Can Quantitative CMR Tissue Characterization Adequately Identify Cardiotoxicity During Chemotherapy?
Autor: | Eitan Amir, Bernd J. Wintersperger, Maria Michalowska, Mustafa A Altaha, Mark Nolan, Kim A. Connelly, Paaladinesh Thavendiranathan, Marshall S. Sussman, Paul M. Yip, Christian P Houbois, Emily Somerset, Thomas H. Marwick |
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Rok vydání: | 2020 |
Předmět: |
medicine.medical_specialty
business.industry medicine.drug_class Coefficient of variation Repeated measures design 030204 cardiovascular system & hematology medicine.disease Confidence interval 030218 nuclear medicine & medical imaging 3. Good health 03 medical and health sciences 0302 clinical medicine Standard error Breast cancer Internal medicine Cardiology Natriuretic peptide Medicine Biomarker (medicine) Radiology Nuclear Medicine and imaging Analysis of variance Cardiology and Cardiovascular Medicine business |
Zdroj: | JACC: Cardiovascular Imaging. 13:951-962 |
ISSN: | 1936-878X |
DOI: | 10.1016/j.jcmg.2019.10.016 |
Popis: | Objectives The purpose of this study was to investigate the effect of the temporal and observer variability of cardiac magnetic resonance (CMR)–measured native T1, T2, and extracellular volume fraction (ECV) and serum biomarkers for the detection of cancer-therapeutics-related cardiac dysfunction (CTRCD). Background Biomarkers and serial quantitative CMR tissue characterization may help identify early myocardial changes of CTRCD, but these parameters require both accuracy and reliability. Methods A total of 50 participants (age 48.9 ± 12.1 years) underwent 3 CMR studies (1.5-T) and biomarker measurements (high-sensitivity troponin-I and B-type natriuretic peptide) at 3-month intervals: 20 with HER2-positive breast cancer (10 with and 10 without CTRCD), and 30 prospectively recruited healthy participants. T1 and T2 maps were obtained at 3 left ventricular short-axis locations. Temporal and observer variability were calculated as the coefficient of variation and as the standard error of the measurement (SEM) using repeated measures and 2-way analysis of variance. Minimal detected difference was defined as 2 × SEM. Results Compared with the patients without CTRCD, those with CTRCD had larger temporal change in native T1 (27.2 ms [95% confidence interval (CI): 20.8 to 39.3 ms] vs. 12.4 ms [95% CI: 9.5 to 17.9 ms]), T2 (2.0 ms [95% CI: 1.5 to 2.9 ms] vs. 1.0 ms [95% CI: 0.74 to 1.4 ms]), and ECV (2.1% [95% CI: 1.5% to 3.1%] vs. 1.0% [95% CI: 0.8% to 1.5%]). However, the temporal changes in biomarkers overlapped. The minimal detected difference for T1 (29 ms), T2 (3.0 ms), and ECV (2.2%) in healthy participants approached the mean temporal changes in patients with CTRCD. For individual patients with CTRCD, there was overlap in the temporal changes of all 3 parameters, and the variability in healthy participants with the least overlap for native T1. The interobserver/intraobserver variabilities for the CMR parameters were low (coefficient of variation 0.5% to 4.3%). Conclusions The temporal changes in both biomarkers and tissue characterization measures in individual patients overlap with the temporal variability in healthy participants and approach the minimal detectable temporal differences. While the accuracy of the parameters awaits further study, the temporal variability of these methods may pose challenges to routine clinical application in individual patients receiving cancer therapy. |
Databáze: | OpenAIRE |
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