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Completed

NCT Number: NCT04086537

BMPR2 Mutations and Iron Metabolism in Pulmonary Arterial Hypertension

Previously characterised PAH patients, including idiopathic, heritable and other forms of group 1 PAH with and without BMPR2 mutation which have already been analysed and are regularly seen in the Center for Pulmonary Hypertension may be contacted to participate in the study. Clinical and laboratory values will be collected prospectively.

Patients with IPAH/HPAH and other forms of PAH who are newly diagnosed within the duration of the trial will receive routine diagnostic workup including the routine information about a possible BMPR2 mutation analysis for IPAH/HPAH patients according to guidelines.

During their routine visit the patients' medical history will be obtained and physical examination will be conducted. Moreover, an electrocardiogram (ECG), determination of World Health Organization (WHO)-functional class, laboratory testing (NT-proBNP and routine laboratory), echocardiography will be routinely carried out. BMPR2 expression levels will be measured in blood samples. Additionally, laboratory samples will be collected for analysis of further parameters reflecting iron metabolism such as hepcidin, ferritin, iron levels, IL6 and circulating soluble transferrin receptor Levels.

In addition, healthy controls will be invited to participate in this study to obtain comparable levels of hepcidin and BMPR2 pathway members.

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Key information

Age range

18 year–80 year

Sex eligibility

All sexes

Study type

Observational

Primary location

Centre for Pulmonary Hypertension at the Thoraxklinik, Heidelberg University Hospital

Heidelberg, 69126, Germany

About this study

Pulmonary arterial hypertension (PAH) is a rare disease characterized by an increase in pulmonary arterial pressure and pulmonary vascular resistance, which result in right heart hypertrophy and decompensation. It crucially affects exercise capacity, quality of life and prognosis. Idiopathic and heritable forms of PAH (IPAH and HPAH) are often associated with mutations of the bone morphogenetic protein receptor 2 (BMPR2) accompanied by disease development at an earlier age, more severe hemodynamic phenotype and a higher mortality rate. Other forms of PAH also show reduced expression levels of BMPR2, even if no BMPR2 mutation has been identified in these patients. Moreover, the balance of iron metabolism was shown to be disturbed in IPAH patients. IPAH patients suffered from iron deficiency with low levels of serum iron concentrations and while at the same time displaying high levels of the iron uptake regulating hormon hepcidin. The hormone hepcidin, which inhibits iron absorption from the intestine, is upregulated by the BMPR2 signaling pathway (via BMP6). The impact of BMPR2 expression on iron homeostasis, however, has not been investigated yet.

Mutation and non-mutation carriers with invasively diagnosed PAH by right heart catheter and under optimized medical therapy will be enrolled in this study. An explicit exclusion criterion is intravenous iron supplementation in the last 2 months to capture their natural iron metabolic status. Subjects will be recruited at the Center for Pulmonary Hypertension at Thoraxklinik Heidelberg University Hospital. The measurement of BMPR2 expression will be performed with real-time polymerase chain reaction. In addition, routine laboratory parameters of iron metabolism and clinical parameters will be statistically correlated with the BMPR2 expression of BMPR2 mutation carriers and non-mutation carriers. Clinical examinations will comprise of routine diagnostic workup. No study specific clinical assessments will be performed. For diagnostic workup, an extended blood analysis for BMPR2 expression will be performed, which is mentioned in the informed consent document.

In addition, healthy controls will be invited to participate in this study.Healthy controls will only receive a blood collection to obtain control values for hepcidin, BMPR2 expression rate and levels of BMPR2 pathway members such as Bone Morphogenetic Protein 2 and 6 (BMP2 and BMP6). They will not receive any further examinations. BMPR2 mutation status will not be investigated. The control group will be age and gender matched to non-BMPR2 mutation carriers.

Therefore, this study aims to investigate whether PAH patients with a reduced expression rate of BMPR2 have altered serum levels of hepcidin and further iron related metabolites compared to PAH patients with normal expression levels and whether these patients present with more pronounced limitations in clinical parameters. This study could help to understand iron metabolism in PAH and generate new therapeutic targets for the treatment of the disease.

Who can participate

Healthy volunteers accepted: Yes

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

Patients:

  • Informed consent
  • Male or female PAH, including idiopathic, heritable and other forms of group 1 PAH (according to Nice classification) patients 18-80 years of age
  • Invasively diagnosed PAH by right heart catheter (invasively confirmed diagnosis according to the current PAH definition of valid guidelines at time of initial diagnosis)
  • Optimized medical therapy for PAH (such as endothelin-receptor-antagonists, inhaled prostanoids, phosphodiesterase-5-inhibitors, diuretics and if useful, supplemental oxygen) for at least 2 months before entering the study
  • Able to understand and willing to sign the Informed Consent Form

Inclusion criteria

Healthy Controls:

  • Informed consent
  • Male or female healthy controls 18-80 years of age
  • Able to understand and willing to sign the Informed Consent Form

Exclusion criteria

Patients:

  • Pregnancy or lactation
  • Change in disease-specific medication within 8 weeks before enrolment
  • Intravenous iron supplementation within the preceding 2 months
  • Acute infection
  • Comorbidities affecting iron metabolism such as hemolytic anemias, genetic disorders of hemoglobin, diabetes, systemic cardiovascular disease, sickle cell disease, thalassemia

Exclusion criteria

Healthy Controls:

  • Pregnancy or lactation
  • Intravenous iron supplementation within the preceding 2 months
  • Acute infection
  • Heart or lung disease
  • Comorbidities affecting iron metabolism such as hemolytic anemias, genetic disorders of hemoglobin, diabetes, systemic cardiovascular disease, sickle cell disease, thalassemia

Treatment and study plan

hepcidin levels and BMPR2 expression

Diagnostic Test

Samples will be collected in the three groups. Hepcidin levels will be measured in serum using ELISA and BMPR2 expression will be assessed as previously described using real time-qPCR

Primary outcomes

  1. The relationship between absolute values of hepcidin levels and BMPR2 expression

    Time frame: at enrollment

    assessed as correlation between BMPR2 expression levels and hepcidin levels

  2. The relationship between hepcidin levels and BMPR2 expression

    Time frame: at enrollment

    analysis of differences of hepcidin levels in BMPR2 mutation carriers and non-carriers (BMPR2 mutation carriers are assumed to have a lower expression level of BMPR2)

Secondary outcomes

  1. Correlation of BMPR2 expression levels with ferritin levels

    Time frame: at enrollment

    Ferritin levels

  2. Correlation of BMPR2 expression levels with transferrin levels

    Time frame: at enrollment

    Transferrin levels

  3. Correlation of BMPR2 expression levels with soluble transferrin receptor saturation and concentration

    Time frame: at enrollment

    Soluble transferrin receptor saturation and concentration

  4. Correlation of BMPR2 expression levels with iron levels

    Time frame: at enrollment

    Iron levels

  5. Correlation of BMPR2 expression levels with red blood distribution cell width

    Time frame: at enrollment

    Red blood distribution cell width

  6. Correlation of BMPR2 expression levels with erythroferrone levels

    Time frame: at enrollment

    Erythroferrone levels

  7. Correlation of BMPR2 expression levels with hemoglobin levels

    Time frame: at enrollment

    Hemoglobin levels

  8. Correlation of BMPR2 expression levels with hematocrit

    Time frame: at enrollment

    Hematocrit

  9. Correlation of BMPR2 expression levels with erythropoietin (EPO) levels

    Time frame: at enrollment

    Erythropoietin (EPO) levels

  10. Correlation of BMPR2 expression levels with C-reactive protein levels

    Time frame: at enrollment

    C-reactive protein levels

  11. Correlation of BMPR2 expression levels with interleukin 6 (IL6) levels

    Time frame: at enrollment

    Interleukin 6 (IL6) levels to approximate inflammation

  12. Correlation of BMPR2 expression levels with NT-proBNP levels

    Time frame: at enrollment

    NT-proBNP levels

  13. Correlation of BMPR2 expression levels with BMP2 messenger ribonucleid acid (mRNA) expression levels

    Time frame: at enrollment

    BMP2 mRNA expression levels

  14. Correlation of BMPR2 expression levels with BMP6 messenger ribonucleid acid (mRNA) expression levels

    Time frame: at enrollment

    BMP6 mRNA expression levels

  15. Correlation of BMPR2 expression levels with overall transcriptomic analysis in blood samples and formalin fixed human PAH lung tissue samples

    Time frame: at enrollment

    overall transcriptomic analysis in blood samples and formalin fixed human PAH lung tissue samples

  16. Correlation of BMPR2 expression levels with BMPR2 protein levels

    Time frame: at enrollment

    BMPR2 protein levels

  17. Correlation of BMPR2 expression levels with BMP2 protein levels

    Time frame: at enrollment

    BMP2 protein levels

  18. Correlation of BMPR2 expression levels with BMP6 protein levels

    Time frame: at enrollment

    BMP6 protein levels

  19. Correlation of BMPR2 expression levels with 6-minute walking distance (6-MWD)

    Time frame: at enrollment

    6-minute walking distance (6-MWD)

  20. Correlation of BMPR2 expression levels with BORG Scale of 6-minute walking distance (6-MWD)

    Time frame: at enrollment

    Borg Scale of 6-minute walking distance (6-MWD)

  21. Correlation of BMPR2 expression levels with WHO functional class

    Time frame: at enrollment

    WHO functional class

  22. Correlation of BMPR2 expression levels with forced vital capacity (FVC)

    Time frame: at enrollment

    forced vital capacity (FVC)

  23. Correlation of BMPR2 expression levels with forced expiratory volume in one second (FEV1)

    Time frame: at enrollment

    forced expiratory volume in one second (FEV1)

  24. Correlation of BMPR2 expression levels with forced expiratory flow (FEV)

    Time frame: at enrollment

    forced expiratory flow (FEV)

  25. Correlation of BMPR2 expression levels with total lung capacity (TLC)

    Time frame: at enrollment

    total lung capacity (TLC)

  26. Correlation of BMPR2 expression levels with diffusion-limited carbon monoxide (DLCo)

    Time frame: at enrollment

    diffusion-limited carbon monoxide (DLCo)

  27. Correlation of BMPR2 expression levels with residual volume

    Time frame: at enrollment

    residual volume, normally accounting for about 25% of total lung capacity

  28. Correlation of BMPR2 expression levels with blood gas analysis including partial pressure of oxygen

    Time frame: at enrollment

    partial pressure of oxygen

  29. Correlation of BMPR2 expression levels with blood gas analysis including partial pressure of carbon dioxide

    Time frame: at enrollment

    partial pressure of carbon dioxide

  30. Correlation of BMPR2 expression levels with blood gas analysis including oxygen saturation

    Time frame: at enrollment

    oxygen saturation

  31. Correlation of BMPR2 expression levels with blood gas analysis including supplemental oxygen "yes" or "no"

    Time frame: at enrollment

    supplemental oxygen "yes" or "no"

  32. Correlation of BMPR2 expression levels with cardiac output (CO)

    Time frame: at enrollment

    cardiac output (CO) measured by right heart catheterization

  33. Correlation of BMPR2 expression levels with cardiac index (CI)

    Time frame: at enrollment

    cardiac index (CI) measured by right heart catheterization

  34. Correlation of BMPR2 expression levels with pulmonary capillary wedge pressure (PAWP)

    Time frame: at enrollment

    pulmonary capillary wedge pressure (PAWP) measured by right heart catheterization

  35. Correlation of BMPR2 expression levels with mixed venous oxygen saturation (SvO2)

    Time frame: at enrollment

    mixed venous oxygen saturation (SvO2) measured by right heart catheterization

  36. Correlation of BMPR2 expression levels with right atrium area (RA-area)

    Time frame: at enrollment

    right atrium area (RA-area) determined by echocardiography

  37. Correlation of BMPR2 expression levels with right ventricle area (RV-area)

    Time frame: at enrollment

    right ventricle area (RV-area) determined by echocardiography

  38. Correlation of BMPR2 expression levels with myocardial performance index (Tei)

    Time frame: at enrollment

    myocardial performance index (Tei) determined by echocardiography

  39. Correlation of BMPR2 expression levels with tricuspid annular plane systolic excursion (TAPSE)

    Time frame: at enrollment

    tricuspid annular plane systolic excursion (TAPSE) determined by echocardiography

  40. Correlation of BMPR2 Expression with systolic pulmonary artery pressure

    Time frame: at enrollment

    systolic pulmonary artery pressure determined by echocardiography

  41. Correlation of BMPR2 Expression with right ventricular function

    Time frame: at enrollment

    right ventricular function determined by echocardiography

  42. Correlation of BMPR2 Expression with left ventricular function

    Time frame: at enrollment

    left ventricular function determined by echocardiography

  43. Correlation of BMPR2 Expression with right ventricular pressure

    Time frame: at enrollment

    systolic, diastolic and mean right ventricular pressure measured by right heart catheterization

  44. Correlation of BMPR2 Expression with pulmonary artery pressure

    Time frame: at enrollment

    systolic, diastolic and mean pulmonary artery pressure measured by right heart catheterization

  45. Correlation of BMPR2 Expression with pulmonary vascular resistance

    Time frame: at enrollment

    pulmonary vascular resistance measured by right heart catheterization

Sponsors and collaborators

Lead sponsor

Heidelberg University

Other

Collaborators

  • Hannover Medical School
  • University Hospital Carl Gustav Carus
  • University Hospital Heidelberg
  • University of Giessen
  • University of Leipzig

Registry information

Official study title

Association Between BMPR2 Mutations and Iron Metabolism in Pulmonary Arterial Hypertension Patients: an Explorative Cross-sectional Study

Acronym: AMIA

Important dates

Study start
2019
Primary completion
2020
Study completion
2021
First posted
Sep 11, 2019
Registry last updated
Apr 29, 2021

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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