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Cardiomyocyte Functional Etiology in Heart Failure With Preserved Ejection Fraction Is Distinctive-A New Preclinical Model.
Curl, Claire L; Danes, Vennetia R; Bell, James R; Raaijmakers, Antonia J A; Ip, Wendy T K; Chandramouli, Chanchal; Harding, Tristan W; Porrello, Enzo R; Erickson, Jeffrey R; Charchar, Fadi J; Kompa, Andrew R; Edgley, Amanda J; Crossman, David J; Soeller, Christian; Mellor, Kimberley M; Kalman, Jonathan M; Harrap, Stephen B; Delbridge, Lea M D.
Affiliation
  • Curl CL; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Danes VR; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Bell JR; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Raaijmakers AJA; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Ip WTK; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Chandramouli C; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Harding TW; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Porrello ER; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Erickson JR; Murdoch Children's Research Institute, Melbourne, Australia.
  • Charchar FJ; Department of Physiology, University of Otago, Dunedin, New Zealand.
  • Kompa AR; School of Applied & Biomedical Sciences, Federation University, Ballarat, Australia.
  • Edgley AJ; Department of Medicine, St. Vincent's Hospital The University of Melbourne, Australia.
  • Crossman DJ; Department of Medicine, St. Vincent's Hospital The University of Melbourne, Australia.
  • Soeller C; Department of Physiology, University of Auckland, New Zealand.
  • Mellor KM; Biomedical Physics, University of Exeter, United Kingdom.
  • Kalman JM; Department of Physiology, University of Melbourne, Victoria, Australia.
  • Harrap SB; Department of Medicine, University of Melbourne, Victoria, Australia.
  • Delbridge LMD; Department of Physiology, University of Melbourne, Victoria, Australia.
J Am Heart Assoc ; 7(11)2018 06 01.
Article in En | MEDLINE | ID: mdl-29858360
ABSTRACT

BACKGROUND:

Among the growing numbers of patients with heart failure, up to one half have heart failure with preserved ejection fraction (HFpEF). The lack of effective treatments for HFpEF is a substantial and escalating unmet clinical need-and the lack of HFpEF-specific animal models represents a major preclinical barrier in advancing understanding of HFpEF. As established treatments for heart failure with reduced ejection fraction (HFrEF) have proven ineffective for HFpEF, the contention that the intrinsic cardiomyocyte phenotype is distinct in these 2 conditions requires consideration. Our goal was to validate and characterize a new rodent model of HFpEF, undertaking longitudinal investigations to delineate the associated cardiac and cardiomyocyte pathophysiology. METHODS AND

RESULTS:

The selectively inbred Hypertrophic Heart Rat (HHR) strain exhibits adult cardiac enlargement (without hypertension) and premature death (40% mortality at 50 weeks) compared to its control strain, the normal heart rat. Hypertrophy was characterized in vivo by maintained systolic parameters (ejection fraction at 85%-90% control) with marked diastolic dysfunction (increased E/E'). Surprisingly, HHR cardiomyocytes were hypercontractile, exhibiting high Ca2+ operational levels and markedly increased L-type Ca2+ channel current. In HHR, prominent regions of reparative fibrosis in the left ventricle free wall adjacent to the interventricular septum were observed.

CONCLUSIONS:

Thus, the cardiomyocyte remodeling process in the etiology of this HFpEF model contrasts dramatically with the suppressed Ca2+ cycling state that typifies heart failure with reduced ejection fraction. These findings may explain clinical observations, that treatments considered appropriate for heart failure with reduced ejection fraction are of little benefit for HFpEF-and suggest a basis for new therapeutic strategies.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Stroke Volume / Calcium / Myocytes, Cardiac / Heart Failure / Heart Ventricles / Myocardial Contraction Type of study: Diagnostic_studies / Etiology_studies / Prognostic_studies Limits: Animals Language: En Journal: J Am Heart Assoc Year: 2018 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Stroke Volume / Calcium / Myocytes, Cardiac / Heart Failure / Heart Ventricles / Myocardial Contraction Type of study: Diagnostic_studies / Etiology_studies / Prognostic_studies Limits: Animals Language: En Journal: J Am Heart Assoc Year: 2018 Document type: Article Affiliation country: