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End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium

Titin functions as a molecular spring, and cardiomyocytes are able, through splicing, to control the length of titin. We hypothesized that together with diastolic [Ca(2+)], titin‐based stretch pre‐activates cardiomyocytes during diastole and is a major determinant of force production in the subseque...

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Autores principales: Najafi, Aref, van de Locht, Martijn, Schuldt, Maike, Schönleitner, Patrick, van Willigenburg, Menne, Bollen, Ilse, Goebel, Max, Ottenheijm, Coen A. C., van der Velden, Jolanda, Helmes, Michiel, Kuster, Diederik W. D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6852589/
https://www.ncbi.nlm.nih.gov/pubmed/31314138
http://dx.doi.org/10.1113/JP277985
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author Najafi, Aref
van de Locht, Martijn
Schuldt, Maike
Schönleitner, Patrick
van Willigenburg, Menne
Bollen, Ilse
Goebel, Max
Ottenheijm, Coen A. C.
van der Velden, Jolanda
Helmes, Michiel
Kuster, Diederik W. D.
author_facet Najafi, Aref
van de Locht, Martijn
Schuldt, Maike
Schönleitner, Patrick
van Willigenburg, Menne
Bollen, Ilse
Goebel, Max
Ottenheijm, Coen A. C.
van der Velden, Jolanda
Helmes, Michiel
Kuster, Diederik W. D.
author_sort Najafi, Aref
collection PubMed
description Titin functions as a molecular spring, and cardiomyocytes are able, through splicing, to control the length of titin. We hypothesized that together with diastolic [Ca(2+)], titin‐based stretch pre‐activates cardiomyocytes during diastole and is a major determinant of force production in the subsequent contraction. Through this mechanism titin would play an important role in active force development and length‐dependent activation. Mutations in the splicing factor RNA binding motif protein 20 (RBM20) result in expression of large, highly compliant titin isoforms. We measured single cardiomyocyte work loops that mimic the cardiac cycle in wild‐type (WT) and heterozygous (HET) RBM20‐deficient rats. In addition, we studied the role of diastolic [Ca(2+)] in membrane‐permeabilized WT and HET cardiomyocytes. Intact cardiomyocytes isolated from HET left ventricles were unable to produce normal levels of work (55% of WT) at low pacing frequencies, but this difference disappeared at high pacing frequencies. Length‐dependent activation (force–sarcomere length relationship) was blunted in HET cardiomyocytes, but the force–end‐diastolic force relationship was not different between HET and WT cardiomyocytes. To delineate the effects of diastolic [Ca(2+)] and titin pre‐activation on force generation, measurements were performed in detergent‐permeabilized cardiomyocytes. Cardiac twitches were simulated by transiently exposing permeabilized cardiomyocytes to 2 µm Ca(2+). Increasing diastolic [Ca(2+)] from 1 to 80 nm increased force development twofold in WT. Higher diastolic [Ca(2+)] was needed in HET. These findings are consistent with our hypothesis that pre‐activation increases active force development. Highly compliant titin allows cells to function at higher diastolic [Ca(2+)].
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spelling pubmed-68525892019-11-21 End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium Najafi, Aref van de Locht, Martijn Schuldt, Maike Schönleitner, Patrick van Willigenburg, Menne Bollen, Ilse Goebel, Max Ottenheijm, Coen A. C. van der Velden, Jolanda Helmes, Michiel Kuster, Diederik W. D. J Physiol Cardiovascular Titin functions as a molecular spring, and cardiomyocytes are able, through splicing, to control the length of titin. We hypothesized that together with diastolic [Ca(2+)], titin‐based stretch pre‐activates cardiomyocytes during diastole and is a major determinant of force production in the subsequent contraction. Through this mechanism titin would play an important role in active force development and length‐dependent activation. Mutations in the splicing factor RNA binding motif protein 20 (RBM20) result in expression of large, highly compliant titin isoforms. We measured single cardiomyocyte work loops that mimic the cardiac cycle in wild‐type (WT) and heterozygous (HET) RBM20‐deficient rats. In addition, we studied the role of diastolic [Ca(2+)] in membrane‐permeabilized WT and HET cardiomyocytes. Intact cardiomyocytes isolated from HET left ventricles were unable to produce normal levels of work (55% of WT) at low pacing frequencies, but this difference disappeared at high pacing frequencies. Length‐dependent activation (force–sarcomere length relationship) was blunted in HET cardiomyocytes, but the force–end‐diastolic force relationship was not different between HET and WT cardiomyocytes. To delineate the effects of diastolic [Ca(2+)] and titin pre‐activation on force generation, measurements were performed in detergent‐permeabilized cardiomyocytes. Cardiac twitches were simulated by transiently exposing permeabilized cardiomyocytes to 2 µm Ca(2+). Increasing diastolic [Ca(2+)] from 1 to 80 nm increased force development twofold in WT. Higher diastolic [Ca(2+)] was needed in HET. These findings are consistent with our hypothesis that pre‐activation increases active force development. Highly compliant titin allows cells to function at higher diastolic [Ca(2+)]. John Wiley and Sons Inc. 2019-07-30 2019-09-01 /pmc/articles/PMC6852589/ /pubmed/31314138 http://dx.doi.org/10.1113/JP277985 Text en © 2019 The Authors. The Journal of Physiology published by John Wiley & Sons Ltd on behalf of The Physiological Society This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Cardiovascular
Najafi, Aref
van de Locht, Martijn
Schuldt, Maike
Schönleitner, Patrick
van Willigenburg, Menne
Bollen, Ilse
Goebel, Max
Ottenheijm, Coen A. C.
van der Velden, Jolanda
Helmes, Michiel
Kuster, Diederik W. D.
End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title_full End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title_fullStr End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title_full_unstemmed End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title_short End‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
title_sort end‐diastolic force pre‐activates cardiomyocytes and determines contractile force: role of titin and calcium
topic Cardiovascular
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6852589/
https://www.ncbi.nlm.nih.gov/pubmed/31314138
http://dx.doi.org/10.1113/JP277985
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