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AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis

Advanced age and unhealthy dietary habits contribute to the increasing incidence of obesity and type 2 diabetes. These metabolic disorders, which are often accompanied by oxidative stress and compromised nitric oxide (NO) signaling, increase the risk of adverse cardiovascular complications and devel...

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Autores principales: Cordero-Herrera, Isabel, Kozyra, Mikael, Zhuge, Zhengbing, McCann Haworth, Sarah, Moretti, Chiara, Peleli, Maria, Caldeira-Dias, Mayara, Jahandideh, Arghavan, Huirong, Han, Cruz, Josiane de Campos, Kleschyov, Andrei L., Montenegro, Marcelo F., Ingelman-Sundberg, Magnus, Weitzberg, Eddie, Lundberg, Jon O., Carlstrom, Mattias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6320503/
https://www.ncbi.nlm.nih.gov/pubmed/30559212
http://dx.doi.org/10.1073/pnas.1809406115
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author Cordero-Herrera, Isabel
Kozyra, Mikael
Zhuge, Zhengbing
McCann Haworth, Sarah
Moretti, Chiara
Peleli, Maria
Caldeira-Dias, Mayara
Jahandideh, Arghavan
Huirong, Han
Cruz, Josiane de Campos
Kleschyov, Andrei L.
Montenegro, Marcelo F.
Ingelman-Sundberg, Magnus
Weitzberg, Eddie
Lundberg, Jon O.
Carlstrom, Mattias
author_facet Cordero-Herrera, Isabel
Kozyra, Mikael
Zhuge, Zhengbing
McCann Haworth, Sarah
Moretti, Chiara
Peleli, Maria
Caldeira-Dias, Mayara
Jahandideh, Arghavan
Huirong, Han
Cruz, Josiane de Campos
Kleschyov, Andrei L.
Montenegro, Marcelo F.
Ingelman-Sundberg, Magnus
Weitzberg, Eddie
Lundberg, Jon O.
Carlstrom, Mattias
author_sort Cordero-Herrera, Isabel
collection PubMed
description Advanced age and unhealthy dietary habits contribute to the increasing incidence of obesity and type 2 diabetes. These metabolic disorders, which are often accompanied by oxidative stress and compromised nitric oxide (NO) signaling, increase the risk of adverse cardiovascular complications and development of fatty liver disease. Here, we investigated the therapeutic effects of dietary nitrate, which is found in high levels in green leafy vegetables, on liver steatosis associated with metabolic syndrome. Dietary nitrate fuels a nitrate–nitrite–NO signaling pathway, which prevented many features of metabolic syndrome and liver steatosis that developed in mice fed a high-fat diet, with or without combination with an inhibitor of NOS (l-NAME). These favorable effects of nitrate were absent in germ-free mice, demonstrating the central importance of host microbiota in bioactivation of nitrate. In a human liver cell line (HepG2) and in a validated hepatic 3D model with primary human hepatocyte spheroids, nitrite treatment reduced the degree of metabolically induced steatosis (i.e., high glucose, insulin, and free fatty acids), as well as drug-induced steatosis (i.e., amiodarone). Mechanistically, the salutary metabolic effects of nitrate and nitrite can be ascribed to nitrite-derived formation of NO species and activation of soluble guanylyl cyclase, where xanthine oxidoreductase is proposed to mediate the reduction of nitrite. Boosting this nitrate–nitrite–NO pathway results in attenuation of NADPH oxidase-derived oxidative stress and stimulation of AMP-activated protein kinase and downstream signaling pathways regulating lipogenesis, fatty acid oxidation, and glucose homeostasis. These findings may have implications for novel nutrition-based preventive and therapeutic strategies against liver steatosis associated with metabolic dysfunction.
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spelling pubmed-63205032019-01-10 AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis Cordero-Herrera, Isabel Kozyra, Mikael Zhuge, Zhengbing McCann Haworth, Sarah Moretti, Chiara Peleli, Maria Caldeira-Dias, Mayara Jahandideh, Arghavan Huirong, Han Cruz, Josiane de Campos Kleschyov, Andrei L. Montenegro, Marcelo F. Ingelman-Sundberg, Magnus Weitzberg, Eddie Lundberg, Jon O. Carlstrom, Mattias Proc Natl Acad Sci U S A PNAS Plus Advanced age and unhealthy dietary habits contribute to the increasing incidence of obesity and type 2 diabetes. These metabolic disorders, which are often accompanied by oxidative stress and compromised nitric oxide (NO) signaling, increase the risk of adverse cardiovascular complications and development of fatty liver disease. Here, we investigated the therapeutic effects of dietary nitrate, which is found in high levels in green leafy vegetables, on liver steatosis associated with metabolic syndrome. Dietary nitrate fuels a nitrate–nitrite–NO signaling pathway, which prevented many features of metabolic syndrome and liver steatosis that developed in mice fed a high-fat diet, with or without combination with an inhibitor of NOS (l-NAME). These favorable effects of nitrate were absent in germ-free mice, demonstrating the central importance of host microbiota in bioactivation of nitrate. In a human liver cell line (HepG2) and in a validated hepatic 3D model with primary human hepatocyte spheroids, nitrite treatment reduced the degree of metabolically induced steatosis (i.e., high glucose, insulin, and free fatty acids), as well as drug-induced steatosis (i.e., amiodarone). Mechanistically, the salutary metabolic effects of nitrate and nitrite can be ascribed to nitrite-derived formation of NO species and activation of soluble guanylyl cyclase, where xanthine oxidoreductase is proposed to mediate the reduction of nitrite. Boosting this nitrate–nitrite–NO pathway results in attenuation of NADPH oxidase-derived oxidative stress and stimulation of AMP-activated protein kinase and downstream signaling pathways regulating lipogenesis, fatty acid oxidation, and glucose homeostasis. These findings may have implications for novel nutrition-based preventive and therapeutic strategies against liver steatosis associated with metabolic dysfunction. National Academy of Sciences 2019-01-02 2018-12-17 /pmc/articles/PMC6320503/ /pubmed/30559212 http://dx.doi.org/10.1073/pnas.1809406115 Text en Copyright © 2019 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Cordero-Herrera, Isabel
Kozyra, Mikael
Zhuge, Zhengbing
McCann Haworth, Sarah
Moretti, Chiara
Peleli, Maria
Caldeira-Dias, Mayara
Jahandideh, Arghavan
Huirong, Han
Cruz, Josiane de Campos
Kleschyov, Andrei L.
Montenegro, Marcelo F.
Ingelman-Sundberg, Magnus
Weitzberg, Eddie
Lundberg, Jon O.
Carlstrom, Mattias
AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title_full AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title_fullStr AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title_full_unstemmed AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title_short AMP-activated protein kinase activation and NADPH oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
title_sort amp-activated protein kinase activation and nadph oxidase inhibition by inorganic nitrate and nitrite prevent liver steatosis
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6320503/
https://www.ncbi.nlm.nih.gov/pubmed/30559212
http://dx.doi.org/10.1073/pnas.1809406115
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