Carnitine Nutritional Deficiency, Familial Primary Pulmonary Hypertension, Lung Diseases, Primary Pulmonary Hypertension, Pulmonary Arterial Hypertension
Conditions
Brief summary
In preparation for a future mechanistic study, investigators now propose to test the specific hypothesis that carnitine consumption is not reduced in PAH, that plasma carnitine levels are stable over time in PAH and that carnitine supplementation in PAH can increase plasma carnitine and thereby delivery of carnitine to the RV and possibly improve RV function. Investigators propose three aims in humans to test this mechanistic hypothesis, 1) Measure the oral consumption of carnitine in human PAH. This aim will use food diaries and carnitine supplement use questionnaires in PAH patients to test the hypothesis that carnitine supplementation is uncommon in PAH and food consumption is adequate. Aim 2) Measure the stability over time in plasma carnitine levels in PAH patients. This aim will test the hypothesis that plasma carnitine is not affected by disease severity and is stable over time in PAH patients. Investigators will measure plasma carnitine concentration and markers of fatty acid oxidation at Visit 1 and Visit 2. 3) Perform a mechanistic pilot study using carnitine supplementation to enhance circulating carnitine in PAH. This small pilot study will test the hypothesis that carnitine supplementation increases plasma carnitine (primary endpoint) and will test for physiologic effects using six minute walk testing, echocardiography and plasma markers of lipid metabolism.
Detailed description
Right ventricular (RV) failure is the most common cause of death in pulmonary arterial hypertension (PAH). No RV-specific therapies are available, in part because the underlying mechanisms of RV failure are poorly understood. A growing body of evidence suggests that metabolic abnormalities may underlie RV dysfunction in PAH. Interventions against metabolic dysfunction in PAH may protect against RV failure. Investigators in the PH research group have identified abnormalities in fatty acid (FA) metabolism in PAH that overlap considerably with disorders of carnitine deficiency. Carnitine links to an acyl group, which is required to transport FAs across the mitochondrial membrane to undergo beta-oxidation, the predominate source of ATP production in the human heart. Inborn errors of carnitine metabolism and acquired carnitine deficiency are associated with cardiomyopathy. Acquired deficiency primarily occurs via binding of carnitine to excess circulating fatty acids or renal wasting. Carnitine deficiency and PAH are both associated with insulin resistance, myocardial lipotoxicity, and mitochondrial oxidative stress. Carnitine supplementation in humans and animal models of cardiometabolic dysfunction reverses these abnormalities but has not been studied in PAH. In published work, investigators found that in RV samples from humans with PAH, there is a marked (up to 300-fold) reduction in acylcarnitines along with increased long-chain fatty acids. Investigators also a found a two-fold increase in circulating fatty acids FAs in humans with PAH, indicating increased delivery to the myocardium. As a consequence of unchecked fatty acid accumulation, investigators observed 7-fold higher RV lipid content and markers of lipotoxicity. These observations suggest there is inadequate carnitine substrate to bind fatty acids and facilitate their transport across the mitochondrial membrane in the human PAH RV. The investigator's overarching hypothesis is that in human PAH, RV function can be improved by augmenting carnitine substrate availability to improve outcomes. In preparation for a future mechanistic study, Vanderbilt PAH research investigators now propose to test the specific hypothesis that carnitine consumption is not reduced in PAH, that plasma carnitine levels are stable over time in PAH and that carnitine supplementation in PAH can increase plasma carnitine and thereby delivery of carnitine to the RV and possibly improve RV function. Investigators propose three aims in humans to test this mechanistic hypothesis, 1) Measure the oral consumption of carnitine in human PAH. This aim will use food diaries and carnitine supplement use questionnaires in PAH patients to test the hypothesis that carnitine supplementation is uncommon in PAH and food consumption is adequate. Aim 2) Measure the stability over time in plasma carnitine levels in PAH patients. This aim will test the hypothesis that plasma carnitine is not affected by disease severity and is stable over time in PAH patients. The study will measure plasma carnitine concentration and markers of fatty acid oxidation at Visit 1 and Visit 2. 3) Perform a mechanistic pilot study using carnitine supplementation to enhance circulating carnitine in PAH. This small pilot study will test the hypothesis that carnitine supplementation increases plasma carnitine (primary endpoint) and will test for physiologic effects using six minute walk testing, echocardiography and plasma markers of lipid metabolism.
Interventions
supplement provided twice a day for 2 weeks
Sponsors
Study design
Intervention model description
This is a single-center, prospective study enrolling 10 PAH patients. All eligible participants will be given carnitine supplements for 2 weeks.
Eligibility
Inclusion criteria
* Adults aged 18 or older. * Diagnosed with idiopathic, heritable, simple congenital heart defect, or drug- or toxin-associated pulmonary arterial hypertension (PAH) according to World Health Organization consensus recommendations. * Stable PAH-specific medication regimen for three months prior to enrollment. Subjects with only a single diuretic adjustment in the prior three months will be included. Adjustments in IV prostacyclin for side effect management are allowed. * FEV1\> or = 60% predicted and no more than mild abnormalities on lung imaging * WHO Functional Class II-IV * Ambulatory
Exclusion criteria
* Prohibited from normal activity due to wheelchair bound status, bed bound status, reliance on a cane/walker, activity-limiting angina, activity-limiting osteoarthritis, or other condition that limits activity * Pregnancy * Diagnosis of PAH etiology other than idiopathic, heritable, simple congenital heart defect, or associated with drugs or toxins * Drug and toxin associated PAH patients with active drug use * Prior diagnosis of cirrhosis * Malignancy * eGFR by MDRD \<60mL/min * Known allergy to l-carnitine supplements
Design outcomes
Primary
| Measure | Time frame | Description |
|---|---|---|
| Plasma Carnitine Concentration | 2 weeks of intervention | Change in plasma Carnitine concentration from Visit 2 (Week 12) to Visit 4 (Week 14). |
Secondary
| Measure | Time frame | Description |
|---|---|---|
| Carnitine Ingestion Use Through Food | Reported week 1 (3 days leading up to visit 1) and week 12 (3 days leading up to visit 2). | Measure oral ingestion of Carnitine in PAH patients by assessing food intake recorded by diary. Reports lacking meat, fish, and/or eggs are deemed no ingestion by diet. |
| Six-minute Walk | 14 weeks | Mean change in meters walked pre- and post- carnitine on 6mwt |
| WHO Functional Class | 14 weeks | count of pre- and post-carnitine supplement and WHO functional class |
| Prevalence of Carnitine Supplement Use | 12 weeks | Quantify the prevalence of Carnitine supplement use of Carnitine in PAH patients by evaluating the number of study participants that report use of a daily carnitine supplement in baseline dietary reporting. |
| Echocardiography Measurements of TAPSE and RV Fractional Area | 14 weeks | Correlation of change in plasma Carnitine with change in markers of RV function including TAPSE and RV fractional area change |
| Stability of Plasma Carnitine | 12 weeks- change from visit 1(week 1) to visit 2(week 12) | Change in plasma carnitine from visit 1 to visit 2 |
| Patient Reported Side Effects | 2 weeks- between visit 2 and visit 4 | Markers of tolerability of Carnitine supplement including presence of side effects, adverse events, and serious adverse events. Side effects to be reported beginning Visit 2, at carnitine start, and ended at Visit 4. |
Countries
United States
Participant flow
Pre-assignment details
Single arm study
Participants by arm
| Arm | Count |
|---|---|
| Supplement Form: 500 mg L-carnitine tablet Dosage: Subjects 50-90kg: 3g/day Subjects \<50kg or \>90kg: 50mg/kg/day Frequency: twice a day for 2 weeks
L-carnitine: supplement provided twice a day for 2 weeks | 10 |
| Total | 10 |
Withdrawals & dropouts
| Period | Reason | FG000 |
|---|---|---|
| Overall Study | Withdrawal by Subject | 2 |
Baseline characteristics
| Characteristic | Supplement |
|---|---|
| Age, Categorical <=18 years | 0 Participants |
| Age, Categorical >=65 years | 1 Participants |
| Age, Categorical Between 18 and 65 years | 9 Participants |
| Age, Continuous | 47.3 years STANDARD_DEVIATION 9.3 |
| Ethnicity (NIH/OMB) Hispanic or Latino | 0 Participants |
| Ethnicity (NIH/OMB) Not Hispanic or Latino | 8 Participants |
| Ethnicity (NIH/OMB) Unknown or Not Reported | 2 Participants |
| Functional Class Functional Class I | 1 Participants |
| Functional Class Functional Class II | 8 Participants |
| Functional Class Functional Class III | 0 Participants |
| Functional Class Not evaluated | 1 Participants |
| Race (NIH/OMB) American Indian or Alaska Native | 1 Participants |
| Race (NIH/OMB) Asian | 0 Participants |
| Race (NIH/OMB) Black or African American | 0 Participants |
| Race (NIH/OMB) More than one race | 0 Participants |
| Race (NIH/OMB) Native Hawaiian or Other Pacific Islander | 0 Participants |
| Race (NIH/OMB) Unknown or Not Reported | 0 Participants |
| Race (NIH/OMB) White | 9 Participants |
| Sex: Female, Male Female | 8 Participants |
| Sex: Female, Male Male | 2 Participants |
Adverse events
| Event type | EG000 affected / at risk |
|---|---|
| deaths Total, all-cause mortality | 1 / 10 |
| other Total, other adverse events | 3 / 10 |
| serious Total, serious adverse events | 1 / 10 |
Outcome results
Plasma Carnitine Concentration
Change in plasma Carnitine concentration from Visit 2 (Week 12) to Visit 4 (Week 14).
Time frame: 2 weeks of intervention
| Arm | Measure | Value (MEDIAN) |
|---|---|---|
| Supplement | Plasma Carnitine Concentration | 44 uM |
Carnitine Ingestion Use Through Food
Measure oral ingestion of Carnitine in PAH patients by assessing food intake recorded by diary. Reports lacking meat, fish, and/or eggs are deemed no ingestion by diet.
Time frame: Reported week 1 (3 days leading up to visit 1) and week 12 (3 days leading up to visit 2).
Population: Number of subjects that ate a standard diet that included carnitine meat, fish and/or eggs, which provide Carnitine.
| Arm | Measure | Group | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|---|
| Supplement | Carnitine Ingestion Use Through Food | Week 1 | 7 Participants |
| Supplement | Carnitine Ingestion Use Through Food | Week 12 | 7 Participants |
Echocardiography Measurements of TAPSE and RV Fractional Area
Correlation of change in plasma Carnitine with change in markers of RV function including TAPSE and RV fractional area change
Time frame: 14 weeks
| Arm | Measure | Group | Value (NUMBER) |
|---|---|---|---|
| Supplement | Echocardiography Measurements of TAPSE and RV Fractional Area | TAPSE- Spearman | 0.543 correlation coefficient |
| Supplement | Echocardiography Measurements of TAPSE and RV Fractional Area | RV fractional- Spearman | -0.086 correlation coefficient |
| Supplement | Echocardiography Measurements of TAPSE and RV Fractional Area | TAPSE- Pearson | 0.736 correlation coefficient |
| Supplement | Echocardiography Measurements of TAPSE and RV Fractional Area | RV fractional area- Pearson | 0.107 correlation coefficient |
Patient Reported Side Effects
Markers of tolerability of Carnitine supplement including presence of side effects, adverse events, and serious adverse events. Side effects to be reported beginning Visit 2, at carnitine start, and ended at Visit 4.
Time frame: 2 weeks- between visit 2 and visit 4
Population: number of participants reporting side effects
| Arm | Measure | Value (NUMBER) |
|---|---|---|
| Supplement | Patient Reported Side Effects | 1 participants |
Prevalence of Carnitine Supplement Use
Quantify the prevalence of Carnitine supplement use of Carnitine in PAH patients by evaluating the number of study participants that report use of a daily carnitine supplement in baseline dietary reporting.
Time frame: 12 weeks
Population: Number of participants reporting carnitine supplement use
| Arm | Measure | Group | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|---|
| Supplement | Prevalence of Carnitine Supplement Use | Baseline | 0 Participants |
| Supplement | Prevalence of Carnitine Supplement Use | 12 weeks | 0 Participants |
Six-minute Walk
Mean change in meters walked pre- and post- carnitine on 6mwt
Time frame: 14 weeks
| Arm | Measure | Value (MEAN) | Dispersion |
|---|---|---|---|
| Supplement | Six-minute Walk | 13.14286 meters | Standard Deviation 17.9 |
Stability of Plasma Carnitine
Change in plasma carnitine from visit 1 to visit 2
Time frame: 12 weeks- change from visit 1(week 1) to visit 2(week 12)
| Arm | Measure | Value (MEDIAN) |
|---|---|---|
| Supplement | Stability of Plasma Carnitine | 2.708 uM change |
WHO Functional Class
count of pre- and post-carnitine supplement and WHO functional class
Time frame: 14 weeks
| Arm | Measure | Group | Category | Value (COUNT_OF_PARTICIPANTS) |
|---|---|---|---|---|
| Supplement | WHO Functional Class | Pre-supplement | WHO functional class I | 3 Participants |
| Supplement | WHO Functional Class | Pre-supplement | WHO functional class II | 4 Participants |
| Supplement | WHO Functional Class | Post-supplement | WHO functional class I | 2 Participants |
| Supplement | WHO Functional Class | Post-supplement | WHO functional class II | 5 Participants |