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Can Oral T3 Normalize Thyroid Hormone Levels Following Cardiopulmonary Bypass in Children?

Oral Triiodothyronine Normalizes T3 Levels After Surgery For Pediatric Congenital Heart Disease

Status
Completed
Phases
Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT01780584
Enrollment
45
Registered
2013-01-31
Start date
2010-04-30
Completion date
2010-10-31
Last updated
2013-03-08

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

Conditions

Low T3 Syndrome

Keywords

congenital heart surgery, thyroid hormones

Brief summary

Low triiodothyronine (T3) syndrome defines as decrease of T3 levels during critically ill. This decrease of T3 levels was observed after congenital heart surgery using cardiopulmonary bypass. Previous largest study,Triiodothyronine for Infants and Children Undergoing Cardiopulmonary bypass (TRICC) study showed T3 supplementation decreased time to extubation for infants less than 5 months undergoing cardiopulmonary bypass. Intravenous regiment was known effective in maintaining T3 levels during pediatric cardiac surgery. This drug preparation however is not commonly used in many countries due to the relatively high costs and/or the simple lack of availability. The use of oral T3 to treat postoperative low T3 levels in pediatric patients has not been reported so far, although recent adult studies showed benefit in using oral T3 after cardiac surgery. The purpose of this study was to determine if oral T3 supplementation could prevent the decline of serum T3 in children less than 2 years of age undergoing congenital heart surgery using CPB.

Detailed description

The Research Ethics Board at the National Cardiovascular Center Harapan Kita approved this study and written, informed consent was obtained from the parents or legal guardians before randomization. Randomization by block permutation was performed to determine treatment group assignment. Randomization occured on the day before surgery by a nurse investigator. A pharmacist who was not involved in the study prepared the study medication. Investigators and participants were blinded to the assigned group until after the end of the study. Thyroid hormonal levels were analyzed by standard 3rd generation thyrotropic-stimulating hormone (TSH), serum free T4 (FT4), free T3 (FT3), and total T3 (TT3) Micro particle Enzyme Immunoassays (Abbott Laboratories, Abbott Park, USA). The serum total T4 (TT4) assay used a Fluorescence Polarization Immunoassay (Abbott Laboratories, Abbott Park, USA). Hormone levels were measured on induction of anesthesia, before the study drug was given (T0) and at 1, 6, 18, 36 and 72 hours after removal of the aortic-cross-clamp. Baseline clinical data collected included age, gender, birth weight, type of operation, and Aristotle score. Diagnosis and operative procedures were classified as high or low risk with an Aristotle score cut off of ≥ 9 as high risk. As modifying factors, we measured duration of surgery, cardiopulmonary bypass (CPB) time, cross-clamp time, ultrafiltration during CPB and degree of hypothermia during CPB, and the use of amiodarone. Non-pulsatile perfusion technique was used during CPB. Steroid (methyl prednisolone 35-50 mg/kg) was given before CPB. We used povidone-iodine for skin disinfection in all subjects. Although this study was not powered to detect clinical differences between the treatment groups, clinical outcome parameters were measured as a potential guide to subsequent adequately powered larger treatment studies. Serum lactate was measured at 1 hour, 4 hours and day 1 post surgery. Hemodynamic monitoring included heart rate, heart rhythm, and blood pressure which were recorded hourly for the first 6 hours then every 6 hours until 72 hours after surgery. Overt symptoms of hyperthyroidism were grounds for immediate removal of the subjects from the study. Time to extubation and length of stay in the intensive care unit and hospital were recorded. Statistical analysis and sample size: The primary efficacy analysis assessed the difference between the treatment (high-dose, low-dose) and control groups with regard to the effect of T3 supplementation on the measured TT3 and FT3 serum levels. We anticipated a difference of 2.0 pg/ml in FT3 with a standard deviation of 0.8 pg/ml between groups. For a statistical power of 80% to identify a treatment effect and at a level of significance of 0.05 ( 2-sided), the target total sample size was 45 subjects, with 15 in each treatment group. Demographic data, safety and clinical outcomes were compared using the X2 test. Continuous variables for characteristics and outcomes were analyzed using one way ANOVA for data with normal distribution or the Kruskal Wallis test for not normally distributed data. Repeated measures ANOVA was used to analyze all thyroid hormone levels and clinical outcomes for those variables that were measured repeatedly over time. Paired Student's t-test for parametric or Wilcoxon signed rank test for non-parametric tests were used to evaluate the mean difference of hormone levels and clinical outcomes over time in each treatment group. Statistical significance was defined by p-values less than 0.05. Descriptive statistics are reported as mean ± standard error of the mean.

Interventions

DRUGOral T3 Low dose

Comparison of different dosages of drug. Low dose group oral T3 is 0.5 mcg/kg q24h

DRUGPlacebo

Comparison of different dosages of drug. In low dose group, placebo was given alternately with oral T3 every 12h with a total 3 doses for placebo and 3 doses for oral T3

DRUGOral T3 high dose

Comparison of different dosages of drugs. Oral T3 high dose is 0.5 mcg/kg q12h

Sponsors

National Cardiovascular Center Harapan Kita Hospital Indonesia
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Eligibility

Sex/Gender
ALL
Age
1 Days to 24 Months
Healthy volunteers
No

Inclusion criteria

* Patients between 0-2 years of age * Aristotle score of 6 and above * underwent cardiac surgery using cardiopulmonary bypass

Exclusion criteria

* birth weight less than 2 kg for neonates * preoperative tachyarrhythmia or need for anti arrhythmic treatment * clinical sepsis confirmed by culture * preoperative renal insufficiency * known thyroid and metabolic disorder * any contraindication for oral T3 administration

Design outcomes

Primary

MeasureTime frameDescription
Free T3 (FT3) Levelsduring the first 36 hours after cross clamp removalFree T3 levels were measured up to 36 hours after cross-clamp removal

Secondary

MeasureTime frameDescription
Number of Patients With Possible Side Effects of Thyroid Hormone Supplementation Particularly Suggesting Hyperthyroid Symptoms.Since the first dose of oral T3 until 7 days after surgerySpecific symptoms of hyperthyroidism included cardiac dysrhythmia requiring medical or electrical treatment, hypertension (mean systolic or diastolic blood pressure more than 2 standard deviation above normal for age) and hyperthermia (\>37.5 degree Celsius). One patient in low dose group had hypertension directly after surgery due to unrecognized coarctation of the aorta and this patient was withdrawal from the protocol.

Other

MeasureTime frameDescription
Postoperative Time to Extubationup to 3 months after surgeryPostoperative time to extubation is length of time on ventilator.
Postoperative Length of Stay in Intensive Care Unitup to 3 months after surgery
Postoperative Hospital Length of Stayup to 3 month after surgery

Countries

Indonesia

Participant flow

Recruitment details

Subjects recruitment was done from Pediatric Cardiac Intensive Care Unit at the National Cardiovascular Center Harapan Kita, Jakarta, Indonesia between April, 2010 and September, 2010.

Pre-assignment details

There were 47 individuals screened for participation, and consent to participate was obtained from 46 (98%). One subjects from whom did not participate because of surgical postponement. A total of 45 subjects were randomized to 3 groups of 15.

Participants by arm

ArmCount
Oral T3 Low Dose
Oral T3 low dose administer through nasogastric tube 0.5 mcg/kg (max 10 mcg) starting on induction of anesthesia and then every 24 hours alternating with placebo, which was given 12 hours after the first dose of oral T3 and then every 24 hours until 60 hours post anesthesia induction (3 doses oral T3, 3 doses placebo)
15
Placebo
Placebo (saccharin lactic) administer through nasogastric tube, given starting on induction of anesthesia and then every 12 hours until 60 hours post-anesthesia induction (6 doses total)
15
Oral T3 High Dose
Oral T3 high dose administer through nasogastric tube 0.5 mcg/kg (max 10 mcg) q12h starting on induction of anesthesia until 60 hours post-anesthesia (6 doses oral T3)
15
Total45

Withdrawals & dropouts

PeriodReasonFG000FG001FG002
Overall StudyAdverse Event010
Overall StudyDeath101
Overall StudyProtocol Violation001

Baseline characteristics

CharacteristicPlaceboOral T3 High DoseOral T3 Low DoseTotal
Age, Categorical
<=18 years
15 Participants15 Participants15 Participants45 Participants
Age, Categorical
>=65 years
0 Participants0 Participants0 Participants0 Participants
Age, Categorical
Between 18 and 65 years
0 Participants0 Participants0 Participants0 Participants
Age Continuous0.8 years
STANDARD_DEVIATION 0.4
0.8 years
STANDARD_DEVIATION 0.6
0.9 years
STANDARD_DEVIATION 0.5
0.9 years
STANDARD_DEVIATION 0.5
Region of Enrollment
Indonesia
15 participants15 participants15 participants45 participants
Sex: Female, Male
Female
10 Participants9 Participants6 Participants25 Participants
Sex: Female, Male
Male
5 Participants6 Participants9 Participants20 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
EG002
affected / at risk
deaths
Total, all-cause mortality
— / —— / —— / —
other
Total, other adverse events
0 / 151 / 150 / 15
serious
Total, serious adverse events
1 / 151 / 151 / 15

Outcome results

Primary

Free T3 (FT3) Levels

Free T3 levels were measured up to 36 hours after cross-clamp removal

Time frame: during the first 36 hours after cross clamp removal

Population: Two subjects (one in T3 low dose and one in T3 high dose) were withdrawn from the treatment protocol. The withdrawal in low dose group was because of severe hypertension caused by a previously unrecognized coarctation of the aorta, and the high dose group withdrawal was due to massive gastrointestinal bleeding.

ArmMeasureGroupValue (MEAN)Dispersion
PlaceboFree T3 (FT3) Levelshour 03.6 pg/mlStandard Error 0.4
PlaceboFree T3 (FT3) Levelshour 182.4 pg/mlStandard Error 0.2
PlaceboFree T3 (FT3) Levelshour 62.9 pg/mlStandard Error 0.3
PlaceboFree T3 (FT3) Levelshour 361.6 pg/mlStandard Error 0.2
PlaceboFree T3 (FT3) Levelshour 13.6 pg/mlStandard Error 0.3
Oral T3 Low DoseFree T3 (FT3) Levelshour 362.1 pg/mlStandard Error 0.3
Oral T3 Low DoseFree T3 (FT3) Levelshour 04.5 pg/mlStandard Error 0.6
Oral T3 Low DoseFree T3 (FT3) Levelshour 14.1 pg/mlStandard Error 0.5
Oral T3 Low DoseFree T3 (FT3) Levelshour 63.3 pg/mlStandard Error 0.3
Oral T3 Low DoseFree T3 (FT3) Levelshour 182.6 pg/mlStandard Error 0.4
Oral T3 High DoseFree T3 (FT3) Levelshour 14.3 pg/mlStandard Error 0.2
Oral T3 High DoseFree T3 (FT3) Levelshour 364.4 pg/mlStandard Error 0.5
Oral T3 High DoseFree T3 (FT3) Levelshour 183.8 pg/mlStandard Error 0.4
Oral T3 High DoseFree T3 (FT3) Levelshour 03.9 pg/mlStandard Error 0.2
Oral T3 High DoseFree T3 (FT3) Levelshour 63.7 pg/mlStandard Error 0.3
Comparison: Null hypothesis: no difference of free T3 (FT3) levels will be found between placebo, low dose and high dose group. We anticipated a difference of 2 pg/ml in FT3 with a standard deviation of 0.8 pg/ml between groups. For a statistical power of 80% to identify a treatment effect and at a level significance of 0.05 (2-sided).p-value: <0.0595% CI: [1, 3]ANOVA
Secondary

Number of Patients With Possible Side Effects of Thyroid Hormone Supplementation Particularly Suggesting Hyperthyroid Symptoms.

Specific symptoms of hyperthyroidism included cardiac dysrhythmia requiring medical or electrical treatment, hypertension (mean systolic or diastolic blood pressure more than 2 standard deviation above normal for age) and hyperthermia (\>37.5 degree Celsius). One patient in low dose group had hypertension directly after surgery due to unrecognized coarctation of the aorta and this patient was withdrawal from the protocol.

Time frame: Since the first dose of oral T3 until 7 days after surgery

Population: Three patients were excluded from adverse effect analysis. Two patients, each in placebo and high dose group were on Extracorporeal Membrane Oxygenation. One patient in high dose group could not attained enteral feeds due to gastrointestinal bleeding and was withdrawal from the protocol.

ArmMeasureValue (NUMBER)
PlaceboNumber of Patients With Possible Side Effects of Thyroid Hormone Supplementation Particularly Suggesting Hyperthyroid Symptoms.0 participants
Oral T3 Low DoseNumber of Patients With Possible Side Effects of Thyroid Hormone Supplementation Particularly Suggesting Hyperthyroid Symptoms.1 participants
Oral T3 High DoseNumber of Patients With Possible Side Effects of Thyroid Hormone Supplementation Particularly Suggesting Hyperthyroid Symptoms.0 participants
Other Pre-specified

Postoperative Hospital Length of Stay

Time frame: up to 3 month after surgery

ArmMeasureValue (MEDIAN)
PlaceboPostoperative Hospital Length of Stay6 days
Oral T3 Low DosePostoperative Hospital Length of Stay17.5 days
Oral T3 High DosePostoperative Hospital Length of Stay10 days
Comparison: Null hypothesis: there is no difference of postoperative hospital length of stay between groups. Statistical power 80% and level of significance 0.05.p-value: 0.0695% CI: [5, 15]Kruskal-Wallis
Other Pre-specified

Postoperative Length of Stay in Intensive Care Unit

Time frame: up to 3 months after surgery

ArmMeasureValue (MEDIAN)
PlaceboPostoperative Length of Stay in Intensive Care Unit48.5 hours
Oral T3 Low DosePostoperative Length of Stay in Intensive Care Unit109.5 hours
Oral T3 High DosePostoperative Length of Stay in Intensive Care Unit87 hours
Comparison: Null hypothesis: there is no difference of length of stay in Intensive Care Unit. Statistical power 80% and level of significance 0.05.p-value: 0.495% CI: [40, 60]Kruskal-Wallis
Other Pre-specified

Postoperative Time to Extubation

Postoperative time to extubation is length of time on ventilator.

Time frame: up to 3 months after surgery

ArmMeasureValue (MEDIAN)
PlaceboPostoperative Time to Extubation23 hours
Oral T3 Low DosePostoperative Time to Extubation36.5 hours
Oral T3 High DosePostoperative Time to Extubation17 hours
Comparison: Null hypothesis: no difference of time to extubation between group. Statistical power 80% and level of significance 0.05p-value: 0.3195% CI: [3, 10]Kruskal-Wallis

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