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Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin

Cardiac-specific myosin light chain kinase (cMLCK), encoded by MYLK3, regulates cardiac contractility through phosphorylation of ventricular myosin regulatory light chain. However, the pathophysiological and therapeutic implications of cMLCK in human heart failure remain unclear. We aimed to investi...

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Autores principales: Hitsumoto, Tatsuro, Tsukamoto, Osamu, Matsuoka, Ken, Li, Junjun, Liu, Li, Kuramoto, Yuki, Higo, Shuichiro, Ogawa, Shou, Fujino, Noboru, Yoshida, Shohei, Kioka, Hidetaka, Kato, Hisakazu, Hakui, Hideyuki, Saito, Yuki, Okamoto, Chisato, Inoue, Hijiri, Hyejin, Jo, Ueda, Kyoko, Segawa, Takatsugu, Nishimura, Shunsuke, Asano, Yoshihiro, Asanuma, Hiroshi, Tani, Akiyoshi, Imamura, Riyo, Komagawa, Shinsuke, Kanai, Toshio, Takamura, Masayuki, Sakata, Yasushi, Kitakaze, Masafumi, Haruta, Jun-ichi, Takashima, Seiji
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10270284/
https://www.ncbi.nlm.nih.gov/pubmed/37128901
http://dx.doi.org/10.1161/CIRCULATIONAHA.122.062885
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author Hitsumoto, Tatsuro
Tsukamoto, Osamu
Matsuoka, Ken
Li, Junjun
Liu, Li
Kuramoto, Yuki
Higo, Shuichiro
Ogawa, Shou
Fujino, Noboru
Yoshida, Shohei
Kioka, Hidetaka
Kato, Hisakazu
Hakui, Hideyuki
Saito, Yuki
Okamoto, Chisato
Inoue, Hijiri
Hyejin, Jo
Ueda, Kyoko
Segawa, Takatsugu
Nishimura, Shunsuke
Asano, Yoshihiro
Asanuma, Hiroshi
Tani, Akiyoshi
Imamura, Riyo
Komagawa, Shinsuke
Kanai, Toshio
Takamura, Masayuki
Sakata, Yasushi
Kitakaze, Masafumi
Haruta, Jun-ichi
Takashima, Seiji
author_facet Hitsumoto, Tatsuro
Tsukamoto, Osamu
Matsuoka, Ken
Li, Junjun
Liu, Li
Kuramoto, Yuki
Higo, Shuichiro
Ogawa, Shou
Fujino, Noboru
Yoshida, Shohei
Kioka, Hidetaka
Kato, Hisakazu
Hakui, Hideyuki
Saito, Yuki
Okamoto, Chisato
Inoue, Hijiri
Hyejin, Jo
Ueda, Kyoko
Segawa, Takatsugu
Nishimura, Shunsuke
Asano, Yoshihiro
Asanuma, Hiroshi
Tani, Akiyoshi
Imamura, Riyo
Komagawa, Shinsuke
Kanai, Toshio
Takamura, Masayuki
Sakata, Yasushi
Kitakaze, Masafumi
Haruta, Jun-ichi
Takashima, Seiji
author_sort Hitsumoto, Tatsuro
collection PubMed
description Cardiac-specific myosin light chain kinase (cMLCK), encoded by MYLK3, regulates cardiac contractility through phosphorylation of ventricular myosin regulatory light chain. However, the pathophysiological and therapeutic implications of cMLCK in human heart failure remain unclear. We aimed to investigate whether cMLCK dysregulation causes cardiac dysfunction and whether the restoration of cMLCK could be a novel myotropic therapy for systolic heart failure. METHODS: We generated the knock-in mice (Mylk3(+/fs) and Mylk3(fs/fs)) with a familial dilated cardiomyopathy–associated MYLK3 frameshift mutation (MYLK3(+/fs)) that had been identified previously by us (c.1951-1G>T; p.P639Vfs*15) and the human induced pluripotent stem cell–derived cardiomyocytes from the carrier of the mutation. We also developed a new small-molecule activator of cMLCK (LEUO-1154). RESULTS: Both mice (Mylk3(+/fs) and Mylk3(fs/fs)) showed reduced cMLCK expression due to nonsense-mediated messenger RNA decay, reduced MLC2v (ventricular myosin regulatory light chain) phosphorylation in the myocardium, and systolic dysfunction in a cMLCK dose–dependent manner. Consistent with this result, myocardium from the mutant mice showed an increased ratio of cardiac superrelaxation/disordered relaxation states that may contribute to impaired cardiac contractility. The phenotypes observed in the knock-in mice were rescued by cMLCK replenishment through the AAV9_MYLK3 vector. Human induced pluripotent stem cell–derived cardiomyocytes with MYLK3(+/fs) mutation reduced cMLCK expression by 50% and contractile dysfunction, accompanied by an increased superrelaxation/disordered relaxation ratio. CRISPR-mediated gene correction, or cMLCK replenishment by AAV9_MYLK3 vector, successfully recovered cMLCK expression, the superrelaxation/disordered relaxation ratio, and contractile dysfunction. LEUO-1154 increased human cMLCK activity ≈2-fold in the V(max) for ventricular myosin regulatory light chain phosphorylation without affecting the K(m). LEUO-1154 treatment of human induced pluripotent stem cell–derived cardiomyocytes with MYLK3(+/fs) mutation restored the ventricular myosin regulatory light chain phosphorylation level and superrelaxation/disordered relaxation ratio and improved cardiac contractility without affecting calcium transients, indicating that the cMLCK activator acts as a myotrope. Finally, human myocardium from advanced heart failure with a wide variety of causes had a significantly lower MYLK3/PPP1R12B messenger RNA expression ratio than control hearts, suggesting an altered balance between myosin regulatory light chain kinase and phosphatase in the failing myocardium, irrespective of the causes. CONCLUSIONS: cMLCK dysregulation contributes to the development of cardiac systolic dysfunction in humans. Our strategy to restore cMLCK activity could form the basis of a novel myotropic therapy for advanced systolic heart failure.
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spelling pubmed-102702842023-06-16 Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin Hitsumoto, Tatsuro Tsukamoto, Osamu Matsuoka, Ken Li, Junjun Liu, Li Kuramoto, Yuki Higo, Shuichiro Ogawa, Shou Fujino, Noboru Yoshida, Shohei Kioka, Hidetaka Kato, Hisakazu Hakui, Hideyuki Saito, Yuki Okamoto, Chisato Inoue, Hijiri Hyejin, Jo Ueda, Kyoko Segawa, Takatsugu Nishimura, Shunsuke Asano, Yoshihiro Asanuma, Hiroshi Tani, Akiyoshi Imamura, Riyo Komagawa, Shinsuke Kanai, Toshio Takamura, Masayuki Sakata, Yasushi Kitakaze, Masafumi Haruta, Jun-ichi Takashima, Seiji Circulation Original Research Articles Cardiac-specific myosin light chain kinase (cMLCK), encoded by MYLK3, regulates cardiac contractility through phosphorylation of ventricular myosin regulatory light chain. However, the pathophysiological and therapeutic implications of cMLCK in human heart failure remain unclear. We aimed to investigate whether cMLCK dysregulation causes cardiac dysfunction and whether the restoration of cMLCK could be a novel myotropic therapy for systolic heart failure. METHODS: We generated the knock-in mice (Mylk3(+/fs) and Mylk3(fs/fs)) with a familial dilated cardiomyopathy–associated MYLK3 frameshift mutation (MYLK3(+/fs)) that had been identified previously by us (c.1951-1G>T; p.P639Vfs*15) and the human induced pluripotent stem cell–derived cardiomyocytes from the carrier of the mutation. We also developed a new small-molecule activator of cMLCK (LEUO-1154). RESULTS: Both mice (Mylk3(+/fs) and Mylk3(fs/fs)) showed reduced cMLCK expression due to nonsense-mediated messenger RNA decay, reduced MLC2v (ventricular myosin regulatory light chain) phosphorylation in the myocardium, and systolic dysfunction in a cMLCK dose–dependent manner. Consistent with this result, myocardium from the mutant mice showed an increased ratio of cardiac superrelaxation/disordered relaxation states that may contribute to impaired cardiac contractility. The phenotypes observed in the knock-in mice were rescued by cMLCK replenishment through the AAV9_MYLK3 vector. Human induced pluripotent stem cell–derived cardiomyocytes with MYLK3(+/fs) mutation reduced cMLCK expression by 50% and contractile dysfunction, accompanied by an increased superrelaxation/disordered relaxation ratio. CRISPR-mediated gene correction, or cMLCK replenishment by AAV9_MYLK3 vector, successfully recovered cMLCK expression, the superrelaxation/disordered relaxation ratio, and contractile dysfunction. LEUO-1154 increased human cMLCK activity ≈2-fold in the V(max) for ventricular myosin regulatory light chain phosphorylation without affecting the K(m). LEUO-1154 treatment of human induced pluripotent stem cell–derived cardiomyocytes with MYLK3(+/fs) mutation restored the ventricular myosin regulatory light chain phosphorylation level and superrelaxation/disordered relaxation ratio and improved cardiac contractility without affecting calcium transients, indicating that the cMLCK activator acts as a myotrope. Finally, human myocardium from advanced heart failure with a wide variety of causes had a significantly lower MYLK3/PPP1R12B messenger RNA expression ratio than control hearts, suggesting an altered balance between myosin regulatory light chain kinase and phosphatase in the failing myocardium, irrespective of the causes. CONCLUSIONS: cMLCK dysregulation contributes to the development of cardiac systolic dysfunction in humans. Our strategy to restore cMLCK activity could form the basis of a novel myotropic therapy for advanced systolic heart failure. Lippincott Williams & Wilkins 2023-05-02 2023-06-20 /pmc/articles/PMC10270284/ /pubmed/37128901 http://dx.doi.org/10.1161/CIRCULATIONAHA.122.062885 Text en © 2023 The Authors. https://creativecommons.org/licenses/by-nc-nd/4.0/Circulation 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-NoDerivs (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use, distribution, and reproduction in any medium, provided that the original work is properly cited, the use is noncommercial, and no modifications or adaptations are made.
spellingShingle Original Research Articles
Hitsumoto, Tatsuro
Tsukamoto, Osamu
Matsuoka, Ken
Li, Junjun
Liu, Li
Kuramoto, Yuki
Higo, Shuichiro
Ogawa, Shou
Fujino, Noboru
Yoshida, Shohei
Kioka, Hidetaka
Kato, Hisakazu
Hakui, Hideyuki
Saito, Yuki
Okamoto, Chisato
Inoue, Hijiri
Hyejin, Jo
Ueda, Kyoko
Segawa, Takatsugu
Nishimura, Shunsuke
Asano, Yoshihiro
Asanuma, Hiroshi
Tani, Akiyoshi
Imamura, Riyo
Komagawa, Shinsuke
Kanai, Toshio
Takamura, Masayuki
Sakata, Yasushi
Kitakaze, Masafumi
Haruta, Jun-ichi
Takashima, Seiji
Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title_full Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title_fullStr Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title_full_unstemmed Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title_short Restoration of Cardiac Myosin Light Chain Kinase Ameliorates Systolic Dysfunction by Reducing Superrelaxed Myosin
title_sort restoration of cardiac myosin light chain kinase ameliorates systolic dysfunction by reducing superrelaxed myosin
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10270284/
https://www.ncbi.nlm.nih.gov/pubmed/37128901
http://dx.doi.org/10.1161/CIRCULATIONAHA.122.062885
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