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Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte

Increasing cardiomyocyte contraction during myocardial stretch serves as the basis for the Frank-Starling mechanism in the heart. However, it remains unclear how this phenomenon occurs regionally within cardiomyocytes, at the level of individual sarcomeres. We investigated sarcomere contractile sync...

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Autores principales: Li, Jia, Sundnes, Joakim, Hou, Yufeng, Laasmaa, Martin, Ruud, Marianne, Unger, Andreas, Kolstad, Terje R., Frisk, Michael, Norseng, Per Andreas, Yang, Limin, Setterberg, Ingunn E., Alves, Estela S., Kalakoutis, Michaeljohn, Sejersted, Ole M., Lanner, Johanna T., Linke, Wolfgang A., Lunde, Ida G., de Tombe, Pieter P., Louch, William E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10355805/
https://www.ncbi.nlm.nih.gov/pubmed/37401464
http://dx.doi.org/10.1161/CIRCRESAHA.123.322588
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author Li, Jia
Sundnes, Joakim
Hou, Yufeng
Laasmaa, Martin
Ruud, Marianne
Unger, Andreas
Kolstad, Terje R.
Frisk, Michael
Norseng, Per Andreas
Yang, Limin
Setterberg, Ingunn E.
Alves, Estela S.
Kalakoutis, Michaeljohn
Sejersted, Ole M.
Lanner, Johanna T.
Linke, Wolfgang A.
Lunde, Ida G.
de Tombe, Pieter P.
Louch, William E.
author_facet Li, Jia
Sundnes, Joakim
Hou, Yufeng
Laasmaa, Martin
Ruud, Marianne
Unger, Andreas
Kolstad, Terje R.
Frisk, Michael
Norseng, Per Andreas
Yang, Limin
Setterberg, Ingunn E.
Alves, Estela S.
Kalakoutis, Michaeljohn
Sejersted, Ole M.
Lanner, Johanna T.
Linke, Wolfgang A.
Lunde, Ida G.
de Tombe, Pieter P.
Louch, William E.
author_sort Li, Jia
collection PubMed
description Increasing cardiomyocyte contraction during myocardial stretch serves as the basis for the Frank-Starling mechanism in the heart. However, it remains unclear how this phenomenon occurs regionally within cardiomyocytes, at the level of individual sarcomeres. We investigated sarcomere contractile synchrony and how intersarcomere dynamics contribute to increasing contractility during cell lengthening. METHODS: Sarcomere strain and Ca(2+) were simultaneously recorded in isolated left ventricular cardiomyocytes during 1 Hz field stimulation at 37 °C, at resting length and following stepwise stretch. RESULTS: We observed that in unstretched rat cardiomyocytes, differential sarcomere deformation occurred during each beat. Specifically, while most sarcomeres shortened during the stimulus, ≈10% to 20% of sarcomeres were stretched or remained stationary. This nonuniform strain was not traced to regional Ca(2+) disparities but rather shorter resting lengths and lower force production in systolically stretched sarcomeres. Lengthening of the cell recruited additional shortening sarcomeres, which increased contractile efficiency as less negative, wasted work was performed by stretched sarcomeres. Given the known role of titin in setting sarcomere dimensions, we next hypothesized that modulating titin expression would alter intersarcomere dynamics. Indeed, in cardiomyocytes from mice with titin haploinsufficiency, we observed greater variability in resting sarcomere length, lower recruitment of shortening sarcomeres, and impaired work performance during cell lengthening. CONCLUSIONS: Graded sarcomere recruitment directs cardiomyocyte work performance, and harmonization of sarcomere strain increases contractility during cell stretch. By setting sarcomere dimensions, titin controls sarcomere recruitment, and its lowered expression in haploinsufficiency mutations impairs cardiomyocyte contractility.
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spelling pubmed-103558052023-07-20 Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte Li, Jia Sundnes, Joakim Hou, Yufeng Laasmaa, Martin Ruud, Marianne Unger, Andreas Kolstad, Terje R. Frisk, Michael Norseng, Per Andreas Yang, Limin Setterberg, Ingunn E. Alves, Estela S. Kalakoutis, Michaeljohn Sejersted, Ole M. Lanner, Johanna T. Linke, Wolfgang A. Lunde, Ida G. de Tombe, Pieter P. Louch, William E. Circ Res Original Research Increasing cardiomyocyte contraction during myocardial stretch serves as the basis for the Frank-Starling mechanism in the heart. However, it remains unclear how this phenomenon occurs regionally within cardiomyocytes, at the level of individual sarcomeres. We investigated sarcomere contractile synchrony and how intersarcomere dynamics contribute to increasing contractility during cell lengthening. METHODS: Sarcomere strain and Ca(2+) were simultaneously recorded in isolated left ventricular cardiomyocytes during 1 Hz field stimulation at 37 °C, at resting length and following stepwise stretch. RESULTS: We observed that in unstretched rat cardiomyocytes, differential sarcomere deformation occurred during each beat. Specifically, while most sarcomeres shortened during the stimulus, ≈10% to 20% of sarcomeres were stretched or remained stationary. This nonuniform strain was not traced to regional Ca(2+) disparities but rather shorter resting lengths and lower force production in systolically stretched sarcomeres. Lengthening of the cell recruited additional shortening sarcomeres, which increased contractile efficiency as less negative, wasted work was performed by stretched sarcomeres. Given the known role of titin in setting sarcomere dimensions, we next hypothesized that modulating titin expression would alter intersarcomere dynamics. Indeed, in cardiomyocytes from mice with titin haploinsufficiency, we observed greater variability in resting sarcomere length, lower recruitment of shortening sarcomeres, and impaired work performance during cell lengthening. CONCLUSIONS: Graded sarcomere recruitment directs cardiomyocyte work performance, and harmonization of sarcomere strain increases contractility during cell stretch. By setting sarcomere dimensions, titin controls sarcomere recruitment, and its lowered expression in haploinsufficiency mutations impairs cardiomyocyte contractility. Lippincott Williams & Wilkins 2023-07-04 2023-07-21 /pmc/articles/PMC10355805/ /pubmed/37401464 http://dx.doi.org/10.1161/CIRCRESAHA.123.322588 Text en © 2023 The Authors. https://creativecommons.org/licenses/by-nc/4.0/Circulation Research is published on behalf of the American Heart Association, Inc., by Wolters Kluwer Health, Inc. This is an open access article under the terms of the Creative Commons Attribution Non-Commercial (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Li, Jia
Sundnes, Joakim
Hou, Yufeng
Laasmaa, Martin
Ruud, Marianne
Unger, Andreas
Kolstad, Terje R.
Frisk, Michael
Norseng, Per Andreas
Yang, Limin
Setterberg, Ingunn E.
Alves, Estela S.
Kalakoutis, Michaeljohn
Sejersted, Ole M.
Lanner, Johanna T.
Linke, Wolfgang A.
Lunde, Ida G.
de Tombe, Pieter P.
Louch, William E.
Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title_full Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title_fullStr Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title_full_unstemmed Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title_short Stretch Harmonizes Sarcomere Strain Across the Cardiomyocyte
title_sort stretch harmonizes sarcomere strain across the cardiomyocyte
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10355805/
https://www.ncbi.nlm.nih.gov/pubmed/37401464
http://dx.doi.org/10.1161/CIRCRESAHA.123.322588
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