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Inhaled NO as an Anti-inflammatory and Anti-reperfusion Agent in Infants and Children Undergoing Cardiopulmonary Bypass

A Trial of Inhaled Nitric Oxide (NO) as an Anti-Inflammatory and Anti-Reperfusion Agent in the Treatment of Infants and Children Undergoing Cardiopulmonary Bypass for Repair of Congenital Heart Disease

Status
Completed
Phases
Phase 1Phase 2
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT00585013
Enrollment
17
Registered
2008-01-02
Start date
2008-01-31
Completion date
2011-06-30
Last updated
2015-11-04

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

Conditions

Congenital Heart Disease

Keywords

Inhaled Nitric Oxide (NO), Anti-inflammatory, Anti-reperfusion agent

Brief summary

Each year, there are over 400,000 cardiac surgical operations performed in the United States; of which 10,000 are performed on children. These operations are made possible by the use of the heart-lung bypass machine, also known as cardiopulmonary bypass. This machine allows for the body to be supported while the heart is repaired. While this machine has been life saving, it has risks and can lead to a variety of complications. One such complication results from the fact that the patient's blood is exposed to the foreign material of the machine, such as plastic tubing. In nearly all cases of cardiac surgery, this leads to a whole body response in the patient following the operation. This response, inflammation, is characterized by alterations in the function of the heart and lungs, fever, fluid retention, and bleeding disorders in the postoperative period. While this is usually temporary and self limiting, significant morbidity occurs in approximately 1-2% of cases where this inflammatory response is present. Additionally, children appear to be more susceptible to this response. This can lead to significant postoperative complications that are not associated with the actually surgical procedure performed on the heart. The exact cause of this response is not fully understood. However, it is important to understand the triggers, timing, and pattern of this complex inflammatory response in order to modify or arrest it. Unlike other situations associated with this type of whole-body inflammatory reaction such as trauma or overwhelming infection, cardiac surgical teams have the advantage of knowing when the trigger will occur (i.e. during the cardiac operation) and hence have the opportunity for preemptive intervention in an effort to minimize the response. One such effort is the focus of this proposal. Nitric oxide (NO) is a gas that has been used for years in the treatment of lung disease in infants. It has been life saving and safe. Recently, it has been investigated for its anti-inflammatory effects outside the lungs. We propose delivering NO to the source of the greatest inflammation in cardiac surgery, the cardiopulmonary bypass machine. It is our intention to show that in doing so; we can minimize the inflammation found in the first 24 hours following cardiac surgery in children. If we are correct, the reduction of this inflammation will result in less damage to other organs of the child's body and improved outcome following surgery.

Detailed description

I. Hypothesis Treatment of children during surgery employing cardiopulmonary bypass with inhaled, exogenous nitric oxide (iNO) delivered to the cardiopulmonary bypass circuit will: 1. Modulate ischemia/reperfusion injury 2. Influence endothelial dysfunction 3. Ameliorate the bypass-triggered systemic inflammatory response II. Specific Aims Three specific aims will test this hypothesis: Delivery of iNO to the cardiopulmonary bypass circuit will result in a decrease in: 1. Measures of end-organ dysfunction often associated with CPB; pulmonary function, cardiac injury markers, serum creatinine, and neurologic injury markers. 2. Measures of inflammatory response, specifically IL-6 and TNFa via its antioxidant properties. 3. Platelet activation and aggregation leading to reduced transfusion requirements. III. Introduction and Background * Cardiopulmonary bypass leads to ischemia/reperfusion injury. One of the mediators of this injury is oxygen radical production. NO is known to bind oxygen radical species. * Cardiopulmonary bypass leads to endothelial dysfunction. This is mediated through cell-free hemoglobin binding endogenous NO, as seen in sickle cell disease. * Both of these factors, separately and in combination, perpetuate the inflammatory response triggered by CPB. NO affects this response by interfering with this process. Additionally, NO is known to affect neutrophil chemotaxis as well as platelet activation and aggregation, both of which further amplify the inflammatory response. IV. Basic Protocol Experimental Design In a prospective, randomized, controlled, blinded pilot trial we will compare 20 ppm of iNO delivered to the CPB circuit. Our study will target children undergoing cardiopulmonary bypass (CPB) for surgery for the correction of transposition of great arteries (TGA) and Tetralogy of Fallot (TOF). Subjects Inclusion Undergoing repair of TGA and TOF \< 16 years of age Exclusion Age \> 16 years of age Pregnancy Known bleeding disorder Treatment Protocol Following informed consent, blood will be drawn pre-operatively for baseline characteristics (methemoglobin, venous saturation, CBC, S100, gene expression profiles, BNP, cTnI, IL-6, IL-8, lactate, TNFalpha)\[Table, Blood sample for Study\]. Intra-operatively we will use a standardized anesthetic protocol unless contraindicated by specific patient clinical characteristics. Intraoperative measurements will include: aortic cross clamp time, and total cardiopulmonary bypass time. Intraoperative hemodynamic measurements will include: mean systemic blood pressure (MAP), central venous pressure, right atrial pressure pulmonary artery pressure, and pulmonary capillary wedge pressure (when available). Blood samples will be drawn following CPB upon arrival to the ICU and will be analyzed as above. Repeat blood samples for each will be drawn again after 12, 24, and 48 hours. Patients will be followed to the time of discharge. Ventilator settings, length of ICU and hospital stay will be recorded. All measurements in both groups will be the same. Time points will be referenced from the time of admission to the PICU for both groups.

Interventions

DRUGNitric Oxide

Patients will receive standard care with the addition of NO gas. During cardiopulmonary bypass, NO at 20 ppm will be added to the sweep gas of the extracorporeal circuit. Following termination of cardiopulmonary bypass, inhaled NO will be discontinued.

Sponsors

Mallinckrodt
CollaboratorINDUSTRY
Washington University School of Medicine
Lead SponsorOTHER

Study design

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

Eligibility

Sex/Gender
ALL
Age
No minimum to 16 Years
Healthy volunteers
No

Inclusion criteria

* Patients with the following congenital heart lesions who require cardiopulmonary bypass for surgical repair or palliation will be eligible: * D-transposition of the great vessels (D-TGA) * Tetralogy of Fallot (TOF) * Children of age less than 16 years

Exclusion criteria

* Signs of persistently elevated pulmonary vascular resistance preoperatively * Cardiac arrest one week prior to surgery * Prior surgical procedure that required use of cardio-pulmonary bypass * Acute or chronic infection such as sepsis or wound infections * History of any pulmonary condition such as pneumonia or respiratory distress syndrome * Patients that have received steroid treatment within the last month * DiGeorge syndrome * Active bleeding disorder * Any other condition associated with non-cardiac morbidity * Use of another investigational drug * Age over 16 years.

Design outcomes

Primary

MeasureTime frameDescription
Serum Inflammatory Mediators Post CPB48 hoursInflammation measured through the measurement inflammatory mediators, serum interleukin-6, serum interleukin-8, and tumor necrosis factor. Baseline (preoperative, 0h, 12h, 24h, and 48h.
Myocardial Injury48 hoursTroponin levels correlate with myocardial injury. Greater troponin levels represent greater myocardial injury
Myocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels48 hoursBNP levels correlate to ventricular and myocardial performance, function, and strain. Higher values represent greater strain and decreased function.
Ischemic Injury as Measured by Lactate Levels48 hoursLactate levels correlate to ischemic injury. Higher values represent more injury.

Secondary

MeasureTime frame
Incidence of Methhemoglobin >5%, Gene Expression Profiles, and S100B.48 hours

Countries

United States

Participant flow

Recruitment details

Patients were randomized by the research perfusionist using sequentially ordered randomization codes. The randomization codes were generated using a computerized random number generator. The entire care team was blinded to the delivery device and drug delivery. Only the study perfusionist was aware of randomization and delivery.

Pre-assignment details

Seventeen patients consented and were enrolled in the study. There were eight consent failures. One patient was disqualified after consent and randomization due to intraoperative findings of a lesion inconsistent with preoperative diagnosis and change in operative plan.

Participants by arm

ArmCount
1 Treatment
Patients will receive standard care with the addition of NO gas. During cardiopulmonary bypass, NO at 20 ppm will be added to the sweep gas of the extracorporeal circuit. Following termination of cardiopulmonary bypass, inhaled NO will be discontinued. Nitric Oxide : Patients will receive standard care with the addition of NO gas. During cardiopulmonary bypass, NO at 20 ppm will be added to the sweep gas of the extracorporeal circuit. Following termination of cardiopulmonary bypass, inhaled NO will be discontinued.
8
2 Placebo
Placebo delivery of oxygen at standard dose.
8
Total16

Baseline characteristics

Characteristic2 Placebo1 TreatmentTotal
Age, Categorical
<=18 years
8 Participants8 Participants16 Participants
Age, Categorical
>=65 years
0 Participants0 Participants0 Participants
Age, Categorical
Between 18 and 65 years
0 Participants0 Participants0 Participants
Age, Continuous.4 years
STANDARD_DEVIATION 0.1
.4 years
STANDARD_DEVIATION 0.1
.4 years
STANDARD_DEVIATION 0.1
Region of Enrollment
United States
8 participants8 participants16 participants
Sex: Female, Male
Female
4 Participants1 Participants5 Participants
Sex: Female, Male
Male
4 Participants7 Participants11 Participants

Adverse events

Event typeEG000
affected / at risk
EG001
affected / at risk
deaths
Total, all-cause mortality
— / —— / —
other
Total, other adverse events
0 / 80 / 8
serious
Total, serious adverse events
0 / 80 / 8

Outcome results

Primary

Ischemic Injury as Measured by Lactate Levels

Lactate levels correlate to ischemic injury. Higher values represent more injury.

Time frame: 48 hours

ArmMeasureGroupValue (MEAN)Dispersion
Nitric Oxide Delivery GroupIschemic Injury as Measured by Lactate Levels0 h1.9 mmol/LStandard Deviation 0.6
Nitric Oxide Delivery GroupIschemic Injury as Measured by Lactate Levels24 h1.4 mmol/LStandard Deviation 0.5
Nitric Oxide Delivery GroupIschemic Injury as Measured by Lactate Levels12 h1.5 mmol/LStandard Deviation 0.4
Nitric Oxide Delivery GroupIschemic Injury as Measured by Lactate Levels48 h1.1 mmol/LStandard Deviation 0.2
Nitric Oxide Delivery GroupIschemic Injury as Measured by Lactate LevelsPreoperative0.9 mmol/LStandard Deviation 0.2
PlaceboIschemic Injury as Measured by Lactate Levels48 h1.1 mmol/LStandard Deviation 0.2
PlaceboIschemic Injury as Measured by Lactate LevelsPreoperative0.5 mmol/LStandard Deviation 0.1
PlaceboIschemic Injury as Measured by Lactate Levels0 h1.9 mmol/LStandard Deviation 1
PlaceboIschemic Injury as Measured by Lactate Levels12 h1.5 mmol/LStandard Deviation 0.5
PlaceboIschemic Injury as Measured by Lactate Levels24 h1.4 mmol/LStandard Deviation 0.4
p-value: >0.05Wilcoxon (Mann-Whitney)
Primary

Myocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels

BNP levels correlate to ventricular and myocardial performance, function, and strain. Higher values represent greater strain and decreased function.

Time frame: 48 hours

ArmMeasureGroupValue (MEAN)Dispersion
Nitric Oxide Delivery GroupMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels12 h494 pg/dLStandard Deviation 222
Nitric Oxide Delivery GroupMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels0 h43 pg/dLStandard Deviation 34
Nitric Oxide Delivery GroupMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels24 h425 pg/dLStandard Deviation 154
Nitric Oxide Delivery GroupMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels48 h558 pg/dLStandard Deviation 535
Nitric Oxide Delivery GroupMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) LevelsPreoperative24 pg/dLStandard Deviation 22
PlaceboMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels48 h1298 pg/dLStandard Deviation 827
PlaceboMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) LevelsPreoperative100 pg/dLStandard Deviation 195
PlaceboMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels0 h94 pg/dLStandard Deviation 100
PlaceboMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels12 h812 pg/dLStandard Deviation 300
PlaceboMyocardial Function as Measured by B-type Natiuretic Peptide (BNP) Levels24 h938 pg/dLStandard Deviation 511
p-value: >0.05Wilcoxon (Mann-Whitney)
p-value: <0.05Wilcoxon (Mann-Whitney)
Primary

Myocardial Injury

Troponin levels correlate with myocardial injury. Greater troponin levels represent greater myocardial injury

Time frame: 48 hours

ArmMeasureGroupValue (MEAN)Dispersion
Nitric Oxide Delivery GroupMyocardial Injury0 h50.6 ng/mLStandard Deviation 37.8
Nitric Oxide Delivery GroupMyocardial Injury24 h8.9 ng/mLStandard Deviation 2.6
Nitric Oxide Delivery GroupMyocardial Injury12 h11.7 ng/mLStandard Deviation 3.2
Nitric Oxide Delivery GroupMyocardial Injury48 h4.8 ng/mLStandard Deviation 1.6
Nitric Oxide Delivery GroupMyocardial InjuryPreoperative0.07 ng/mLStandard Deviation 0.07
PlaceboMyocardial Injury48 h7.6 ng/mLStandard Deviation 2
PlaceboMyocardial InjuryPreoperative0.06 ng/mLStandard Deviation 0.1
PlaceboMyocardial Injury0 h54.1 ng/mLStandard Deviation 15.5
PlaceboMyocardial Injury12 h15.9 ng/mLStandard Deviation 3.5
PlaceboMyocardial Injury24 h12.5 ng/mLStandard Deviation 2.7
p-value: >0.05Wilcoxon (Mann-Whitney)
p-value: <0.05Wilcoxon (Mann-Whitney)
Primary

Serum Inflammatory Mediators Post CPB

Inflammation measured through the measurement inflammatory mediators, serum interleukin-6, serum interleukin-8, and tumor necrosis factor. Baseline (preoperative, 0h, 12h, 24h, and 48h.

Time frame: 48 hours

ArmMeasureGroupValue (MEAN)Dispersion
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-6, 48 hrs31.2 ng/mLStandard Deviation 30.6
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-8, 24 hrs101.5 ng/mLStandard Deviation 62.7
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-6, 0 hrs90.9 ng/mLStandard Deviation 44.6
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-8, 48 hrs134.2 ng/mLStandard Deviation 107
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-8, Preoperative60.9 ng/mLStandard Deviation 28.8
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBTumor Necrosis Factor Preoperative2.9 ng/mLStandard Deviation 0.8
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-6, 24 hrs64.2 ng/mLStandard Deviation 28.4
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 0 hrs3.2 ng/mLStandard Deviation 1.5
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-8, 0 hrs189.8 ng/mLStandard Deviation 104.1
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 12 hrs1.7 ng/mLStandard Deviation 0.07
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-6, 12 hrs51.5 ng/mLStandard Deviation 38.7
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 24 hrs1.7 ng/mLStandard Deviation 1.3
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-8, 12 hrs144 ng/mLStandard Deviation 133.4
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 48 hrs2.8 ng/mLStandard Deviation 0.09
Nitric Oxide Delivery GroupSerum Inflammatory Mediators Post CPBInterleukin-6 Preoperative3.8 ng/mLStandard Deviation 3.5
PlaceboSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 48 hrs2.1 ng/mLStandard Deviation 1.2
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-6 Preoperative3.4 ng/mLStandard Deviation 2.5
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-6, 0 hrs78.3 ng/mLStandard Deviation 45.7
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-6, 12 hrs73.3 ng/mLStandard Deviation 67
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-6, 24 hrs80.7 ng/mLStandard Deviation 82.1
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-6, 48 hrs39.4 ng/mLStandard Deviation 48.9
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-8, Preoperative39.8 ng/mLStandard Deviation 39
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-8, 0 hrs248.9 ng/mLStandard Deviation 191.7
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-8, 12 hrs85.9 ng/mLStandard Deviation 59.9
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-8, 24 hrs139.2 ng/mLStandard Deviation 162.1
PlaceboSerum Inflammatory Mediators Post CPBInterleukin-8, 48 hrs60.4 ng/mLStandard Deviation 33.7
PlaceboSerum Inflammatory Mediators Post CPBTumor Necrosis Factor Preoperative3.2 ng/mLStandard Deviation 1.1
PlaceboSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 0 hrs4.1 ng/mLStandard Deviation 1.6
PlaceboSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 12 hrs1.9 ng/mLStandard Deviation 1.1
PlaceboSerum Inflammatory Mediators Post CPBTumor Necrosis Factor, 24 hrs3.2 ng/mLStandard Deviation 2.9
p-value: >0.05Wilcoxon (Mann-Whitney)
Secondary

Incidence of Methhemoglobin >5%, Gene Expression Profiles, and S100B.

Time frame: 48 hours

Population: Data not collected for these assessments

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