Cargando…
The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1
Sirtuin 1 (SIRT1) enzyme plays a pivotal role in the regulation of many physiological functions. In particular, it is implicated in ageing-related diseases, such as cardiac hypertrophy, myocardial infarct, and endothelial dysfunction; moreover, its expression decreases with age. Therefore, an effect...
Autores principales: | , , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Hindawi
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7003265/ https://www.ncbi.nlm.nih.gov/pubmed/32047577 http://dx.doi.org/10.1155/2020/4650207 |
_version_ | 1783494502128812032 |
---|---|
author | Testai, Lara Piragine, Eugenia Piano, Ilaria Flori, Lorenzo Da Pozzo, Eleonora Miragliotta, Vincenzo Pirone, Andrea Citi, Valentina Di Cesare Mannelli, Lorenzo Brogi, Simone Carpi, Sara Martelli, Alma Nieri, Paola Martini, Claudia Ghelardini, Carla Gargini, Claudia Calderone, Vincenzo |
author_facet | Testai, Lara Piragine, Eugenia Piano, Ilaria Flori, Lorenzo Da Pozzo, Eleonora Miragliotta, Vincenzo Pirone, Andrea Citi, Valentina Di Cesare Mannelli, Lorenzo Brogi, Simone Carpi, Sara Martelli, Alma Nieri, Paola Martini, Claudia Ghelardini, Carla Gargini, Claudia Calderone, Vincenzo |
author_sort | Testai, Lara |
collection | PubMed |
description | Sirtuin 1 (SIRT1) enzyme plays a pivotal role in the regulation of many physiological functions. In particular, it is implicated in ageing-related diseases, such as cardiac hypertrophy, myocardial infarct, and endothelial dysfunction; moreover, its expression decreases with age. Therefore, an effective strategy to extend the lifespan and improve cardiovascular function is the enhancement of the expression/activity of SIRT1 with exogenous agents. The Citrus flavonoid naringenin (NAR) presents structural similarity with the natural SIRT1 activator resveratrol. In this study, we demonstrate through in vitro assays that NAR significantly activates SIRT1 enzyme and shows antisenescence effects. The binding mode of NAR into SIRT1 was detailed investigated through in silico studies. Moreover, chronic administration (for six months) of NAR (100 mg/kg/day) to 6-month-old mice leads to an enhancement of SIRT1 expression and a marked reduction of reactive oxygen species production in myocardial tissue. Furthermore, at the end of the treatment, the plasma levels of two well-known markers of cardiovascular inflammation, TNF-α and IL6, are significantly reduced in 12-month-old mice treated with NAR, as well as the cardiovascular risk (total cholesterol/HDL ratio) compared to control mice. Finally, the age-associated fibrotic remodeling, which is well detected through a Mallory trichrome staining in the vehicle-treated 12-month-old mice, is significantly reduced by the chronic treatment with NAR. Moreover, an improvement of myocardium functionality is highlighted by the enhancement of citrate synthase activity and stabilization of the mitochondrial membrane potential after NAR treatment. Taken together, these results suggest that a nutraceutical approach with NAR may have positive impacts on many critical hallmarks of myocardial senescence, contributing to improve the cardiac performance in aged subjects. |
format | Online Article Text |
id | pubmed-7003265 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | Hindawi |
record_format | MEDLINE/PubMed |
spelling | pubmed-70032652020-02-11 The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 Testai, Lara Piragine, Eugenia Piano, Ilaria Flori, Lorenzo Da Pozzo, Eleonora Miragliotta, Vincenzo Pirone, Andrea Citi, Valentina Di Cesare Mannelli, Lorenzo Brogi, Simone Carpi, Sara Martelli, Alma Nieri, Paola Martini, Claudia Ghelardini, Carla Gargini, Claudia Calderone, Vincenzo Oxid Med Cell Longev Research Article Sirtuin 1 (SIRT1) enzyme plays a pivotal role in the regulation of many physiological functions. In particular, it is implicated in ageing-related diseases, such as cardiac hypertrophy, myocardial infarct, and endothelial dysfunction; moreover, its expression decreases with age. Therefore, an effective strategy to extend the lifespan and improve cardiovascular function is the enhancement of the expression/activity of SIRT1 with exogenous agents. The Citrus flavonoid naringenin (NAR) presents structural similarity with the natural SIRT1 activator resveratrol. In this study, we demonstrate through in vitro assays that NAR significantly activates SIRT1 enzyme and shows antisenescence effects. The binding mode of NAR into SIRT1 was detailed investigated through in silico studies. Moreover, chronic administration (for six months) of NAR (100 mg/kg/day) to 6-month-old mice leads to an enhancement of SIRT1 expression and a marked reduction of reactive oxygen species production in myocardial tissue. Furthermore, at the end of the treatment, the plasma levels of two well-known markers of cardiovascular inflammation, TNF-α and IL6, are significantly reduced in 12-month-old mice treated with NAR, as well as the cardiovascular risk (total cholesterol/HDL ratio) compared to control mice. Finally, the age-associated fibrotic remodeling, which is well detected through a Mallory trichrome staining in the vehicle-treated 12-month-old mice, is significantly reduced by the chronic treatment with NAR. Moreover, an improvement of myocardium functionality is highlighted by the enhancement of citrate synthase activity and stabilization of the mitochondrial membrane potential after NAR treatment. Taken together, these results suggest that a nutraceutical approach with NAR may have positive impacts on many critical hallmarks of myocardial senescence, contributing to improve the cardiac performance in aged subjects. Hindawi 2020-01-25 /pmc/articles/PMC7003265/ /pubmed/32047577 http://dx.doi.org/10.1155/2020/4650207 Text en Copyright © 2020 Lara Testai et al. http://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 Testai, Lara Piragine, Eugenia Piano, Ilaria Flori, Lorenzo Da Pozzo, Eleonora Miragliotta, Vincenzo Pirone, Andrea Citi, Valentina Di Cesare Mannelli, Lorenzo Brogi, Simone Carpi, Sara Martelli, Alma Nieri, Paola Martini, Claudia Ghelardini, Carla Gargini, Claudia Calderone, Vincenzo The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title | The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title_full | The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title_fullStr | The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title_full_unstemmed | The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title_short | The Citrus Flavonoid Naringenin Protects the Myocardium from Ageing-Dependent Dysfunction: Potential Role of SIRT1 |
title_sort | citrus flavonoid naringenin protects the myocardium from ageing-dependent dysfunction: potential role of sirt1 |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7003265/ https://www.ncbi.nlm.nih.gov/pubmed/32047577 http://dx.doi.org/10.1155/2020/4650207 |
work_keys_str_mv | AT testailara thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT piragineeugenia thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT pianoilaria thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT florilorenzo thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT dapozzoeleonora thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT miragliottavincenzo thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT pironeandrea thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT citivalentina thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT dicesaremannellilorenzo thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT brogisimone thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT carpisara thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT martellialma thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT nieripaola thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT martiniclaudia thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT ghelardinicarla thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT garginiclaudia thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT calderonevincenzo thecitrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT testailara citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT piragineeugenia citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT pianoilaria citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT florilorenzo citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT dapozzoeleonora citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT miragliottavincenzo citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT pironeandrea citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT citivalentina citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT dicesaremannellilorenzo citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT brogisimone citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT carpisara citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT martellialma citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT nieripaola citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT martiniclaudia citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT ghelardinicarla citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT garginiclaudia citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 AT calderonevincenzo citrusflavonoidnaringeninprotectsthemyocardiumfromageingdependentdysfunctionpotentialroleofsirt1 |