Cargando…

Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts

BACKGROUND: The phase-space relationship between simultaneously measured myoplasmic [Ca(2+)] and isovolumetric left ventricular pressure (LVP) in guinea pig intact hearts is altered by ischemic and inotropic interventions. Our objective was to mathematically model this phase-space relationship betwe...

Descripción completa

Detalles Bibliográficos
Autores principales: Rhodes, Samhita S, Camara, Amadou KS, Ropella, Kristina M, Audi, Said H, Riess, Matthias L, Pagel, Paul S, Stowe, David F
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1431537/
https://www.ncbi.nlm.nih.gov/pubmed/16512898
http://dx.doi.org/10.1186/1475-925X-5-16
_version_ 1782127197010526208
author Rhodes, Samhita S
Camara, Amadou KS
Ropella, Kristina M
Audi, Said H
Riess, Matthias L
Pagel, Paul S
Stowe, David F
author_facet Rhodes, Samhita S
Camara, Amadou KS
Ropella, Kristina M
Audi, Said H
Riess, Matthias L
Pagel, Paul S
Stowe, David F
author_sort Rhodes, Samhita S
collection PubMed
description BACKGROUND: The phase-space relationship between simultaneously measured myoplasmic [Ca(2+)] and isovolumetric left ventricular pressure (LVP) in guinea pig intact hearts is altered by ischemic and inotropic interventions. Our objective was to mathematically model this phase-space relationship between [Ca(2+)] and LVP with a focus on the changes in cross-bridge kinetics and myofilament Ca(2+ )sensitivity responsible for alterations in Ca(2+)-contraction coupling due to inotropic drugs in the presence and absence of ischemia reperfusion (IR) injury. METHODS: We used a four state computational model to predict LVP using experimentally measured, averaged myoplasmic [Ca(2+)] transients from unpaced, isolated guinea pig hearts as the model input. Values of model parameters were estimated by minimizing the error between experimentally measured LVP and model-predicted LVP. RESULTS: We found that IR injury resulted in reduced myofilament Ca(2+ )sensitivity, and decreased cross-bridge association and dissociation rates. Dopamine (8 μM) reduced myofilament Ca(2+ )sensitivity before, but enhanced it after ischemia while improving cross-bridge kinetics before and after IR injury. Dobutamine (4 μM) reduced myofilament Ca(2+ )sensitivity while improving cross-bridge kinetics before and after ischemia. Digoxin (1 μM) increased myofilament Ca(2+ )sensitivity and cross-bridge kinetics after but not before ischemia. Levosimendan (1 μM) enhanced myofilament Ca(2+ )affinity and cross-bridge kinetics only after ischemia. CONCLUSION: Estimated model parameters reveal mechanistic changes in Ca(2+)-contraction coupling due to IR injury, specifically the inefficient utilization of Ca(2+ )for contractile function with diastolic contracture (increase in resting diastolic LVP). The model parameters also reveal drug-induced improvements in Ca(2+)-contraction coupling before and after IR injury.
format Text
id pubmed-1431537
institution National Center for Biotechnology Information
language English
publishDate 2006
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-14315372006-04-06 Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts Rhodes, Samhita S Camara, Amadou KS Ropella, Kristina M Audi, Said H Riess, Matthias L Pagel, Paul S Stowe, David F Biomed Eng Online Research BACKGROUND: The phase-space relationship between simultaneously measured myoplasmic [Ca(2+)] and isovolumetric left ventricular pressure (LVP) in guinea pig intact hearts is altered by ischemic and inotropic interventions. Our objective was to mathematically model this phase-space relationship between [Ca(2+)] and LVP with a focus on the changes in cross-bridge kinetics and myofilament Ca(2+ )sensitivity responsible for alterations in Ca(2+)-contraction coupling due to inotropic drugs in the presence and absence of ischemia reperfusion (IR) injury. METHODS: We used a four state computational model to predict LVP using experimentally measured, averaged myoplasmic [Ca(2+)] transients from unpaced, isolated guinea pig hearts as the model input. Values of model parameters were estimated by minimizing the error between experimentally measured LVP and model-predicted LVP. RESULTS: We found that IR injury resulted in reduced myofilament Ca(2+ )sensitivity, and decreased cross-bridge association and dissociation rates. Dopamine (8 μM) reduced myofilament Ca(2+ )sensitivity before, but enhanced it after ischemia while improving cross-bridge kinetics before and after IR injury. Dobutamine (4 μM) reduced myofilament Ca(2+ )sensitivity while improving cross-bridge kinetics before and after ischemia. Digoxin (1 μM) increased myofilament Ca(2+ )sensitivity and cross-bridge kinetics after but not before ischemia. Levosimendan (1 μM) enhanced myofilament Ca(2+ )affinity and cross-bridge kinetics only after ischemia. CONCLUSION: Estimated model parameters reveal mechanistic changes in Ca(2+)-contraction coupling due to IR injury, specifically the inefficient utilization of Ca(2+ )for contractile function with diastolic contracture (increase in resting diastolic LVP). The model parameters also reveal drug-induced improvements in Ca(2+)-contraction coupling before and after IR injury. BioMed Central 2006-03-02 /pmc/articles/PMC1431537/ /pubmed/16512898 http://dx.doi.org/10.1186/1475-925X-5-16 Text en Copyright © 2006 Rhodes et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Rhodes, Samhita S
Camara, Amadou KS
Ropella, Kristina M
Audi, Said H
Riess, Matthias L
Pagel, Paul S
Stowe, David F
Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title_full Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title_fullStr Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title_full_unstemmed Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title_short Ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
title_sort ischemia reperfusion dysfunction changes model-estimated kinetics of myofilament interaction due to inotropic drugs in isolated hearts
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1431537/
https://www.ncbi.nlm.nih.gov/pubmed/16512898
http://dx.doi.org/10.1186/1475-925X-5-16
work_keys_str_mv AT rhodessamhitas ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT camaraamadouks ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT ropellakristinam ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT audisaidh ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT riessmatthiasl ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT pagelpauls ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts
AT stowedavidf ischemiareperfusiondysfunctionchangesmodelestimatedkineticsofmyofilamentinteractionduetoinotropicdrugsinisolatedhearts