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Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest

Cardiac arrest (CA) causes high mortality due to multi-system organ damage attributable to ischemia-reperfusion injury. Recent work in our group found that among diabetic patients who experienced cardiac arrest, those taking metformin had less evidence of cardiac and renal damage after cardiac arres...

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Autores principales: Rutledge, Cody A., Lagranha, Claudia, Chiba, Takuto, Redding, Kevin, Stolz, Donna B., Goetzman, Eric, Sims-Lucas, Sunder, Kaufman, Brett A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10327679/
https://www.ncbi.nlm.nih.gov/pubmed/37425219
http://dx.doi.org/10.1016/j.jmccpl.2023.100034
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author Rutledge, Cody A.
Lagranha, Claudia
Chiba, Takuto
Redding, Kevin
Stolz, Donna B.
Goetzman, Eric
Sims-Lucas, Sunder
Kaufman, Brett A.
author_facet Rutledge, Cody A.
Lagranha, Claudia
Chiba, Takuto
Redding, Kevin
Stolz, Donna B.
Goetzman, Eric
Sims-Lucas, Sunder
Kaufman, Brett A.
author_sort Rutledge, Cody A.
collection PubMed
description Cardiac arrest (CA) causes high mortality due to multi-system organ damage attributable to ischemia-reperfusion injury. Recent work in our group found that among diabetic patients who experienced cardiac arrest, those taking metformin had less evidence of cardiac and renal damage after cardiac arrest when compared to those not taking metformin. Based on these observations, we hypothesized that metformin’s protective effects in the heart were mediated by AMPK signaling, and that AMPK signaling could be targeted as a therapeutic strategy following resuscitation from CA. The current study investigates metformin interventions on cardiac and renal outcomes in a non-diabetic CA mouse model. We found that two weeks of metformin pretreatment protects against reduced ejection fraction and reduces kidney ischemia-reperfusion injury at 24 h post-arrest. This cardiac and renal protection depends on AMPK signaling, as demonstrated by outcomes in mice pretreated with the AMPK activator AICAR or metformin plus the AMPK inhibitor compound C. At this 24-h time point, heart gene expression analysis showed that metformin pretreatment caused changes supporting autophagy, antioxidant response, and protein translation. Further investigation found associated improvements in mitochondrial structure and markers of autophagy. Notably, Western analysis indicated that protein synthesis was preserved in arrest hearts of animals pretreated with metformin. The AMPK activation-mediated preservation of protein synthesis was also observed in a hypoxia/reoxygenation cell culture model. Despite the positive impacts of pretreatment in vivo and in vitro, metformin did not preserve ejection fraction when deployed at resuscitation. Taken together, we propose that metformin’s in vivo cardiac preservation occurs through AMPK activation, requires adaptation before arrest, and is associated with preserved protein translation.
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spelling pubmed-103276792023-07-07 Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest Rutledge, Cody A. Lagranha, Claudia Chiba, Takuto Redding, Kevin Stolz, Donna B. Goetzman, Eric Sims-Lucas, Sunder Kaufman, Brett A. J Mol Cell Cardiol Plus Article Cardiac arrest (CA) causes high mortality due to multi-system organ damage attributable to ischemia-reperfusion injury. Recent work in our group found that among diabetic patients who experienced cardiac arrest, those taking metformin had less evidence of cardiac and renal damage after cardiac arrest when compared to those not taking metformin. Based on these observations, we hypothesized that metformin’s protective effects in the heart were mediated by AMPK signaling, and that AMPK signaling could be targeted as a therapeutic strategy following resuscitation from CA. The current study investigates metformin interventions on cardiac and renal outcomes in a non-diabetic CA mouse model. We found that two weeks of metformin pretreatment protects against reduced ejection fraction and reduces kidney ischemia-reperfusion injury at 24 h post-arrest. This cardiac and renal protection depends on AMPK signaling, as demonstrated by outcomes in mice pretreated with the AMPK activator AICAR or metformin plus the AMPK inhibitor compound C. At this 24-h time point, heart gene expression analysis showed that metformin pretreatment caused changes supporting autophagy, antioxidant response, and protein translation. Further investigation found associated improvements in mitochondrial structure and markers of autophagy. Notably, Western analysis indicated that protein synthesis was preserved in arrest hearts of animals pretreated with metformin. The AMPK activation-mediated preservation of protein synthesis was also observed in a hypoxia/reoxygenation cell culture model. Despite the positive impacts of pretreatment in vivo and in vitro, metformin did not preserve ejection fraction when deployed at resuscitation. Taken together, we propose that metformin’s in vivo cardiac preservation occurs through AMPK activation, requires adaptation before arrest, and is associated with preserved protein translation. 2023-06 2023-04-05 /pmc/articles/PMC10327679/ /pubmed/37425219 http://dx.doi.org/10.1016/j.jmccpl.2023.100034 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Article
Rutledge, Cody A.
Lagranha, Claudia
Chiba, Takuto
Redding, Kevin
Stolz, Donna B.
Goetzman, Eric
Sims-Lucas, Sunder
Kaufman, Brett A.
Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title_full Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title_fullStr Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title_full_unstemmed Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title_short Metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
title_sort metformin preconditioning protects against myocardial stunning and preserves protein translation in a mouse model of cardiac arrest
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10327679/
https://www.ncbi.nlm.nih.gov/pubmed/37425219
http://dx.doi.org/10.1016/j.jmccpl.2023.100034
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