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Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload

Autophagy is important for protein and organelle quality control. Growing evidence demonstrates that autophagy is tightly controlled by transcriptional mechanisms, including repression by zinc finger containing KRAB and SCAN domains 3 (ZKSCAN3). We hypothesize that cardiomyocyte‐specific ZKSCAN3 kno...

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Autores principales: Ouyang, Xiaosen, Bakshi, Sayan, Benavides, Gloria A., Sun, Zhihuan, Hernandez‐Moreno, Gerardo, Collins, Helen E., Kane, Mariame S., Litovsky, Silvio, Young, Martin E., Chatham, John C., Darley‐Usmar, Victor, Wende, Adam R., Zhang, Jianhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161215/
https://www.ncbi.nlm.nih.gov/pubmed/37144628
http://dx.doi.org/10.14814/phy2.15686
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author Ouyang, Xiaosen
Bakshi, Sayan
Benavides, Gloria A.
Sun, Zhihuan
Hernandez‐Moreno, Gerardo
Collins, Helen E.
Kane, Mariame S.
Litovsky, Silvio
Young, Martin E.
Chatham, John C.
Darley‐Usmar, Victor
Wende, Adam R.
Zhang, Jianhua
author_facet Ouyang, Xiaosen
Bakshi, Sayan
Benavides, Gloria A.
Sun, Zhihuan
Hernandez‐Moreno, Gerardo
Collins, Helen E.
Kane, Mariame S.
Litovsky, Silvio
Young, Martin E.
Chatham, John C.
Darley‐Usmar, Victor
Wende, Adam R.
Zhang, Jianhua
author_sort Ouyang, Xiaosen
collection PubMed
description Autophagy is important for protein and organelle quality control. Growing evidence demonstrates that autophagy is tightly controlled by transcriptional mechanisms, including repression by zinc finger containing KRAB and SCAN domains 3 (ZKSCAN3). We hypothesize that cardiomyocyte‐specific ZKSCAN3 knockout (Z3K) disrupts autophagy activation and repression balance and exacerbates cardiac pressure‐overload‐induced remodeling following transverse aortic constriction (TAC). Indeed, Z3K mice had an enhanced mortality compared to control (Con) mice following TAC. Z3K‐TAC mice that survived exhibited a lower body weight compared to Z3K‐Sham. Although both Con and Z3K mice exhibited cardiac hypertrophy after TAC, Z3K mice exhibited TAC‐induced increase of left ventricular posterior wall thickness at end diastole (LVPWd). Conversely, Con‐TAC mice exhibited decreases in PWT%, fractional shortening (FS%), and ejection fraction (EF%). Autophagy genes (Tfeb, Lc3b, and Ctsd) were decreased by the loss of ZKSCAN3. TAC suppressed Zkscan3, Tfeb, Lc3b, and Ctsd in Con mice, but not in Z3K. The Myh6/Myh7 ratio, which is related to cardiac remodeling, was decreased by the loss of ZKSCAN3. Although Ppargc1a mRNA and citrate synthase activities were decreased by TAC in both genotypes, mitochondrial electron transport chain activity did not change. Bi‐variant analyses show that while in Con‐Sham, the levels of autophagy and cardiac remodeling mRNAs form a strong correlation network, such was disrupted in Con‐TAC, Z3K‐Sham, and Z3K‐TAC. Ppargc1a also forms different links in Con‐sham, Con‐TAC, Z3K‐Sham, and Z3K‐TAC. We conclude that ZKSCAN3 in cardiomyocytes reprograms autophagy and cardiac remodeling gene transcription, and their relationships with mitochondrial activities in response to TAC‐induced pressure overload.
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spelling pubmed-101612152023-05-06 Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload Ouyang, Xiaosen Bakshi, Sayan Benavides, Gloria A. Sun, Zhihuan Hernandez‐Moreno, Gerardo Collins, Helen E. Kane, Mariame S. Litovsky, Silvio Young, Martin E. Chatham, John C. Darley‐Usmar, Victor Wende, Adam R. Zhang, Jianhua Physiol Rep Original Articles Autophagy is important for protein and organelle quality control. Growing evidence demonstrates that autophagy is tightly controlled by transcriptional mechanisms, including repression by zinc finger containing KRAB and SCAN domains 3 (ZKSCAN3). We hypothesize that cardiomyocyte‐specific ZKSCAN3 knockout (Z3K) disrupts autophagy activation and repression balance and exacerbates cardiac pressure‐overload‐induced remodeling following transverse aortic constriction (TAC). Indeed, Z3K mice had an enhanced mortality compared to control (Con) mice following TAC. Z3K‐TAC mice that survived exhibited a lower body weight compared to Z3K‐Sham. Although both Con and Z3K mice exhibited cardiac hypertrophy after TAC, Z3K mice exhibited TAC‐induced increase of left ventricular posterior wall thickness at end diastole (LVPWd). Conversely, Con‐TAC mice exhibited decreases in PWT%, fractional shortening (FS%), and ejection fraction (EF%). Autophagy genes (Tfeb, Lc3b, and Ctsd) were decreased by the loss of ZKSCAN3. TAC suppressed Zkscan3, Tfeb, Lc3b, and Ctsd in Con mice, but not in Z3K. The Myh6/Myh7 ratio, which is related to cardiac remodeling, was decreased by the loss of ZKSCAN3. Although Ppargc1a mRNA and citrate synthase activities were decreased by TAC in both genotypes, mitochondrial electron transport chain activity did not change. Bi‐variant analyses show that while in Con‐Sham, the levels of autophagy and cardiac remodeling mRNAs form a strong correlation network, such was disrupted in Con‐TAC, Z3K‐Sham, and Z3K‐TAC. Ppargc1a also forms different links in Con‐sham, Con‐TAC, Z3K‐Sham, and Z3K‐TAC. We conclude that ZKSCAN3 in cardiomyocytes reprograms autophagy and cardiac remodeling gene transcription, and their relationships with mitochondrial activities in response to TAC‐induced pressure overload. John Wiley and Sons Inc. 2023-05-05 /pmc/articles/PMC10161215/ /pubmed/37144628 http://dx.doi.org/10.14814/phy2.15686 Text en © 2023 The Authors. Physiological Reports published by Wiley Periodicals LLC on behalf of The Physiological Society and the American Physiological Society. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Ouyang, Xiaosen
Bakshi, Sayan
Benavides, Gloria A.
Sun, Zhihuan
Hernandez‐Moreno, Gerardo
Collins, Helen E.
Kane, Mariame S.
Litovsky, Silvio
Young, Martin E.
Chatham, John C.
Darley‐Usmar, Victor
Wende, Adam R.
Zhang, Jianhua
Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title_full Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title_fullStr Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title_full_unstemmed Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title_short Cardiomyocyte ZKSCAN3 regulates remodeling following pressure‐overload
title_sort cardiomyocyte zkscan3 regulates remodeling following pressure‐overload
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10161215/
https://www.ncbi.nlm.nih.gov/pubmed/37144628
http://dx.doi.org/10.14814/phy2.15686
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