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Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model

NEW FINDINGS: What is the central question of this study? Is it possible to combine the hyperpolarized magnetic resonance technique and the hyperinsulinaemic clamp method in order to evaluate skeletal muscle metabolism in a large animal model? What is the main finding and its importance? The logisti...

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Autores principales: Bengtsen, Mads Bisgaard, Hansen, Esben Søvsø Szocska, Tougaard, Rasmus Stilling, Lyhne, Mads Dam, Rittig, Nikolaj Fibiger, Støy, Julie, Jessen, Niels, Mariager, Christian Østergaard, Stødkilde‐Jørgensen, Hans, Møller, Niels, Laustsen, Christoffer
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9298727/
https://www.ncbi.nlm.nih.gov/pubmed/34705304
http://dx.doi.org/10.1113/EP089782
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author Bengtsen, Mads Bisgaard
Hansen, Esben Søvsø Szocska
Tougaard, Rasmus Stilling
Lyhne, Mads Dam
Rittig, Nikolaj Fibiger
Støy, Julie
Jessen, Niels
Mariager, Christian Østergaard
Stødkilde‐Jørgensen, Hans
Møller, Niels
Laustsen, Christoffer
author_facet Bengtsen, Mads Bisgaard
Hansen, Esben Søvsø Szocska
Tougaard, Rasmus Stilling
Lyhne, Mads Dam
Rittig, Nikolaj Fibiger
Støy, Julie
Jessen, Niels
Mariager, Christian Østergaard
Stødkilde‐Jørgensen, Hans
Møller, Niels
Laustsen, Christoffer
author_sort Bengtsen, Mads Bisgaard
collection PubMed
description NEW FINDINGS: What is the central question of this study? Is it possible to combine the hyperpolarized magnetic resonance technique and the hyperinsulinaemic clamp method in order to evaluate skeletal muscle metabolism in a large animal model? What is the main finding and its importance? The logistical set‐up is possible, and we found substantial increments in glucose infusion rates representing skeletal muscle glucose uptake but no differences in ratios of [1‐(13)C]lactate to [1‐(13)C]pyruvate, [1‐(13)C]alanine to [1‐(13)C]pyruvate, and (13)C‐bicarbonate to [1‐(13)C]pyruvate, implying that the hyperpolarization technique might not be optimal for detecting effects of insulin in skeletal muscle of anaesthetized animals, which is of significance for future studies. ABSTRACT: In skeletal muscle, glucose metabolism is tightly regulated by the reciprocal relationship between insulin and adrenaline, with pyruvate being at the intersection of both pathways. Hyperpolarized magnetic resonance (hMR) is a new approach to gain insights into these pathways, and human trials involving hMR and skeletal muscle metabolism are imminent. We aimed to combine the hyperinsulinaemic clamp technique and hMR in a large animal model resembling human physiology. Fifteen anaesthetized pigs were randomized to saline (control group), hyperinsulinaemic euglycaemic clamp technique (HE group) or hyperinsulinaemic hypoglycaemic clamp technique (HH group). Skeletal muscle metabolism was evaluated by hyperpolarized [1‐(13)C]pyruvate injection and hMR at baseline and after intervention. The glucose infusion rate per kilogram increased by a statistically significant amount in the HE and HH groups (P < 0.001). Hyperpolarized magnetic resonance showed no statistically significant changes in metabolite ratios: [1‐(13)C]lactate to [1‐(13)C]pyruvate in the HH group versus control group (P = 0.19); and (13)C‐bicarbonate to [1‐(13)C]pyruvate ratio in the HE group versus the control group (P = 0.12). We found evidence of profound increments in glucose infusion rates representing skeletal muscle glucose uptake, but interestingly, no signs of significant changes in aerobic and anaerobic metabolism using hMR. These results imply that hyperpolarized [1‐(13)C]pyruvate might not be optimally suited to detect effects of insulin in anaesthetized resting skeletal muscle, which is of significance for future studies.
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spelling pubmed-92987272022-07-21 Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model Bengtsen, Mads Bisgaard Hansen, Esben Søvsø Szocska Tougaard, Rasmus Stilling Lyhne, Mads Dam Rittig, Nikolaj Fibiger Støy, Julie Jessen, Niels Mariager, Christian Østergaard Stødkilde‐Jørgensen, Hans Møller, Niels Laustsen, Christoffer Exp Physiol Research Papers NEW FINDINGS: What is the central question of this study? Is it possible to combine the hyperpolarized magnetic resonance technique and the hyperinsulinaemic clamp method in order to evaluate skeletal muscle metabolism in a large animal model? What is the main finding and its importance? The logistical set‐up is possible, and we found substantial increments in glucose infusion rates representing skeletal muscle glucose uptake but no differences in ratios of [1‐(13)C]lactate to [1‐(13)C]pyruvate, [1‐(13)C]alanine to [1‐(13)C]pyruvate, and (13)C‐bicarbonate to [1‐(13)C]pyruvate, implying that the hyperpolarization technique might not be optimal for detecting effects of insulin in skeletal muscle of anaesthetized animals, which is of significance for future studies. ABSTRACT: In skeletal muscle, glucose metabolism is tightly regulated by the reciprocal relationship between insulin and adrenaline, with pyruvate being at the intersection of both pathways. Hyperpolarized magnetic resonance (hMR) is a new approach to gain insights into these pathways, and human trials involving hMR and skeletal muscle metabolism are imminent. We aimed to combine the hyperinsulinaemic clamp technique and hMR in a large animal model resembling human physiology. Fifteen anaesthetized pigs were randomized to saline (control group), hyperinsulinaemic euglycaemic clamp technique (HE group) or hyperinsulinaemic hypoglycaemic clamp technique (HH group). Skeletal muscle metabolism was evaluated by hyperpolarized [1‐(13)C]pyruvate injection and hMR at baseline and after intervention. The glucose infusion rate per kilogram increased by a statistically significant amount in the HE and HH groups (P < 0.001). Hyperpolarized magnetic resonance showed no statistically significant changes in metabolite ratios: [1‐(13)C]lactate to [1‐(13)C]pyruvate in the HH group versus control group (P = 0.19); and (13)C‐bicarbonate to [1‐(13)C]pyruvate ratio in the HE group versus the control group (P = 0.12). We found evidence of profound increments in glucose infusion rates representing skeletal muscle glucose uptake, but interestingly, no signs of significant changes in aerobic and anaerobic metabolism using hMR. These results imply that hyperpolarized [1‐(13)C]pyruvate might not be optimally suited to detect effects of insulin in anaesthetized resting skeletal muscle, which is of significance for future studies. John Wiley and Sons Inc. 2021-11-15 2021-12-01 /pmc/articles/PMC9298727/ /pubmed/34705304 http://dx.doi.org/10.1113/EP089782 Text en © 2021 The Authors. Experimental Physiology published by John Wiley & Sons Ltd on behalf of The Physiological Society https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Papers
Bengtsen, Mads Bisgaard
Hansen, Esben Søvsø Szocska
Tougaard, Rasmus Stilling
Lyhne, Mads Dam
Rittig, Nikolaj Fibiger
Støy, Julie
Jessen, Niels
Mariager, Christian Østergaard
Stødkilde‐Jørgensen, Hans
Møller, Niels
Laustsen, Christoffer
Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title_full Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title_fullStr Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title_full_unstemmed Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title_short Hyperpolarized [1‐(13)C]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
title_sort hyperpolarized [1‐(13)c]pyruvate combined with the hyperinsulinaemic euglycaemic and hypoglycaemic clamp technique in skeletal muscle in a large animal model
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9298727/
https://www.ncbi.nlm.nih.gov/pubmed/34705304
http://dx.doi.org/10.1113/EP089782
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