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Novel Animal Model for Ventricular Ejection Fraction Measured by MRI

Received: 18 August 2021    Accepted: 30 August 2021    Published: 11 September 2021
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Abstract

Aim: The objective of this study is to evaluate an animal model, herein called the Tunac Arterial Plaque (TAP) mouse as a model for reduced left ventricle ejection fraction (LVEF). Traditional mouse models involve genetically modified or surgically altered animals, whereas the TAP model is a wild mouse (C57Bl/6 strain) fed with a high fat diet and treated with an environmental chemical pollutant 3,3',4,4'-Tetrachlorobiphenyl (PCB) to mimic human lifestyle. Thus, the LVEF volume of treated and untreated mice will be measured per MRI, as well as an assessment for the presence of arterial plaque. Methods and results: Ten-week-old male C57/Bl6 mice were fed with either normal or high fat diet, acclimated for 1 week and then PCB was administered by gavage. Magnetic resonance imaging (MRI) was performed using a 7-Tesla Varian magnet. Briefly, the heart was aligned to the proper orientation, then an intragate scan was carried out for a CINE presentation (motion sensitive MRI in which a series of static images are obtained at various stages of the cardiac cycle and then played back as a movie). A black blood method was used that caused the blood to appear darker than the adjacent tissue and a CINE sequence to sort images, from which another program a (Medviso Segment) calculated percent ejection fraction (EF), heart rate (HR) and respiratory rate (RR). For the aorta and carotid artery imaging, cross-sectional images of the aortic arch were obtained, which produced multiple contrast weightings. Mice fed with normal diet showed normal ejection fraction volume (75.1%). The high fat diet alone without PCB also effectively reduced EF% (67.7%), and the lowest reduction in EF were for mice fed with high fat and PCB (57.2%). In the high fat-PCB-treated group, there was a gradual reduction in % EF starting at 2 weeks with 65.2% EF and 52.5% at the 8-wk time point. MRI scan of the aortal arch showed plaques in mice fed with high fat diet and PCB treatment. Conclusions: First to demonstrate LVEF per cine MRI in a wild non-surgical or non-genetically modified mouse model. Plaque formation in aortal arch was confirmed by MRI.

Published in Cardiology and Cardiovascular Research (Volume 5, Issue 3)
DOI 10.11648/j.ccr.20210503.13
Page(s) 141-146
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Cardiac, Heart Failure, MRI, Ejection Fraction, Plaque, Mice

References
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  • APA Style

    Josefino Tunac, Frederick Valeriote, Joseph Media, Robert Knight. (2021). Novel Animal Model for Ventricular Ejection Fraction Measured by MRI. Cardiology and Cardiovascular Research, 5(3), 141-146. https://doi.org/10.11648/j.ccr.20210503.13

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    ACS Style

    Josefino Tunac; Frederick Valeriote; Joseph Media; Robert Knight. Novel Animal Model for Ventricular Ejection Fraction Measured by MRI. Cardiol. Cardiovasc. Res. 2021, 5(3), 141-146. doi: 10.11648/j.ccr.20210503.13

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    AMA Style

    Josefino Tunac, Frederick Valeriote, Joseph Media, Robert Knight. Novel Animal Model for Ventricular Ejection Fraction Measured by MRI. Cardiol Cardiovasc Res. 2021;5(3):141-146. doi: 10.11648/j.ccr.20210503.13

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  • @article{10.11648/j.ccr.20210503.13,
      author = {Josefino Tunac and Frederick Valeriote and Joseph Media and Robert Knight},
      title = {Novel Animal Model for Ventricular Ejection Fraction Measured by MRI},
      journal = {Cardiology and Cardiovascular Research},
      volume = {5},
      number = {3},
      pages = {141-146},
      doi = {10.11648/j.ccr.20210503.13},
      url = {https://doi.org/10.11648/j.ccr.20210503.13},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ccr.20210503.13},
      abstract = {Aim: The objective of this study is to evaluate an animal model, herein called the Tunac Arterial Plaque (TAP) mouse as a model for reduced left ventricle ejection fraction (LVEF). Traditional mouse models involve genetically modified or surgically altered animals, whereas the TAP model is a wild mouse (C57Bl/6 strain) fed with a high fat diet and treated with an environmental chemical pollutant 3,3',4,4'-Tetrachlorobiphenyl (PCB) to mimic human lifestyle. Thus, the LVEF volume of treated and untreated mice will be measured per MRI, as well as an assessment for the presence of arterial plaque. Methods and results: Ten-week-old male C57/Bl6 mice were fed with either normal or high fat diet, acclimated for 1 week and then PCB was administered by gavage. Magnetic resonance imaging (MRI) was performed using a 7-Tesla Varian magnet. Briefly, the heart was aligned to the proper orientation, then an intragate scan was carried out for a CINE presentation (motion sensitive MRI in which a series of static images are obtained at various stages of the cardiac cycle and then played back as a movie). A black blood method was used that caused the blood to appear darker than the adjacent tissue and a CINE sequence to sort images, from which another program a (Medviso Segment) calculated percent ejection fraction (EF), heart rate (HR) and respiratory rate (RR). For the aorta and carotid artery imaging, cross-sectional images of the aortic arch were obtained, which produced multiple contrast weightings. Mice fed with normal diet showed normal ejection fraction volume (75.1%). The high fat diet alone without PCB also effectively reduced EF% (67.7%), and the lowest reduction in EF were for mice fed with high fat and PCB (57.2%). In the high fat-PCB-treated group, there was a gradual reduction in % EF starting at 2 weeks with 65.2% EF and 52.5% at the 8-wk time point. MRI scan of the aortal arch showed plaques in mice fed with high fat diet and PCB treatment. Conclusions: First to demonstrate LVEF per cine MRI in a wild non-surgical or non-genetically modified mouse model. Plaque formation in aortal arch was confirmed by MRI.},
     year = {2021}
    }
    

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  • TY  - JOUR
    T1  - Novel Animal Model for Ventricular Ejection Fraction Measured by MRI
    AU  - Josefino Tunac
    AU  - Frederick Valeriote
    AU  - Joseph Media
    AU  - Robert Knight
    Y1  - 2021/09/11
    PY  - 2021
    N1  - https://doi.org/10.11648/j.ccr.20210503.13
    DO  - 10.11648/j.ccr.20210503.13
    T2  - Cardiology and Cardiovascular Research
    JF  - Cardiology and Cardiovascular Research
    JO  - Cardiology and Cardiovascular Research
    SP  - 141
    EP  - 146
    PB  - Science Publishing Group
    SN  - 2578-8914
    UR  - https://doi.org/10.11648/j.ccr.20210503.13
    AB  - Aim: The objective of this study is to evaluate an animal model, herein called the Tunac Arterial Plaque (TAP) mouse as a model for reduced left ventricle ejection fraction (LVEF). Traditional mouse models involve genetically modified or surgically altered animals, whereas the TAP model is a wild mouse (C57Bl/6 strain) fed with a high fat diet and treated with an environmental chemical pollutant 3,3',4,4'-Tetrachlorobiphenyl (PCB) to mimic human lifestyle. Thus, the LVEF volume of treated and untreated mice will be measured per MRI, as well as an assessment for the presence of arterial plaque. Methods and results: Ten-week-old male C57/Bl6 mice were fed with either normal or high fat diet, acclimated for 1 week and then PCB was administered by gavage. Magnetic resonance imaging (MRI) was performed using a 7-Tesla Varian magnet. Briefly, the heart was aligned to the proper orientation, then an intragate scan was carried out for a CINE presentation (motion sensitive MRI in which a series of static images are obtained at various stages of the cardiac cycle and then played back as a movie). A black blood method was used that caused the blood to appear darker than the adjacent tissue and a CINE sequence to sort images, from which another program a (Medviso Segment) calculated percent ejection fraction (EF), heart rate (HR) and respiratory rate (RR). For the aorta and carotid artery imaging, cross-sectional images of the aortic arch were obtained, which produced multiple contrast weightings. Mice fed with normal diet showed normal ejection fraction volume (75.1%). The high fat diet alone without PCB also effectively reduced EF% (67.7%), and the lowest reduction in EF were for mice fed with high fat and PCB (57.2%). In the high fat-PCB-treated group, there was a gradual reduction in % EF starting at 2 weeks with 65.2% EF and 52.5% at the 8-wk time point. MRI scan of the aortal arch showed plaques in mice fed with high fat diet and PCB treatment. Conclusions: First to demonstrate LVEF per cine MRI in a wild non-surgical or non-genetically modified mouse model. Plaque formation in aortal arch was confirmed by MRI.
    VL  - 5
    IS  - 3
    ER  - 

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Author Information
  • Arterez, Inc, White Lake, United States

  • Departermet of Hematology-Oncology Research, Henry Ford Health System, Detroit, United States

  • Departermet of Hematology-Oncology Research, Henry Ford Health System, Detroit, United States

  • Departerment of Neurology-NMR Research, Henry Ford Hospital, Detroit, United States

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