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Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models

OBJECTIVE: The lack of effective treatments against diabetic sensorimotor polyneuropathy demands the search for new strategies to combat or prevent the condition. Because reduced magnesium and increased methylglyoxal levels have been implicated in the development of both type 2 diabetes and neuropat...

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Autores principales: Strom, Alexander, Strassburger, Klaus, Schmuck, Martin, Shevalye, Hanna, Davidson, Eric, Zivehe, Fariba, Bönhof, Gidon, Reimer, Rudolph, Belgardt, Bengt-Frederik, Fleming, Thomas, Biermann, Barbara, Burkart, Volker, Müssig, Karsten, Szendroedi, Julia, Yorek, Mark A., Fritsche, Ellen, Nawroth, Peter P., Roden, Michael, Ziegler, Dan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7704399/
https://www.ncbi.nlm.nih.gov/pubmed/33166742
http://dx.doi.org/10.1016/j.molmet.2020.101114
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author Strom, Alexander
Strassburger, Klaus
Schmuck, Martin
Shevalye, Hanna
Davidson, Eric
Zivehe, Fariba
Bönhof, Gidon
Reimer, Rudolph
Belgardt, Bengt-Frederik
Fleming, Thomas
Biermann, Barbara
Burkart, Volker
Müssig, Karsten
Szendroedi, Julia
Yorek, Mark A.
Fritsche, Ellen
Nawroth, Peter P.
Roden, Michael
Ziegler, Dan
author_facet Strom, Alexander
Strassburger, Klaus
Schmuck, Martin
Shevalye, Hanna
Davidson, Eric
Zivehe, Fariba
Bönhof, Gidon
Reimer, Rudolph
Belgardt, Bengt-Frederik
Fleming, Thomas
Biermann, Barbara
Burkart, Volker
Müssig, Karsten
Szendroedi, Julia
Yorek, Mark A.
Fritsche, Ellen
Nawroth, Peter P.
Roden, Michael
Ziegler, Dan
author_sort Strom, Alexander
collection PubMed
description OBJECTIVE: The lack of effective treatments against diabetic sensorimotor polyneuropathy demands the search for new strategies to combat or prevent the condition. Because reduced magnesium and increased methylglyoxal levels have been implicated in the development of both type 2 diabetes and neuropathic pain, we aimed to assess the putative interplay of both molecules with diabetic sensorimotor polyneuropathy. METHODS: In a cross-sectional study, serum magnesium and plasma methylglyoxal levels were measured in recently diagnosed type 2 diabetes patients with (n = 51) and without (n = 184) diabetic sensorimotor polyneuropathy from the German Diabetes Study baseline cohort. Peripheral nerve function was assessed using nerve conduction velocity and quantitative sensory testing. Human neuroblastoma cells (SH-SY5Y) and mouse dorsal root ganglia cells were used to characterize the neurotoxic effect of methylglyoxal and/or neuroprotective effect of magnesium. RESULTS: Here, we demonstrate that serum magnesium concentration was reduced in recently diagnosed type 2 diabetes patients with diabetic sensorimotor polyneuropathy and inversely associated with plasma methylglyoxal concentration. Magnesium, methylglyoxal, and, importantly, their interaction were strongly interrelated with methylglyoxal-dependent nerve dysfunction and were predictive of changes in nerve function. Magnesium supplementation prevented methylglyoxal neurotoxicity in differentiated SH-SY5Y neuron-like cells due to reduction of intracellular methylglyoxal formation, while supplementation with the divalent cations zinc and manganese had no effect on methylglyoxal neurotoxicity. Furthermore, the downregulation of mitochondrial activity in mouse dorsal root ganglia cells and consequently the enrichment of triosephosphates, the primary source of methylglyoxal, resulted in neurite degeneration, which was completely prevented through magnesium supplementation. CONCLUSIONS: These multifaceted findings reveal a novel putative pathophysiological pathway of hypomagnesemia-induced carbonyl stress leading to neuronal damage and merit further investigations not only for diabetic sensorimotor polyneuropathy but also other neurodegenerative diseases associated with magnesium deficiency and impaired energy metabolism.
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spelling pubmed-77043992020-12-08 Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models Strom, Alexander Strassburger, Klaus Schmuck, Martin Shevalye, Hanna Davidson, Eric Zivehe, Fariba Bönhof, Gidon Reimer, Rudolph Belgardt, Bengt-Frederik Fleming, Thomas Biermann, Barbara Burkart, Volker Müssig, Karsten Szendroedi, Julia Yorek, Mark A. Fritsche, Ellen Nawroth, Peter P. Roden, Michael Ziegler, Dan Mol Metab Original Article OBJECTIVE: The lack of effective treatments against diabetic sensorimotor polyneuropathy demands the search for new strategies to combat or prevent the condition. Because reduced magnesium and increased methylglyoxal levels have been implicated in the development of both type 2 diabetes and neuropathic pain, we aimed to assess the putative interplay of both molecules with diabetic sensorimotor polyneuropathy. METHODS: In a cross-sectional study, serum magnesium and plasma methylglyoxal levels were measured in recently diagnosed type 2 diabetes patients with (n = 51) and without (n = 184) diabetic sensorimotor polyneuropathy from the German Diabetes Study baseline cohort. Peripheral nerve function was assessed using nerve conduction velocity and quantitative sensory testing. Human neuroblastoma cells (SH-SY5Y) and mouse dorsal root ganglia cells were used to characterize the neurotoxic effect of methylglyoxal and/or neuroprotective effect of magnesium. RESULTS: Here, we demonstrate that serum magnesium concentration was reduced in recently diagnosed type 2 diabetes patients with diabetic sensorimotor polyneuropathy and inversely associated with plasma methylglyoxal concentration. Magnesium, methylglyoxal, and, importantly, their interaction were strongly interrelated with methylglyoxal-dependent nerve dysfunction and were predictive of changes in nerve function. Magnesium supplementation prevented methylglyoxal neurotoxicity in differentiated SH-SY5Y neuron-like cells due to reduction of intracellular methylglyoxal formation, while supplementation with the divalent cations zinc and manganese had no effect on methylglyoxal neurotoxicity. Furthermore, the downregulation of mitochondrial activity in mouse dorsal root ganglia cells and consequently the enrichment of triosephosphates, the primary source of methylglyoxal, resulted in neurite degeneration, which was completely prevented through magnesium supplementation. CONCLUSIONS: These multifaceted findings reveal a novel putative pathophysiological pathway of hypomagnesemia-induced carbonyl stress leading to neuronal damage and merit further investigations not only for diabetic sensorimotor polyneuropathy but also other neurodegenerative diseases associated with magnesium deficiency and impaired energy metabolism. Elsevier 2020-11-06 /pmc/articles/PMC7704399/ /pubmed/33166742 http://dx.doi.org/10.1016/j.molmet.2020.101114 Text en © 2020 The Authors http://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/).
spellingShingle Original Article
Strom, Alexander
Strassburger, Klaus
Schmuck, Martin
Shevalye, Hanna
Davidson, Eric
Zivehe, Fariba
Bönhof, Gidon
Reimer, Rudolph
Belgardt, Bengt-Frederik
Fleming, Thomas
Biermann, Barbara
Burkart, Volker
Müssig, Karsten
Szendroedi, Julia
Yorek, Mark A.
Fritsche, Ellen
Nawroth, Peter P.
Roden, Michael
Ziegler, Dan
Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title_full Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title_fullStr Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title_full_unstemmed Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title_short Interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
title_sort interaction between magnesium and methylglyoxal in diabetic polyneuropathy and neuronal models
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7704399/
https://www.ncbi.nlm.nih.gov/pubmed/33166742
http://dx.doi.org/10.1016/j.molmet.2020.101114
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