Isolated cardiac muscle contracting against a real-time model of systemic and pulmonary cardiovascular loads

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dc.contributor.author Garrett, Amy S
dc.contributor.author Dowrick, Jarrah
dc.contributor.author Taberner, Andrew J
dc.contributor.author Han, June-Chiew
dc.coverage.spatial United States
dc.date.accessioned 2023-12-05T20:29:56Z
dc.date.available 2023-12-05T20:29:56Z
dc.date.issued 2023-11
dc.identifier.citation (2023). American Journal of Physiology: Heart and Circulatory Physiology, 325(5), H1223-H1234.
dc.identifier.issn 0363-6135
dc.identifier.uri https://hdl.handle.net/2292/66731
dc.description.abstract Isolated cardiac tissues allow a direct assessment of cardiac muscle function and enable precise control of experimental loading conditions. However, current experimental methods do not expose isolated tissues to the same contraction pattern and cardiovascular loads naturally experienced by the heart. In this study, we implement a computational model of systemic-pulmonary impedance that is solved in real time and imposed on contracting isolated rat muscle tissues. This systemic-pulmonary model represents the cardiovascular system as a lumped-parameter, closed-loop circuit. The tissues performed force-length work-loop contractions where the model output informed both the shortening and restretch phases of each work-loop. We compared the muscle mechanics and energetics associated with work-loops driven by the systemic-pulmonary model with that of a model-based loading method that only accounts for shortening. We obtained results that show simultaneous changes of afterload and preload or end-diastolic length of the muscle, as compared with the static, user-defined preload as in the conventional loading method. This feature allows assessment of muscle work output, heat output, and efficiency of contraction as functions of end-diastolic length. The results reveal the behavior of cardiac muscle as a pump source to achieve load-dependent work and efficiency outputs over a wider range of loads. This study offers potential applications of the model to investigate cardiac muscle response to hemodynamic coupling between systemic and pulmonary circulations in an in vitro setting.<b>NEW & NOTEWORTHY</b> We present the use of a "closed-loop" model of systemic and pulmonary circulations to apply, for the first time, real-time model-calculated preload and afterload to isolated cardiac muscle preparations. This method extends current experimental protocols where only afterload has been considered. The extension to include preload provides the opportunity to investigate ventricular muscle response to hemodynamic coupling and as a pump source across a wider range of cardiovascular loads.
dc.format.medium Print-Electronic
dc.language eng
dc.publisher American Physiological Society
dc.relation.ispartofseries American journal of physiology. Heart and circulatory physiology
dc.rights Items in ResearchSpace are protected by copyright, with all rights reserved, unless otherwise indicated. Previously published items are made available in accordance with the copyright policy of the publisher.
dc.rights.uri https://researchspace.auckland.ac.nz/docs/uoa-docs/rights.htm
dc.rights.uri https://creativecommons.org/licenses/by/4.0/
dc.subject Myocardium
dc.subject Heart
dc.subject Heart Ventricles
dc.subject Animals
dc.subject Rats
dc.subject Myocardial Contraction
dc.subject Hemodynamics
dc.subject Hot Temperature
dc.subject cardiovascular
dc.subject diastole
dc.subject energetics
dc.subject trabeculae
dc.subject work-loop
dc.subject 3208 Medical Physiology
dc.subject 32 Biomedical and Clinical Sciences
dc.subject Heart Disease
dc.subject Bioengineering
dc.subject Science & Technology
dc.subject Life Sciences & Biomedicine
dc.subject Cardiac & Cardiovascular Systems
dc.subject Physiology
dc.subject Peripheral Vascular Disease
dc.subject Cardiovascular System & Cardiology
dc.subject SYSTOLIC PRESSURE-VOLUME
dc.subject SEX-DIFFERENCES
dc.subject VENTRICULAR INTERACTION
dc.subject TRANSIENTS
dc.subject STATE
dc.subject RATIO
dc.subject 0606 Physiology
dc.subject 1116 Medical Physiology
dc.subject 3201 Cardiovascular medicine and haematology
dc.title Isolated cardiac muscle contracting against a real-time model of systemic and pulmonary cardiovascular loads
dc.type Journal Article
dc.identifier.doi 10.1152/ajpheart.00272.2023
pubs.issue 5
pubs.begin-page H1223
pubs.volume 325
dc.date.updated 2023-11-19T21:18:25Z
dc.rights.holder Copyright: The authors en
dc.identifier.pmid 37712924 (pubmed)
pubs.author-url https://journals.physiology.org/doi/full/10.1152/ajpheart.00272.2023
pubs.end-page H1234
pubs.publication-status Published
dc.rights.accessrights http://purl.org/eprint/accessRights/OpenAccess en
pubs.subtype Research Support, Non-U.S. Gov't
pubs.subtype Journal Article
pubs.elements-id 985029
pubs.org-id Bioengineering Institute
pubs.org-id ABI Associates
dc.identifier.eissn 1522-1539
pubs.record-created-at-source-date 2023-11-20
pubs.online-publication-date 2023-09-15


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