Left ventricular mechanical dysfunction in diet-induced obese mice is exacerbated during inotropic stress: A cine DENSE cardiovascular magnetic resonance study

Christopher M. Haggerty, Andrea C. Mattingly, Sage P. Kramer, Cassi M. Binkley, Linyuan Jing, Jonathan D. Suever, David K. Powell, Richard J. Charnigo, Frederick H. Epstein, Brandon K. Fornwalt

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

Background: Obesity is a risk factor for cardiovascular disease. There is evidence of impaired left ventricular (LV) function associated with obesity, which may relate to cardiovascular mortality, but some studies have reported no dysfunction. Ventricular function data are generally acquired under resting conditions, which could mask subtle differences and potentially contribute to these contradictory findings. Furthermore, abnormal ventricular mechanics (strains, strain rates, and torsion) may manifest prior to global changes in cardiac function (i.e., ejection fraction) and may therefore represent more sensitive markers of cardiovascular disease. This study evaluated LV mechanics under both resting and stress conditions with the hypothesis that the LV mechanical dysfunction associated with obesity is exacerbated with stress and manifested at earlier stages of disease compared to baseline. Methods: C57BL/6J mice were randomized to a high-fat or control diet (60 %, 10 % kcal from fat, respectively) for varying time intervals (n = 7 - 10 subjects per group per time point, 100 total; 4 - 55 weeks on diet). LV mechanics were quantified under baseline (resting) and/or stress conditions (40 μg/kg/min continuous infusion of dobutamine) using cine displacement encoding with stimulated echoes (DENSE) with 7.4 ms temporal resolution on a 7 T Bruker ClinScan. Peak strain, systolic strain rates, and torsion were quantified. A linear mixed model was used with Benjamini-Hochberg adjustments for multiple comparisons. Results: Reductions in LV peak longitudinal strain at baseline were first observed in the obese group after 42 weeks, with no differences in systolic strain rates or torsion. Conversely, reductions in longitudinal strain and circumferential and radial strain rates were seen under inotropic stress conditions after only 22 weeks on diet. Furthermore, stress cardiovascular magnetic resonance (CMR) evaluation revealed supranormal values of LV radial strain and torsion in the obese group early on diet, followed by later deficits. Conclusions: Differences in left ventricular mechanics in obese mice are exacerbated under stress conditions. Stress CMR demonstrated a broader array of mechanical dysfunction and revealed these differences at earlier time points. Thus, it may be important to evaluate cardiac function in the setting of obesity under stress conditions to fully elucidate the presence of ventricular dysfunction.

Original languageEnglish
Article number75
JournalJournal of Cardiovascular Magnetic Resonance
Volume17
Issue number1
DOIs
StatePublished - Aug 27 2015

Bibliographical note

Publisher Copyright:
© 2015 Haggerty et al.

Funding

This work was supported by Postdoctoral Fellowships through the Ruth L. Kirschstein National Research Service Award (T32 HL91812 and F32 HL123215), a grant from the National Institute of General Medical Sciences of the NIH (P20 GM103527), the University of Kentucky Cardiovascular Research Center, NIH grant R01 EB001763, and grant number UL1TR000117 from the National Center for Research Resources (NCRR), funded by the Office of the Director, National Institutes of Health (NIH) and supported by the NIH Roadmap for Medical Research, and contributions made by local businesses and individuals through a partnership between Kentucky Children’s Hospital and Children’s Miracle network. The content is solely the responsibility of the authors and does not necessarily represent the official views of the funding sources.

FundersFunder number
Children’s Miracle Network
Kentucky Children’s Hospital
National Center for Research Resources
National Institute of General Medical Sciences
National Institutes of Health (NIH)
National Institutes of Health (NIH)
National Institute of General Medical SciencesP20 GM103527
National Institute of General Medical Sciences
National Institute of Biomedical Imaging and BioengineeringR01EB001763
National Institute of Biomedical Imaging and Bioengineering
National Center for Research Resources
Office of the Director
Saha Cardiovascular Research Center, University of KentuckyUL1TR000117, R01 EB001763
Saha Cardiovascular Research Center, University of Kentucky
Israel National Road Safety AuthorityT32 HL91812, F32 HL123215
Israel National Road Safety Authority

    Keywords

    • Cardiovascular magnetic resonance
    • DENSE
    • Mice
    • Obesity
    • Strain
    • Stress

    ASJC Scopus subject areas

    • Radiological and Ultrasound Technology
    • Radiology Nuclear Medicine and imaging
    • Cardiology and Cardiovascular Medicine
    • Family Practice

    Fingerprint

    Dive into the research topics of 'Left ventricular mechanical dysfunction in diet-induced obese mice is exacerbated during inotropic stress: A cine DENSE cardiovascular magnetic resonance study'. Together they form a unique fingerprint.

    Cite this