Cargando…

Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox

The nuclear receptor Rev-erbα/β, a key component of the circadian clock, emerges as a drug target for heart diseases, but the function of cardiac Rev-erb has not been studied in vivo. Circadian disruption is implicated in heart diseases, but it is unknown whether cardiac molecular clock dysfunction...

Descripción completa

Detalles Bibliográficos
Autores principales: Song, Shiyang, Tien, Chih-Liang, Cui, Hao, Basil, Paul, Zhu, Ningxia, Gong, Yingyun, Li, Wenbo, Li, Hui, Fan, Qiying, Min Choi, Jong, Luo, Weijia, Xue, Yanfeng, Cao, Rui, Zhou, Wenjun, Ortiz, Andrea R., Stork, Brittany, Mundra, Vatsala, Putluri, Nagireddy, York, Brian, Chu, Maoping, Chang, Jiang, Yun Jung, Sung, Xie, Liang, Song, Jiangping, Zhang, Lilei, Sun, Zheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8812427/
https://www.ncbi.nlm.nih.gov/pubmed/35034472
http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056076
_version_ 1784644648341340160
author Song, Shiyang
Tien, Chih-Liang
Cui, Hao
Basil, Paul
Zhu, Ningxia
Gong, Yingyun
Li, Wenbo
Li, Hui
Fan, Qiying
Min Choi, Jong
Luo, Weijia
Xue, Yanfeng
Cao, Rui
Zhou, Wenjun
Ortiz, Andrea R.
Stork, Brittany
Mundra, Vatsala
Putluri, Nagireddy
York, Brian
Chu, Maoping
Chang, Jiang
Yun Jung, Sung
Xie, Liang
Song, Jiangping
Zhang, Lilei
Sun, Zheng
author_facet Song, Shiyang
Tien, Chih-Liang
Cui, Hao
Basil, Paul
Zhu, Ningxia
Gong, Yingyun
Li, Wenbo
Li, Hui
Fan, Qiying
Min Choi, Jong
Luo, Weijia
Xue, Yanfeng
Cao, Rui
Zhou, Wenjun
Ortiz, Andrea R.
Stork, Brittany
Mundra, Vatsala
Putluri, Nagireddy
York, Brian
Chu, Maoping
Chang, Jiang
Yun Jung, Sung
Xie, Liang
Song, Jiangping
Zhang, Lilei
Sun, Zheng
author_sort Song, Shiyang
collection PubMed
description The nuclear receptor Rev-erbα/β, a key component of the circadian clock, emerges as a drug target for heart diseases, but the function of cardiac Rev-erb has not been studied in vivo. Circadian disruption is implicated in heart diseases, but it is unknown whether cardiac molecular clock dysfunction is associated with the progression of any naturally occurring human heart diseases. Obesity paradox refers to the seemingly protective role of obesity for heart failure, but the mechanism is unclear. METHODS: We generated mouse lines with cardiac-specific Rev-erbα/β knockout (KO), characterized cardiac phenotype, conducted multi-omics (RNA-sequencing, chromatin immunoprecipitation sequencing, proteomics, and metabolomics) analyses, and performed dietary and pharmacological rescue experiments to assess the time-of-the-day effects. We compared the temporal pattern of cardiac clock gene expression with the cardiac dilation severity in failing human hearts. RESULTS: KO mice display progressive dilated cardiomyopathy and lethal heart failure. Inducible ablation of Rev-erbα/β in adult hearts causes similar phenotypes. Impaired fatty acid oxidation in the KO myocardium, in particular, in the light cycle, precedes contractile dysfunctions with a reciprocal overreliance on carbohydrate utilization, in particular, in the dark cycle. Increasing dietary lipid or sugar supply in the dark cycle does not affect cardiac dysfunctions in KO mice. However, obesity coupled with systemic insulin resistance paradoxically ameliorates cardiac dysfunctions in KO mice, associated with rescued expression of lipid oxidation genes only in the light cycle in phase with increased fatty acid availability from adipose lipolysis. Inhibition of glycolysis in the light cycle and lipid oxidation in the dark cycle, but not vice versa, ameliorate cardiac dysfunctions in KO mice. Altered temporal patterns of cardiac Rev-erb gene expression correlate with the cardiac dilation severity in human hearts with dilated cardiomyopathy. CONCLUSIONS: The study delineates temporal coordination between clock-mediated anticipation and nutrient-induced response in myocardial metabolism at multi-omics levels. The obesity paradox is attributable to increased cardiac lipid supply from adipose lipolysis in the fasting cycle due to systemic insulin resistance and adiposity. Cardiac molecular chronotypes may be involved in human dilated cardiomyopathy. Myocardial bioenergetics downstream of Rev-erb may be a chronotherapy target in treating heart failure and dilated cardiomyopathy.
format Online
Article
Text
id pubmed-8812427
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Lippincott Williams & Wilkins
record_format MEDLINE/PubMed
spelling pubmed-88124272022-02-09 Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox Song, Shiyang Tien, Chih-Liang Cui, Hao Basil, Paul Zhu, Ningxia Gong, Yingyun Li, Wenbo Li, Hui Fan, Qiying Min Choi, Jong Luo, Weijia Xue, Yanfeng Cao, Rui Zhou, Wenjun Ortiz, Andrea R. Stork, Brittany Mundra, Vatsala Putluri, Nagireddy York, Brian Chu, Maoping Chang, Jiang Yun Jung, Sung Xie, Liang Song, Jiangping Zhang, Lilei Sun, Zheng Circulation Original Research Articles The nuclear receptor Rev-erbα/β, a key component of the circadian clock, emerges as a drug target for heart diseases, but the function of cardiac Rev-erb has not been studied in vivo. Circadian disruption is implicated in heart diseases, but it is unknown whether cardiac molecular clock dysfunction is associated with the progression of any naturally occurring human heart diseases. Obesity paradox refers to the seemingly protective role of obesity for heart failure, but the mechanism is unclear. METHODS: We generated mouse lines with cardiac-specific Rev-erbα/β knockout (KO), characterized cardiac phenotype, conducted multi-omics (RNA-sequencing, chromatin immunoprecipitation sequencing, proteomics, and metabolomics) analyses, and performed dietary and pharmacological rescue experiments to assess the time-of-the-day effects. We compared the temporal pattern of cardiac clock gene expression with the cardiac dilation severity in failing human hearts. RESULTS: KO mice display progressive dilated cardiomyopathy and lethal heart failure. Inducible ablation of Rev-erbα/β in adult hearts causes similar phenotypes. Impaired fatty acid oxidation in the KO myocardium, in particular, in the light cycle, precedes contractile dysfunctions with a reciprocal overreliance on carbohydrate utilization, in particular, in the dark cycle. Increasing dietary lipid or sugar supply in the dark cycle does not affect cardiac dysfunctions in KO mice. However, obesity coupled with systemic insulin resistance paradoxically ameliorates cardiac dysfunctions in KO mice, associated with rescued expression of lipid oxidation genes only in the light cycle in phase with increased fatty acid availability from adipose lipolysis. Inhibition of glycolysis in the light cycle and lipid oxidation in the dark cycle, but not vice versa, ameliorate cardiac dysfunctions in KO mice. Altered temporal patterns of cardiac Rev-erb gene expression correlate with the cardiac dilation severity in human hearts with dilated cardiomyopathy. CONCLUSIONS: The study delineates temporal coordination between clock-mediated anticipation and nutrient-induced response in myocardial metabolism at multi-omics levels. The obesity paradox is attributable to increased cardiac lipid supply from adipose lipolysis in the fasting cycle due to systemic insulin resistance and adiposity. Cardiac molecular chronotypes may be involved in human dilated cardiomyopathy. Myocardial bioenergetics downstream of Rev-erb may be a chronotherapy target in treating heart failure and dilated cardiomyopathy. Lippincott Williams & Wilkins 2022-01-17 2022-02-08 /pmc/articles/PMC8812427/ /pubmed/35034472 http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056076 Text en © 2022 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
Song, Shiyang
Tien, Chih-Liang
Cui, Hao
Basil, Paul
Zhu, Ningxia
Gong, Yingyun
Li, Wenbo
Li, Hui
Fan, Qiying
Min Choi, Jong
Luo, Weijia
Xue, Yanfeng
Cao, Rui
Zhou, Wenjun
Ortiz, Andrea R.
Stork, Brittany
Mundra, Vatsala
Putluri, Nagireddy
York, Brian
Chu, Maoping
Chang, Jiang
Yun Jung, Sung
Xie, Liang
Song, Jiangping
Zhang, Lilei
Sun, Zheng
Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title_full Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title_fullStr Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title_full_unstemmed Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title_short Myocardial Rev-erb–Mediated Diurnal Metabolic Rhythm and Obesity Paradox
title_sort myocardial rev-erb–mediated diurnal metabolic rhythm and obesity paradox
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8812427/
https://www.ncbi.nlm.nih.gov/pubmed/35034472
http://dx.doi.org/10.1161/CIRCULATIONAHA.121.056076
work_keys_str_mv AT songshiyang myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT tienchihliang myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT cuihao myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT basilpaul myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT zhuningxia myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT gongyingyun myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT liwenbo myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT lihui myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT fanqiying myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT minchoijong myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT luoweijia myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT xueyanfeng myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT caorui myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT zhouwenjun myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT ortizandrear myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT storkbrittany myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT mundravatsala myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT putlurinagireddy myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT yorkbrian myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT chumaoping myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT changjiang myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT yunjungsung myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT xieliang myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT songjiangping myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT zhanglilei myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox
AT sunzheng myocardialreverbmediateddiurnalmetabolicrhythmandobesityparadox