aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT)
ALT
80 IU/L
STANDARD_DEVIATION 56
Aspartate aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT)
AST
123 IU/L
STANDARD_DEVIATION 83
Aspartate aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT)
GGT
360 IU/L
STANDARD_DEVIATION 322
Race/Ethnicity, Customized
Hispanic, all races
7 participants
Race/Ethnicity, Customized
Non-Hispanic Asian
1 participants
Race/Ethnicity, Customized
Non-Hispanic Black
3 participants
Race/Ethnicity, Customized
non-Hispanic White
2 participants
Region of Enrollment
United States
13 participants
Sex: Female, Male
Female
5 Participants
Sex: Female, Male
Male
8 Participants

Adverse events

Event typeEG000
affected / at risk
deaths
Total, all-cause mortality
0 / 13
other
Total, other adverse events
11 / 13
serious
Total, serious adverse events
5 / 13

Outcome results

Primary

Number of Patients With Biliary Atresia (BA) Achieving Total Serum Bile Acids Less Than or Equal to 10 *U*Mol/L Within 24 Weeks of Kasai Portoenterostomy (KP)

Expected is \ 5% of participants based on historical controls (see protocol for summary of historical controls); a higher number is a better outcome

Time frame: Within 24 weeks after KP

ArmMeasureValue (COUNT_OF_PARTICIPANTS)
N-Acetylcysteine TreatmentNumber of Patients With Biliary Atresia (BA) Achieving Total Serum Bile Acids Less Than or Equal to 10 *U*Mol/L Within 24 Weeks of Kasai Portoenterostomy (KP)0 Participants
Secondary

Aspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)

fold-change from baseline (ratio); a fold-change \<1 is a better outcome.

Time frame: 3 days after KP compared to baseline (before KP); 7 days after KP compared to baseline (before KP)

ArmMeasureGroupValue (MEAN)Dispersion
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)AST 3 days after KP1.5 fold change over baselineStandard Deviation 0.5
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)AST 7 days after KP1.4 fold change over baselineStandard Deviation 0.4
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)ALT 3 days after KP3.3 fold change over baselineStandard Deviation 2.3
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)ALT 7 days after KP2.1 fold change over baselineStandard Deviation 0.5
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)GGT 3 days after KP0.9 fold change over baselineStandard Deviation 0.3
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)GGT 7 days after KP1.7 fold change over baselineStandard Deviation 0.9
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)Bc 3 days after KP1.3 fold change over baselineStandard Deviation 0.4
N-Acetylcysteine TreatmentAspartate Aminotransferase (AST), Alanine Aminotransferase (ALT), Gamma-glutamyltransferase (GGT) Fold, and Conjugated Bilirubin (Bc) Change Above Baseline at 3 Days and 7 Days After KP (During Treatment)Bc 7 days after KP1.3 fold change over baselineStandard Deviation 0.4
Secondary

Number of Patients Experiencing Sentinel Events in the First 2 Years of Life

Events include Nasogastric (NG) feeds or Total Parental Nutrition (TPN) initiation, Splenomegaly (based on ultrasound findings), Thrombocytopenia (platelets \<150,000/mm3), Ascites (recorded when diuretics were needed for fluid accumulation), GI bleed (varices documented by endoscopy), Portal hypertension (one of the following: ascites, or combination of splenomegaly and thrombocytopenia), and Liver transplant or death; units are number of patients, higher numbers are worse outcomes.

Time frame: First two years of life

ArmMeasureGroupValue (COUNT_OF_PARTICIPANTS)
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeAscites4 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeGI bleed0 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeNG feeds or TPN initiation4 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeSplenomegaly7 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeThrombocytopenia5 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifePortal hypertension5 Participants
N-Acetylcysteine TreatmentNumber of Patients Experiencing Sentinel Events in the First 2 Years of LifeLiver transplant or death4 Participants
Secondary

Number of Patients With Adverse Events Possibly Related to NAC, Including Rash, Urticaria, Pruritus, Tachycardia, Hypotension, Vomiting, Edema, Anaphylaxis, and Intravenous Line Issues

Units are number of patients, higher number is worse outcome

Time frame: Within four weeks after KP

ArmMeasureGroupValue (COUNT_OF_PARTICIPANTS)
N-Acetylcysteine TreatmentNumber of Patients With Adverse Events Possibly Related to NAC, Including Rash, Urticaria, Pruritus, Tachycardia, Hypotension, Vomiting, Edema, Anaphylaxis, and Intravenous Line IssuesOther0 Participants
N-Acetylcysteine TreatmentNumber of Patients With Adverse Events Possibly Related to NAC, Including Rash, Urticaria, Pruritus, Tachycardia, Hypotension, Vomiting, Edema, Anaphylaxis, and Intravenous Line IssuesTachycardia1 Participants

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026