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NCT Number: NCT05464238

Training in HFpEF-PH

Exercise interventions alone or as a component of a comprehensive cardiac rehabilitation program for patients with heart failure (HFrEF and HFpEF) have already shown to reduce the risk of hospitalisations due to HF and improved exercise capacity and health-related quality of life. Two meta-analyses have confirmed the beneficial effects in cardiorespiratory fitness and quality of life. The effects of exercise training on systolic and diastolic function remain inconclusive. Due to the positive results of exercise training in HFpEF, cardiac rehabilitation is recommended (Class I, level A) to be integrated into the overall provision of HF care. However, none of these studies focused on concomitant PH in HFpEF.

Exercise training in patients with pulmonary hypertension has already shown to improve exercise capacity, quality of life and peak oxygen consumption, which was confirmed by three meta-analyses and a Cochrane review. Though different diagnostic subgroups have already been enrolled in PH exercise training studies, they mainly included pulmonary arterial hypertension and chronic thromboembolic pulmonary hypertension. Data on combined PH and HFpEF is still lacking.

As recently pointed out by Arena et al. there may thus be an exercise training volume/intensity which may be detrimental to the RV in patients with HF and concomitant PH.

This study is sought to investigate whether a specialized training program is safe and tolerable and may improve exercise capacity, quality of life, hemodynamics, diastolic dysfunction and biomarkers in patients with PH and HFpEF.

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Key information

Age range

18 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

Centre for Pulmonary Hypertension at the Thoraxklinik Heidelberg, Heidelberg University Hospital, Heidelberg, Germany

Loading trial locations.

About this study

During the 6th World Symposium of PH in Nice, three main entities of PH due to left heart disease (PH-LHD) were identified. 1. PH due to HFpEF, 2. PH due to HF with reduced EF (HFrEF) and 3. PH due to valvular disease. The hemodynamic criteria measured by right heart catheterisation (RHC) of PH-LHD include mean pulmonary arterial pressure (mPAP)>20 mmHg and pulmonary arterial wedge pressure (PAWP) >15 mmHg.

The hallmark of HFpEF is an elevation in left-sided filling pressures. In some patients this leads to elevation of mean pulmonary arterial pressure as secondary pulmonary hypertension (PH). Pulmonary arterial pressure is a marker of the severity and chronicity of pulmonary venous congestion in HFpEF and in case of presence of PH, symptoms are more severe and the outcome is poorer.

Recently, an updated diagnostic algorithm (HFA-PEFF) for HFpEF was published as consensus recommendation from the Heart Failure Association of the European Society of Cardiology.

In first step, a pre-test assessment is performed (P: Pretest). In case risk factors for HFpEF are existing electrocardiographic and echocardiographic evaluation as well as an exercise test are required.

If the 1st step is proved positive, a detailed echocardiography (E: echocardiography) should be performed.

A definite diagnosis of HFpEF can be made by right heart catheterization with PAWP ≥15mmHg or LVEDP ≥16mmHg at rest and/or PAWP ≥25mmHg during exercise in presence of preserved left ventricular function.

Exercise interventions alone or as a component of a comprehensive cardiac rehabilitation program for patients with heart failure (HFrEF and HFpEF) have already shown to reduce the risk of hospitalisations due to HF and improved exercise capacity and health-related quality of life . Two meta-analyses have confirmed the beneficial effects in cardiorespiratory fitness and quality of life. The effects of exercise training on systolic and diastolic function remain inconclusive. Due to the positive results of exercise training in HFpEF, cardiac rehabilitation is recommended (Class I, level A) to be integrated into the overall provision of HF care. However, none of these studies focused on concomitant PH in HFpEF.

Exercise training in patients with pulmonary hypertension has already shown to improve exercise capacity, quality of life and peak oxygen consumption, which was confirmed by three meta-analyses and a Cochrane review. Though different diagnostic subgroups have already been enrolled in PH exercise training studies, they mainly included pulmonary arterial hypertension and chronic thromboembolic pulmonary hypertension. Data on combined PH and HFpEF is still lacking.

In healthy subjects, intensive exercise has already shown to cause potentially deleterious remodeling of the RV. As recently pointed out by Arena et al. there may thus be an exercise training volume/intensity which may be detrimental to the RV in patients with HF and concomitant PH.

This study is sought to investigate whether a specialized training program is safe and tolerable and may improve exercise capacity, quality of life, hemodynamics, diastolic dysfunction and biomarkers in patients with PH and HFpEF.

Who can participate

Healthy volunteers accepted: No

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

Inclusion criteria

  • Female and male patients ≥18 years
  • WHO/NYHA functional class II - IV
  • PH with HFpEF diagnosed by right heart catheterisation showing:

mean pulmonary arterial pressure (mPAP) ≥25mmHg at rest; pulmonary arterial wedge pressure (PAWP) ≥15mmHg at rest or LVEDP ≥16mmHg and/or PAWP≥25 mmHg during exercise, and

  • Preserved left ventricular ejection fraction ≥50%
  • Patients receiving optimized therapy including intensified treatment with diuretics and who have been stable for 1 month before entering the study.
  • Except for diuretics, medical treatment should not be changed during the study period.
  • Able to understand and willing to sign the Informed Consent Form

Exclusion criteria

  • Pre-capillary pulmonary hypertension (Group I; Group III; Group IV; Group V according to PH guidelines)
  • Congenital or acquired severe valvular diseases (severe aortic stenosis or insufficiency, severe mitral valve stenosis or insufficiency)
  • Pregnancy or lactation
  • Walking disability
  • Subject who participates in an interventional study during the course of this study
  • Severe lung disease: FEV1/FVC <0.5 and total lung capacity <60% of the normal value
  • Active myocarditis, unstable angina pectoris, exercise induced ventricular arrhythmias, active liver disease, porphyria or elevations of serum transaminases >3 x ULN (upper limit of normal) or bilirubin >1.5 x ULN
  • Haemoglobin concentration less than 75% of the lower limit of normal
  • Systolic blood pressure <85 mmHg
  • History or suspicion of inability to cooperate adequately.

Treatment and study plan

Exercise rehabilitation

Other

The initial phase of exercise training will be closely monitored and will be based on a three-weeks in-hospital stay to adjust and teach the exercise training which will be continued at home for 12 more weeks. In-hospital stays will be arranged country specific and hospitalization time may range. The rehabilitation program comprises of interval ergometer training (20 minutes 5 days per week), dumbbell training (30 minutes 5 days per week), respiratory therapy (30 minutes 5 days per week), mental training and guided walks for 2-5 times/week.

standard treatment

Other

Standard treatment during study duration

Primary outcomes

  1. 6-minute walking distance

    Time frame: baseline to 15 weeks

Secondary outcomes

  1. WHO functional class

    Time frame: baseline to 15 weeks

  2. Quality of life physical component scale SF-36

    Time frame: baseline to 15 weeks

  3. Quality of life mental component scale SF-36

    Time frame: baseline to 15 weeks

  4. peak oxygen consumption

    Time frame: baseline to 15 weeks

  5. peak oxygen consumption/kg body weight

    Time frame: baseline to 15 weeks

  6. workload achieved during cardiopulmonary exercise testing

    Time frame: baseline to 15 weeks

  7. NT-proBNP (N-terminal pro brain natriuretic peptide)

    Time frame: baseline to 15 weeks

  8. Tricuspid annular plane systolic excursion

    Time frame: baseline to 15 weeks

    echocardiography

  9. Systolic pulmonary arterial pressure

    Time frame: baseline to 15 weeks

    echocardiography

  10. Right atrial area

    Time frame: baseline to 15 weeks

    echocardiography

  11. Right ventricular area

    Time frame: baseline to 15 weeks

    echocardiography

  12. Right ventricular pump function

    Time frame: baseline to 15 weeks

    echocardiography

  13. Left ventricular pump function

    Time frame: baseline to 15 weeks

    echocardiography

  14. Left ventricular eccentricity index

    Time frame: baseline to 15 weeks

    echocardiography

Study contacts

Contact information is provided by the study sponsor or research team.

Ekkehard Grünig, MD

CONTACT

[email protected]

+496221396 ext. 1288

Nicola Benjamin, MSc

CONTACT

[email protected]

+49 6221 396 ext. 1288

Sponsors and collaborators

Lead sponsor

Heidelberg University

Other

Registry information

Official study title

Implementation, Safety, Tolerability and Effect of Exercise and Respiratory Training on 6-minute Walking Distance in Patients With Pulmonary Hypertension and Heart Failure With Preserved Ejection Fraction (HFpEF): a Randomized Controlled Multicenter Trial in European Countries.

Acronym: TRAIN HFpEF

Important dates

Study start
2023
Primary completion
2025
Study completion
2026
First posted
Jul 19, 2022
Registry last updated
Sep 16, 2022

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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