Personalized Rate-Response Programming Improves Exercise Tolerance After 6 Months in People With Cardiac Implantable Electronic Devices and Heart Failure: A Phase II Study.


Journal

Circulation
ISSN: 1524-4539
Titre abrégé: Circulation
Pays: United States
ID NLM: 0147763

Informations de publication

Date de publication:
26 05 2020
Historique:
pubmed: 18 4 2020
medline: 8 6 2021
entrez: 18 4 2020
Statut: ppublish

Résumé

Heart failure with reduced ejection fraction (HFrEF) is characterized by blunting of the positive relationship between heart rate and left ventricular (LV) contractility known as the force-frequency relationship (FFR). We have previously described that tailoring the rate-response programming of cardiac implantable electronic devices in patients with HFrEF on the basis of individual noninvasive FFR data acutely improves exercise capacity. We aimed to examine whether using FFR data to tailor heart rate response in patients with HFrEF with cardiac implantable electronic devices favorably influences exercise capacity and LV function 6 months later. We conducted a single-center, double-blind, randomized, parallel-group trial in patients with stable symptomatic HFrEF taking optimal guideline-directed medical therapy and with a cardiac implantable electronic device (cardiac resynchronization therapy or implantable cardioverter-defibrillator). Participants were randomized on a 1:1 basis between tailored rate-response programming on the basis of individual FFR data and conventional age-guided rate-response programming. The primary outcome measure was change in walk time on a treadmill walk test. Secondary outcomes included changes in LV systolic function, peak oxygen consumption, and quality of life. We randomized 83 patients with a mean±SD age 74.6±8.7 years and LV ejection fraction 35.2±10.5. Mean change in exercise time at 6 months was 75.4 (95% CI, 23.4 to 127.5) seconds for FFR-guided rate-adaptive pacing and 3.1 (95% CI, -44.1 to 50.3) seconds for conventional settings (analysis of covariance; In this phase II study, FFR-guided rate-response programming determined using a reproducible, noninvasive method appears to improve exercise time and limit changes to LV function in people with HFrEF and cardiac implantable electronic devices. Work is ongoing to confirm our findings in a multicenter setting and on longer-term clinical outcomes. Registration: URL: https://www.clinicaltrials.gov; Unique identifier: NCT02964650.

Sections du résumé

BACKGROUND
Heart failure with reduced ejection fraction (HFrEF) is characterized by blunting of the positive relationship between heart rate and left ventricular (LV) contractility known as the force-frequency relationship (FFR). We have previously described that tailoring the rate-response programming of cardiac implantable electronic devices in patients with HFrEF on the basis of individual noninvasive FFR data acutely improves exercise capacity. We aimed to examine whether using FFR data to tailor heart rate response in patients with HFrEF with cardiac implantable electronic devices favorably influences exercise capacity and LV function 6 months later.
METHODS
We conducted a single-center, double-blind, randomized, parallel-group trial in patients with stable symptomatic HFrEF taking optimal guideline-directed medical therapy and with a cardiac implantable electronic device (cardiac resynchronization therapy or implantable cardioverter-defibrillator). Participants were randomized on a 1:1 basis between tailored rate-response programming on the basis of individual FFR data and conventional age-guided rate-response programming. The primary outcome measure was change in walk time on a treadmill walk test. Secondary outcomes included changes in LV systolic function, peak oxygen consumption, and quality of life.
RESULTS
We randomized 83 patients with a mean±SD age 74.6±8.7 years and LV ejection fraction 35.2±10.5. Mean change in exercise time at 6 months was 75.4 (95% CI, 23.4 to 127.5) seconds for FFR-guided rate-adaptive pacing and 3.1 (95% CI, -44.1 to 50.3) seconds for conventional settings (analysis of covariance;
CONCLUSIONS
In this phase II study, FFR-guided rate-response programming determined using a reproducible, noninvasive method appears to improve exercise time and limit changes to LV function in people with HFrEF and cardiac implantable electronic devices. Work is ongoing to confirm our findings in a multicenter setting and on longer-term clinical outcomes. Registration: URL: https://www.clinicaltrials.gov; Unique identifier: NCT02964650.

Identifiants

pubmed: 32299222
doi: 10.1161/CIRCULATIONAHA.119.045066
doi:

Banques de données

ClinicalTrials.gov
['NCT02964650']

Types de publication

Clinical Trial, Phase II Journal Article Randomized Controlled Trial Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1693-1703

Subventions

Organisme : British Heart Foundation
ID : FS/12/80/29821
Pays : United Kingdom

Commentaires et corrections

Type : CommentIn
Type : CommentIn

Auteurs

John Gierula (J)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Judith E Lowry (JE)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Maria F Paton (MF)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Charlotte A Cole (CA)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Rowenna Byrom (R)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Aaron O Koshy (AO)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Hemant Chumun (H)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Lorraine C Kearney (LC)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Sam Straw (S)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

T Scott Bowen (TS)

Faculty of Biological Sciences, School of Medicine (T.S.B.), University of Leeds, United Kingdom.

Richard M Cubbon (RM)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Anne-Maree Keenan (AM)

School of Healthcare (A.M.K.), University of Leeds, United Kingdom.

Deborah D Stocken (DD)

Leeds Institute of Clinical Trials Research (D.D.S), University of Leeds, United Kingdom.

Mark T Kearney (MT)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

Klaus K Witte (KK)

Leeds Institute of Cardiovascular and Metabolic Medicine (J.G., J.E.L., M.F.P., C.A.C., R.B., A.O.K., H.C., L.C.K., S.S., R.M.C., M.T.K., K.K.W.), University of Leeds, United Kingdom.

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