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Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis

Mitochondria-targeted compounds are emerging as a new class of drugs that can potentially alter the pathophysiology of those diseases where mitochondrial dysfunction plays a critical role. We have synthesized a novel mitochondria-targeted esculetin (Mito-Esc) with an aim to investigate its effect du...

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Autores principales: Karnewar, Santosh, Vasamsetti, Sathish Babu, Gopoju, Raja, Kanugula, Anantha Koteswararao, Ganji, Sai Krishna, Prabhakar, Sripadi, Rangaraj, Nandini, Tupperwar, Nitin, Kumar, Jerald Mahesh, Kotamraju, Srigiridhar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4827087/
https://www.ncbi.nlm.nih.gov/pubmed/27063143
http://dx.doi.org/10.1038/srep24108
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author Karnewar, Santosh
Vasamsetti, Sathish Babu
Gopoju, Raja
Kanugula, Anantha Koteswararao
Ganji, Sai Krishna
Prabhakar, Sripadi
Rangaraj, Nandini
Tupperwar, Nitin
Kumar, Jerald Mahesh
Kotamraju, Srigiridhar
author_facet Karnewar, Santosh
Vasamsetti, Sathish Babu
Gopoju, Raja
Kanugula, Anantha Koteswararao
Ganji, Sai Krishna
Prabhakar, Sripadi
Rangaraj, Nandini
Tupperwar, Nitin
Kumar, Jerald Mahesh
Kotamraju, Srigiridhar
author_sort Karnewar, Santosh
collection PubMed
description Mitochondria-targeted compounds are emerging as a new class of drugs that can potentially alter the pathophysiology of those diseases where mitochondrial dysfunction plays a critical role. We have synthesized a novel mitochondria-targeted esculetin (Mito-Esc) with an aim to investigate its effect during oxidative stress-induced endothelial cell death and angiotensin (Ang)-II-induced atherosclerosis in ApoE(−/−) mice. Mito-Esc but not natural esculetin treatment significantly inhibited H2O2- and Ang-II-induced cell death in human aortic endothelial cells by enhancing NO production via AMPK-mediated eNOS phosphorylation. While L-NAME (NOS inhibitor) significantly abrogated Mito-Esc-mediated protective effects, Compound c (inhibitor of AMPK) significantly decreased Mito-Esc-mediated increase in NO production. Notably, Mito-Esc promoted mitochondrial biogenesis by enhancing SIRT3 expression through AMPK activation; and restored H2O2-induced inhibition of mitochondrial respiration. siSIRT3 treatment not only completely reversed Mito-Esc-mediated mitochondrial biogenetic marker expressions but also caused endothelial cell death. Furthermore, Mito-Esc administration to ApoE(−/−) mice greatly alleviated Ang-II-induced atheromatous plaque formation, monocyte infiltration and serum pro-inflammatory cytokines levels. We conclude that Mito-Esc is preferentially taken up by the mitochondria and preserves endothelial cell survival during oxidative stress by modulating NO generation via AMPK. Also, Mito-Esc-induced SIRT3 plays a pivotal role in mediating mitochondrial biogenesis and perhaps contributes to its anti-atherogenic effects.
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spelling pubmed-48270872016-04-19 Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis Karnewar, Santosh Vasamsetti, Sathish Babu Gopoju, Raja Kanugula, Anantha Koteswararao Ganji, Sai Krishna Prabhakar, Sripadi Rangaraj, Nandini Tupperwar, Nitin Kumar, Jerald Mahesh Kotamraju, Srigiridhar Sci Rep Article Mitochondria-targeted compounds are emerging as a new class of drugs that can potentially alter the pathophysiology of those diseases where mitochondrial dysfunction plays a critical role. We have synthesized a novel mitochondria-targeted esculetin (Mito-Esc) with an aim to investigate its effect during oxidative stress-induced endothelial cell death and angiotensin (Ang)-II-induced atherosclerosis in ApoE(−/−) mice. Mito-Esc but not natural esculetin treatment significantly inhibited H2O2- and Ang-II-induced cell death in human aortic endothelial cells by enhancing NO production via AMPK-mediated eNOS phosphorylation. While L-NAME (NOS inhibitor) significantly abrogated Mito-Esc-mediated protective effects, Compound c (inhibitor of AMPK) significantly decreased Mito-Esc-mediated increase in NO production. Notably, Mito-Esc promoted mitochondrial biogenesis by enhancing SIRT3 expression through AMPK activation; and restored H2O2-induced inhibition of mitochondrial respiration. siSIRT3 treatment not only completely reversed Mito-Esc-mediated mitochondrial biogenetic marker expressions but also caused endothelial cell death. Furthermore, Mito-Esc administration to ApoE(−/−) mice greatly alleviated Ang-II-induced atheromatous plaque formation, monocyte infiltration and serum pro-inflammatory cytokines levels. We conclude that Mito-Esc is preferentially taken up by the mitochondria and preserves endothelial cell survival during oxidative stress by modulating NO generation via AMPK. Also, Mito-Esc-induced SIRT3 plays a pivotal role in mediating mitochondrial biogenesis and perhaps contributes to its anti-atherogenic effects. Nature Publishing Group 2016-04-11 /pmc/articles/PMC4827087/ /pubmed/27063143 http://dx.doi.org/10.1038/srep24108 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Karnewar, Santosh
Vasamsetti, Sathish Babu
Gopoju, Raja
Kanugula, Anantha Koteswararao
Ganji, Sai Krishna
Prabhakar, Sripadi
Rangaraj, Nandini
Tupperwar, Nitin
Kumar, Jerald Mahesh
Kotamraju, Srigiridhar
Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title_full Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title_fullStr Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title_full_unstemmed Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title_short Mitochondria-targeted esculetin alleviates mitochondrial dysfunction by AMPK-mediated nitric oxide and SIRT3 regulation in endothelial cells: potential implications in atherosclerosis
title_sort mitochondria-targeted esculetin alleviates mitochondrial dysfunction by ampk-mediated nitric oxide and sirt3 regulation in endothelial cells: potential implications in atherosclerosis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4827087/
https://www.ncbi.nlm.nih.gov/pubmed/27063143
http://dx.doi.org/10.1038/srep24108
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