Cargando…

RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats

Background. Qishen granules (QSG) are a frequently prescribed formula with cardioprotective properties prescribed to HF for many years. RNA-seq profiling revealed that regulation on cardiac mitochondrial energy metabolism is the main therapeutic effect. However, the underlying mechanism is still unk...

Descripción completa

Detalles Bibliográficos
Autores principales: He, Hao, Li, Changxiang, Lu, Xiangyu, Li, Yanqin, Li, Xuan, Sun, Xiaoqian, Tang, Binghua, Wu, Yan, Li, Chun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8741342/
https://www.ncbi.nlm.nih.gov/pubmed/35003305
http://dx.doi.org/10.1155/2021/5779307
_version_ 1784629467074789376
author He, Hao
Li, Changxiang
Lu, Xiangyu
Li, Yanqin
Li, Xuan
Sun, Xiaoqian
Tang, Binghua
Wu, Yan
Li, Chun
author_facet He, Hao
Li, Changxiang
Lu, Xiangyu
Li, Yanqin
Li, Xuan
Sun, Xiaoqian
Tang, Binghua
Wu, Yan
Li, Chun
author_sort He, Hao
collection PubMed
description Background. Qishen granules (QSG) are a frequently prescribed formula with cardioprotective properties prescribed to HF for many years. RNA-seq profiling revealed that regulation on cardiac mitochondrial energy metabolism is the main therapeutic effect. However, the underlying mechanism is still unknown. In this study, we explored the effects of QSG on regulating mitochondrial energy metabolism and oxidative stress through the PGC-1α/NRF1/TFAM signaling pathway. RNA-seq technology revealed that QSG significantly changed the differential gene expression of mitochondrial dysfunction in myocardial ischemic tissue. The mechanism was verified through the left anterior descending artery- (LAD-) induced HF rat model and oxygen glucose deprivation/recovery- (OGD/R-) established H9C2 induction model both in vivo and in vitro. Echocardiography and HE staining showed that QSG could effectively improve the cardiac function of rats with myocardial infarction in functionality and structure. Furthermore, transcriptomics revealed QSG could significantly regulate mitochondrial dysfunction-related proteins at the transcriptome level. The results of electron microscopy and immunofluorescence proved that the mitochondrial morphology, mitochondrial membrane structural integrity, and myocardial oxidative stress damage can be effectively improved after QSG treatment. Mechanism studies showed that QSG increased the expression level of mitochondrial biogenesis factor PGC-1α/NRF1/TFAM protein and regulated the balance of mitochondrial fusion/fission protein expression. QSG could regulate mitochondrial dysfunction in ischemia heart tissue to protect cardiac function and structure in HF rats. The likely mechanism is the adjustment of PGC-1α/NRF1/TFAM pathway to alleviate oxidative stress in myocardial cells. Therefore, PGC-1α may be a potential therapeutic target for improving mitochondrial dysfunction in HF.
format Online
Article
Text
id pubmed-8741342
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-87413422022-01-08 RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats He, Hao Li, Changxiang Lu, Xiangyu Li, Yanqin Li, Xuan Sun, Xiaoqian Tang, Binghua Wu, Yan Li, Chun Evid Based Complement Alternat Med Research Article Background. Qishen granules (QSG) are a frequently prescribed formula with cardioprotective properties prescribed to HF for many years. RNA-seq profiling revealed that regulation on cardiac mitochondrial energy metabolism is the main therapeutic effect. However, the underlying mechanism is still unknown. In this study, we explored the effects of QSG on regulating mitochondrial energy metabolism and oxidative stress through the PGC-1α/NRF1/TFAM signaling pathway. RNA-seq technology revealed that QSG significantly changed the differential gene expression of mitochondrial dysfunction in myocardial ischemic tissue. The mechanism was verified through the left anterior descending artery- (LAD-) induced HF rat model and oxygen glucose deprivation/recovery- (OGD/R-) established H9C2 induction model both in vivo and in vitro. Echocardiography and HE staining showed that QSG could effectively improve the cardiac function of rats with myocardial infarction in functionality and structure. Furthermore, transcriptomics revealed QSG could significantly regulate mitochondrial dysfunction-related proteins at the transcriptome level. The results of electron microscopy and immunofluorescence proved that the mitochondrial morphology, mitochondrial membrane structural integrity, and myocardial oxidative stress damage can be effectively improved after QSG treatment. Mechanism studies showed that QSG increased the expression level of mitochondrial biogenesis factor PGC-1α/NRF1/TFAM protein and regulated the balance of mitochondrial fusion/fission protein expression. QSG could regulate mitochondrial dysfunction in ischemia heart tissue to protect cardiac function and structure in HF rats. The likely mechanism is the adjustment of PGC-1α/NRF1/TFAM pathway to alleviate oxidative stress in myocardial cells. Therefore, PGC-1α may be a potential therapeutic target for improving mitochondrial dysfunction in HF. Hindawi 2021-12-31 /pmc/articles/PMC8741342/ /pubmed/35003305 http://dx.doi.org/10.1155/2021/5779307 Text en Copyright © 2021 Hao He et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
He, Hao
Li, Changxiang
Lu, Xiangyu
Li, Yanqin
Li, Xuan
Sun, Xiaoqian
Tang, Binghua
Wu, Yan
Li, Chun
RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title_full RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title_fullStr RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title_full_unstemmed RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title_short RNA-Seq Profiling to Investigate the Mechanism of Qishen Granules on Regulating Mitochondrial Energy Metabolism of Heart Failure in Rats
title_sort rna-seq profiling to investigate the mechanism of qishen granules on regulating mitochondrial energy metabolism of heart failure in rats
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8741342/
https://www.ncbi.nlm.nih.gov/pubmed/35003305
http://dx.doi.org/10.1155/2021/5779307
work_keys_str_mv AT hehao rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT lichangxiang rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT luxiangyu rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT liyanqin rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT lixuan rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT sunxiaoqian rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT tangbinghua rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT wuyan rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats
AT lichun rnaseqprofilingtoinvestigatethemechanismofqishengranulesonregulatingmitochondrialenergymetabolismofheartfailureinrats