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Association of Coronary Artery Calcium With Long-term, Cause-Specific Mortality Among Young Adults von Willebrand Factor and Management of Heart Valve Disease: JACC Review Topic of the Week Clinical and angiographic outcomes of patients treated with everolimus-eluting stents or first-generation Paclitaxel-eluting stents for unprotected left main disease Contemporary Presentation and Management of Valvular Heart Disease: The EURObservational Research Programme Valvular Heart Disease II Survey Prognostic Value of Intravascular Ultrasound in Patients With Coronary Artery Disease Transcatheter Aortic Valve Replacement in Patients With Multivalvular Heart Disease Conceptual Framework for Addressing Residual Atherosclerotic Cardiovascular Disease Risk in the Era of Precision Medicine Patterns of calcification in coronary artery disease. A statistical analysis of intravascular ultrasound and coronary angiography in 1155 lesions Differences between the left main and other bifurcations A Review of the Role of Breast Arterial Calcification for Cardiovascular Risk Stratification in Women

Original Research2017 Apr 18;69(15):1924-1933.

JOURNAL:J Am Coll Cardiol. Article Link

Left Ventricular Assist Device as a Bridge to Recovery for Patients With Advanced Heart Failure

Jakovljevic DG, Yacoub MH, Schueler S et al. Keywords: LVAD; cardiac power; exercise capacity; heart transplant; recovery

ABSTRACT


BACKGROUND - Left ventricular assist devices (LVADs) have been used as an effective therapeutic option in patients with advanced heart failure, either as a bridge to transplantation, as destination therapy, or in some patients, as a bridge to recovery.


OBJECTIVES This study evaluated whether patients undergoing an LVAD bridge-to-recovery protocol can achieve cardiac and physical functional capacities equivalent to those of healthy controls.


METHODS - Fifty-eight male patients-18 implanted with a continuous-flow LVAD, 16 patients with LVAD explanted (recovered patients), and 24 heart transplant candidates (HTx)-and 97 healthy controls performed a maximal graded cardiopulmonary exercise test with continuous measurements of respiratory gas exchange and noninvasive (rebreathing) hemodynamic data. Cardiac function was represented by peak exercise cardiac power output (mean arterial blood pressure × cardiac output) and functional capacity by peak exercise O2 consumption.


RESULTS - All patients demonstrated a significant exertional effort as demonstrated with the mean peak exercise respiratory exchange ratio >1.10. Peak exercise cardiac power output was significantly higher in healthy controls and explanted LVAD patients compared with other patients (healthy 5.35 ± 0.95 W; explanted 3.45 ± 0.72 W; LVAD implanted 2.37 ± 0.68 W; and HTx 1.31 ± 0.31 W; p < 0.05), as was peak O2 consumption (healthy 36.4 ± 10.3 ml/kg/min; explanted 29.8 ± 5.9 ml/kg/min; implanted 20.5 ± 4.3 ml/kg/min; and HTx 12.0 ± 2.2 ml/kg/min; p < 0.05). In the LVAD explanted group, 38% of the patients achieved peak cardiac power output and 69% achieved peak O2 consumption within the ranges of healthy controls.


CONCLUSIONS - The authors have shown that a substantial number of patients who recovered sufficiently to allow explantation of their LVAD can even achieve cardiac and physical functional capacities nearly equivalent to those of healthy controls.


Copyright © 2017 The Authors. Published by Elsevier Inc. All rights reserved.