Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State
Maria Cristina Carena
1
,
Ileana Badi
1
,
Murray Polkinghorne
1
,
Ioannis Akoumianakis
1
,
Costas Psarros
1
,
Elizabeth Wahome
1
,
Christos P Kotanidis
1
,
Nadia Akawi
1, 2
,
Alexios Antonopoulos
1
,
Jagat Chauhan
1
,
Rana Sayeed
3
,
George Krasopoulos
3
,
Vivek Srivastava
3
,
Shakil Farid
3
,
Nicholas Walcot
3
,
Gillian Douglas
1
,
Keith M. Channon
1, 4
,
Barbara Casadei
1
,
Charalambos Gustav Antoniades
1, 4
Publication type: Journal Article
Publication date: 2023-07-17
scimago Q1
wos Q1
SJR: 9.015
CiteScore: 35.1
Impact factor: 22.3
ISSN: 07351097, 15583597
PubMed ID:
37468187
Cardiology and Cardiovascular Medicine
Abstract
Visceral obesity is directly linked to increased cardiovascular risk, including heart failure. This study explored the ability of human epicardial adipose tissue (EAT)-derived microRNAs (miRNAs) to regulate the myocardial redox state and clinical outcomes. This study screened for miRNAs expressed and released from human EAT and tested for correlations with the redox state in the adjacent myocardium in paired EAT/atrial biopsy specimens from patients undergoing cardiac surgery. Three miRNAs were then tested for causality in an in vitro model of cardiomyocytes. At a clinical level, causality/directionality were tested using genome-wide association screening, and the underlying mechanisms were explored using human biopsy specimens, as well as overexpression of the candidate miRNAs and their targets in vitro and in vivo using a transgenic mouse model. The final prognostic value of the discovered targets was tested in patients undergoing cardiac surgery, followed up for a median of 8 years. EAT miR-92a-3p was related to lower oxidative stress in human myocardium, a finding confirmed by using genetic regulators of miR-92a-3p in the human heart and EAT. miR-92a-3p reduced nicotinamide adenine dinucleotide phosphate (NADPH)-oxidase–derived superoxide (O2.–) by targeting myocardial expression of WNT5A, which regulated Rac1-dependent activation of NADPH oxidases. Finally, high miR-92a-3p levels in EAT were independently related with lower risk of adverse cardiovascular events. EAT-derived miRNAs exert paracrine effects on the human heart. Indeed miR-92a-3p suppresses the wingless-type MMTV integration site family, member 5a/Rac1/NADPH oxidase axis and improves the myocardial redox state. EAT-derived miR-92a-3p is related to improved clinical outcomes and is a rational therapeutic target for the prevention and treatment of obesity-related heart disease.
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Total citations:
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Citations from 2024:
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(90%)
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GOST
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Carena M. C. et al. Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State // Journal of the American College of Cardiology. 2023. Vol. 82. No. 4. pp. 317-332.
GOST all authors (up to 50)
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Carena M. C., Badi I., Polkinghorne M., Akoumianakis I., Psarros C., Wahome E., Kotanidis C. P., Akawi N., Antonopoulos A., Chauhan J., Sayeed R., Krasopoulos G., Srivastava V., Farid S., Walcot N., Douglas G., Channon K. M., Casadei B., Antoniades C. G. Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State // Journal of the American College of Cardiology. 2023. Vol. 82. No. 4. pp. 317-332.
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RIS
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TY - JOUR
DO - 10.1016/j.jacc.2023.05.031
UR - https://doi.org/10.1016/j.jacc.2023.05.031
TI - Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State
T2 - Journal of the American College of Cardiology
AU - Carena, Maria Cristina
AU - Badi, Ileana
AU - Polkinghorne, Murray
AU - Akoumianakis, Ioannis
AU - Psarros, Costas
AU - Wahome, Elizabeth
AU - Kotanidis, Christos P
AU - Akawi, Nadia
AU - Antonopoulos, Alexios
AU - Chauhan, Jagat
AU - Sayeed, Rana
AU - Krasopoulos, George
AU - Srivastava, Vivek
AU - Farid, Shakil
AU - Walcot, Nicholas
AU - Douglas, Gillian
AU - Channon, Keith M.
AU - Casadei, Barbara
AU - Antoniades, Charalambos Gustav
PY - 2023
DA - 2023/07/17
PB - Elsevier
SP - 317-332
IS - 4
VL - 82
PMID - 37468187
SN - 0735-1097
SN - 1558-3597
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2023_Carena,
author = {Maria Cristina Carena and Ileana Badi and Murray Polkinghorne and Ioannis Akoumianakis and Costas Psarros and Elizabeth Wahome and Christos P Kotanidis and Nadia Akawi and Alexios Antonopoulos and Jagat Chauhan and Rana Sayeed and George Krasopoulos and Vivek Srivastava and Shakil Farid and Nicholas Walcot and Gillian Douglas and Keith M. Channon and Barbara Casadei and Charalambos Gustav Antoniades},
title = {Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State},
journal = {Journal of the American College of Cardiology},
year = {2023},
volume = {82},
publisher = {Elsevier},
month = {jul},
url = {https://doi.org/10.1016/j.jacc.2023.05.031},
number = {4},
pages = {317--332},
doi = {10.1016/j.jacc.2023.05.031}
}
Cite this
MLA
Copy
Carena, Maria Cristina, et al. “Role of Human Epicardial Adipose Tissue–Derived miR-92a-3p in Myocardial Redox State.” Journal of the American College of Cardiology, vol. 82, no. 4, Jul. 2023, pp. 317-332. https://doi.org/10.1016/j.jacc.2023.05.031.