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FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study

OBJECTIVES: The present study aims to verify the relationship between glucose consumption and uptake of (18)F-2-deoxy-glucose (FDG) in the skeletal muscle (SM) of experimental models of streptozotocin-induced diabetes mellitus (STZ-DM). METHODS: The study included 36 Balb/c mice. Two weeks after int...

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Autores principales: Bauckneht, Matteo, Cossu, Vanessa, Castellani, Patrizia, Piccioli, Patrizia, Orengo, Anna Maria, Emionite, Laura, Di Giulio, Francesco, Donegani, Maria Isabella, Miceli, Alberto, Raffa, Stefano, Borra, Anna, Capitanio, Selene, Morbelli, Silvia, Caviglia, Giacomo, Bruno, Silvia, Ravera, Silvia, Maggi, Davide, Sambuceti, Gianmario, Marini, Cecilia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6920267/
https://www.ncbi.nlm.nih.gov/pubmed/31918925
http://dx.doi.org/10.1016/j.molmet.2019.11.007
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author Bauckneht, Matteo
Cossu, Vanessa
Castellani, Patrizia
Piccioli, Patrizia
Orengo, Anna Maria
Emionite, Laura
Di Giulio, Francesco
Donegani, Maria Isabella
Miceli, Alberto
Raffa, Stefano
Borra, Anna
Capitanio, Selene
Morbelli, Silvia
Caviglia, Giacomo
Bruno, Silvia
Ravera, Silvia
Maggi, Davide
Sambuceti, Gianmario
Marini, Cecilia
author_facet Bauckneht, Matteo
Cossu, Vanessa
Castellani, Patrizia
Piccioli, Patrizia
Orengo, Anna Maria
Emionite, Laura
Di Giulio, Francesco
Donegani, Maria Isabella
Miceli, Alberto
Raffa, Stefano
Borra, Anna
Capitanio, Selene
Morbelli, Silvia
Caviglia, Giacomo
Bruno, Silvia
Ravera, Silvia
Maggi, Davide
Sambuceti, Gianmario
Marini, Cecilia
author_sort Bauckneht, Matteo
collection PubMed
description OBJECTIVES: The present study aims to verify the relationship between glucose consumption and uptake of (18)F-2-deoxy-glucose (FDG) in the skeletal muscle (SM) of experimental models of streptozotocin-induced diabetes mellitus (STZ-DM). METHODS: The study included 36 Balb/c mice. Two weeks after intraperitoneal administration of saline (control group, n = 18) or 150 mg streptozotocin (STZ-DM group, n = 18), the two cohorts were submitted to an oral glucose tolerance test and were further subdivided into three groups (n = 6 each): untreated and treated with metformin (MTF) at low or high doses (10 or 750 mg/kg daily, respectively). Two weeks thereafter, all mice were submitted to dynamic micro–positron emission tomography (PET) imaging after prolonged fasting. After sacrifice, enzymatic pathways and response to oxidative stress were evaluated in harvested SM. RESULTS: On PET imaging, the FDG uptake rate in hindlimb SM was significantly lower in nondiabetic mice as compared with STZ-DM–untreated mice. MTF had no significant effect on SM FDG uptake in untreated mice; however, its high dose induced a significant decrease in STZ-DM animals. Upon conventional analysis, the SM standard uptake value was higher in STZ-DM mice, while MTF was virtually ineffective in either control or STZ-DM models. This metabolic reprogramming was not explained by any change in cytosolic glucose metabolism. By contrast, it closely agreed with the catalytic function of hexose-6P-dehydrogenase (H6PD; i.e., the trigger of a specific pentose phosphate pathway selectively located within the endoplasmic reticulum). In agreement with this role, the H6PD enzymatic response to both STZ-DM and MTF matched the activation of the NADPH-dependent antioxidant responses to the increased generation of reactive oxygen species caused by chronic hyperglycemia. Ex vivo analysis of tracer kinetics confirmed that the enhanced SM avidity for FDG occurred despite a significant reduction in glucose consumption, while it was associated with increased radioactivity transfer to the endoplasmic reticulum. CONCLUSIONS: These data challenge the current dogma linking FDG uptake to the glycolytic rate. They instead introduce a new model considering a strict link between the uptake of this glucose analog, H6PD reticular activity, and oxidative damage in diabetes, at least under fasting condition.
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spelling pubmed-69202672019-12-26 FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study Bauckneht, Matteo Cossu, Vanessa Castellani, Patrizia Piccioli, Patrizia Orengo, Anna Maria Emionite, Laura Di Giulio, Francesco Donegani, Maria Isabella Miceli, Alberto Raffa, Stefano Borra, Anna Capitanio, Selene Morbelli, Silvia Caviglia, Giacomo Bruno, Silvia Ravera, Silvia Maggi, Davide Sambuceti, Gianmario Marini, Cecilia Mol Metab Original Article OBJECTIVES: The present study aims to verify the relationship between glucose consumption and uptake of (18)F-2-deoxy-glucose (FDG) in the skeletal muscle (SM) of experimental models of streptozotocin-induced diabetes mellitus (STZ-DM). METHODS: The study included 36 Balb/c mice. Two weeks after intraperitoneal administration of saline (control group, n = 18) or 150 mg streptozotocin (STZ-DM group, n = 18), the two cohorts were submitted to an oral glucose tolerance test and were further subdivided into three groups (n = 6 each): untreated and treated with metformin (MTF) at low or high doses (10 or 750 mg/kg daily, respectively). Two weeks thereafter, all mice were submitted to dynamic micro–positron emission tomography (PET) imaging after prolonged fasting. After sacrifice, enzymatic pathways and response to oxidative stress were evaluated in harvested SM. RESULTS: On PET imaging, the FDG uptake rate in hindlimb SM was significantly lower in nondiabetic mice as compared with STZ-DM–untreated mice. MTF had no significant effect on SM FDG uptake in untreated mice; however, its high dose induced a significant decrease in STZ-DM animals. Upon conventional analysis, the SM standard uptake value was higher in STZ-DM mice, while MTF was virtually ineffective in either control or STZ-DM models. This metabolic reprogramming was not explained by any change in cytosolic glucose metabolism. By contrast, it closely agreed with the catalytic function of hexose-6P-dehydrogenase (H6PD; i.e., the trigger of a specific pentose phosphate pathway selectively located within the endoplasmic reticulum). In agreement with this role, the H6PD enzymatic response to both STZ-DM and MTF matched the activation of the NADPH-dependent antioxidant responses to the increased generation of reactive oxygen species caused by chronic hyperglycemia. Ex vivo analysis of tracer kinetics confirmed that the enhanced SM avidity for FDG occurred despite a significant reduction in glucose consumption, while it was associated with increased radioactivity transfer to the endoplasmic reticulum. CONCLUSIONS: These data challenge the current dogma linking FDG uptake to the glycolytic rate. They instead introduce a new model considering a strict link between the uptake of this glucose analog, H6PD reticular activity, and oxidative damage in diabetes, at least under fasting condition. Elsevier 2019-11-15 /pmc/articles/PMC6920267/ /pubmed/31918925 http://dx.doi.org/10.1016/j.molmet.2019.11.007 Text en © 2019 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Original Article
Bauckneht, Matteo
Cossu, Vanessa
Castellani, Patrizia
Piccioli, Patrizia
Orengo, Anna Maria
Emionite, Laura
Di Giulio, Francesco
Donegani, Maria Isabella
Miceli, Alberto
Raffa, Stefano
Borra, Anna
Capitanio, Selene
Morbelli, Silvia
Caviglia, Giacomo
Bruno, Silvia
Ravera, Silvia
Maggi, Davide
Sambuceti, Gianmario
Marini, Cecilia
FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title_full FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title_fullStr FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title_full_unstemmed FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title_short FDG uptake tracks the oxidative damage in diabetic skeletal muscle: An experimental study
title_sort fdg uptake tracks the oxidative damage in diabetic skeletal muscle: an experimental study
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6920267/
https://www.ncbi.nlm.nih.gov/pubmed/31918925
http://dx.doi.org/10.1016/j.molmet.2019.11.007
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