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Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments

TNNI3 encoding cTnI, the inhibitory subunit of the troponin complex, is the main target for mutations leading to restrictive cardiomyopathy (RCM). Here we investigate two cTnI-R170G/W amino acid replacements, identified in infantile RCM patients, which are located in the regulatory C-terminus of cTn...

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Autores principales: Cimiotti, Diana, Fujita-Becker, Setsuko, Möhner, Desirée, Smolina, Natalia, Budde, Heidi, Wies, Aline, Morgenstern, Lisa, Gudkova, Alexandra, Sejersen, Thomas, Sjöberg, Gunnar, Mügge, Andreas, Nowaczyk, Marc M., Reusch, Peter, Pfitzer, Gabriele, Stehle, Robert, Schröder, Rasmus R., Mannherz, Hans G., Kostareva, Anna, Jaquet, Kornelia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077804/
https://www.ncbi.nlm.nih.gov/pubmed/32182250
http://dx.doi.org/10.1371/journal.pone.0229227
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author Cimiotti, Diana
Fujita-Becker, Setsuko
Möhner, Desirée
Smolina, Natalia
Budde, Heidi
Wies, Aline
Morgenstern, Lisa
Gudkova, Alexandra
Sejersen, Thomas
Sjöberg, Gunnar
Mügge, Andreas
Nowaczyk, Marc M.
Reusch, Peter
Pfitzer, Gabriele
Stehle, Robert
Schröder, Rasmus R.
Mannherz, Hans G.
Kostareva, Anna
Jaquet, Kornelia
author_facet Cimiotti, Diana
Fujita-Becker, Setsuko
Möhner, Desirée
Smolina, Natalia
Budde, Heidi
Wies, Aline
Morgenstern, Lisa
Gudkova, Alexandra
Sejersen, Thomas
Sjöberg, Gunnar
Mügge, Andreas
Nowaczyk, Marc M.
Reusch, Peter
Pfitzer, Gabriele
Stehle, Robert
Schröder, Rasmus R.
Mannherz, Hans G.
Kostareva, Anna
Jaquet, Kornelia
author_sort Cimiotti, Diana
collection PubMed
description TNNI3 encoding cTnI, the inhibitory subunit of the troponin complex, is the main target for mutations leading to restrictive cardiomyopathy (RCM). Here we investigate two cTnI-R170G/W amino acid replacements, identified in infantile RCM patients, which are located in the regulatory C-terminus of cTnI. The C-terminus is thought to modulate the function of the inhibitory region of cTnI. Both cTnI-R170G/W strongly enhanced the Ca(2+)-sensitivity of skinned fibres, as is typical for RCM-mutations. Both mutants strongly enhanced the affinity of troponin (cTn) to tropomyosin compared to wildtype cTn, whereas binding to actin was either strengthened (R170G) or weakened (R170W). Furthermore, the stability of reconstituted thin filaments was reduced as revealed by electron microscopy. Filaments containing R170G/W appeared wavy and showed breaks. Decoration of filaments with myosin subfragment S1 was normal in the presence of R170W, but was irregular with R170G. Surprisingly, both mutants did not affect the Ca(2+)-dependent activation of reconstituted cardiac thin filaments. In the presence of the N-terminal fragment of cardiac myosin binding protein C (cMyBPC-C0C2) cooperativity of thin filament activation was increased only when the filaments contained wildtype cTn. No effect was observed in the presence of cTn containing R170G/W. cMyBPC-C0C2 significantly reduced binding of wildtype troponin to actin/tropomyosin, but not of both mutant cTn. Moreover, we found a direct troponin/cMyBPC-C0C2 interaction using microscale thermophoresis and identified cTnI and cTnT, but not cTnC as binding partners for cMyBPC-C0C2. Only cTn containing cTnI-R170G showed a reduced affinity towards cMyBPC-C0C2. Our results suggest that the RCM cTnI variants R170G/W impair the communication between thin and thick filament proteins and destabilize thin filaments.
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spelling pubmed-70778042020-03-23 Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments Cimiotti, Diana Fujita-Becker, Setsuko Möhner, Desirée Smolina, Natalia Budde, Heidi Wies, Aline Morgenstern, Lisa Gudkova, Alexandra Sejersen, Thomas Sjöberg, Gunnar Mügge, Andreas Nowaczyk, Marc M. Reusch, Peter Pfitzer, Gabriele Stehle, Robert Schröder, Rasmus R. Mannherz, Hans G. Kostareva, Anna Jaquet, Kornelia PLoS One Research Article TNNI3 encoding cTnI, the inhibitory subunit of the troponin complex, is the main target for mutations leading to restrictive cardiomyopathy (RCM). Here we investigate two cTnI-R170G/W amino acid replacements, identified in infantile RCM patients, which are located in the regulatory C-terminus of cTnI. The C-terminus is thought to modulate the function of the inhibitory region of cTnI. Both cTnI-R170G/W strongly enhanced the Ca(2+)-sensitivity of skinned fibres, as is typical for RCM-mutations. Both mutants strongly enhanced the affinity of troponin (cTn) to tropomyosin compared to wildtype cTn, whereas binding to actin was either strengthened (R170G) or weakened (R170W). Furthermore, the stability of reconstituted thin filaments was reduced as revealed by electron microscopy. Filaments containing R170G/W appeared wavy and showed breaks. Decoration of filaments with myosin subfragment S1 was normal in the presence of R170W, but was irregular with R170G. Surprisingly, both mutants did not affect the Ca(2+)-dependent activation of reconstituted cardiac thin filaments. In the presence of the N-terminal fragment of cardiac myosin binding protein C (cMyBPC-C0C2) cooperativity of thin filament activation was increased only when the filaments contained wildtype cTn. No effect was observed in the presence of cTn containing R170G/W. cMyBPC-C0C2 significantly reduced binding of wildtype troponin to actin/tropomyosin, but not of both mutant cTn. Moreover, we found a direct troponin/cMyBPC-C0C2 interaction using microscale thermophoresis and identified cTnI and cTnT, but not cTnC as binding partners for cMyBPC-C0C2. Only cTn containing cTnI-R170G showed a reduced affinity towards cMyBPC-C0C2. Our results suggest that the RCM cTnI variants R170G/W impair the communication between thin and thick filament proteins and destabilize thin filaments. Public Library of Science 2020-03-17 /pmc/articles/PMC7077804/ /pubmed/32182250 http://dx.doi.org/10.1371/journal.pone.0229227 Text en © 2020 Cimiotti et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Cimiotti, Diana
Fujita-Becker, Setsuko
Möhner, Desirée
Smolina, Natalia
Budde, Heidi
Wies, Aline
Morgenstern, Lisa
Gudkova, Alexandra
Sejersen, Thomas
Sjöberg, Gunnar
Mügge, Andreas
Nowaczyk, Marc M.
Reusch, Peter
Pfitzer, Gabriele
Stehle, Robert
Schröder, Rasmus R.
Mannherz, Hans G.
Kostareva, Anna
Jaquet, Kornelia
Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title_full Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title_fullStr Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title_full_unstemmed Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title_short Infantile restrictive cardiomyopathy: cTnI-R170G/W impair the interplay of sarcomeric proteins and the integrity of thin filaments
title_sort infantile restrictive cardiomyopathy: ctni-r170g/w impair the interplay of sarcomeric proteins and the integrity of thin filaments
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7077804/
https://www.ncbi.nlm.nih.gov/pubmed/32182250
http://dx.doi.org/10.1371/journal.pone.0229227
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