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Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner

Astrocyte dysfunction is a primary factor in hepatic encephalopathy (HE) impairing neuronal activity under hyperammonemia. In particular, the early events causing ammonia-induced toxicity to astrocytes are not well understood. Using established cellular HE models, we show that mitochondria rapidly u...

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Autores principales: Drews, Leonie, Zimmermann, Marcel, Westhoff, Philipp, Brilhaus, Dominik, Poss, Rebecca E., Bergmann, Laura, Wiek, Constanze, Brenneisen, Peter, Piekorz, Roland P., Mettler-Altmann, Tabea, Weber, Andreas P. M., Reichert, Andreas S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7657470/
https://www.ncbi.nlm.nih.gov/pubmed/32917661
http://dx.doi.org/10.1242/dmm.047134
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author Drews, Leonie
Zimmermann, Marcel
Westhoff, Philipp
Brilhaus, Dominik
Poss, Rebecca E.
Bergmann, Laura
Wiek, Constanze
Brenneisen, Peter
Piekorz, Roland P.
Mettler-Altmann, Tabea
Weber, Andreas P. M.
Reichert, Andreas S.
author_facet Drews, Leonie
Zimmermann, Marcel
Westhoff, Philipp
Brilhaus, Dominik
Poss, Rebecca E.
Bergmann, Laura
Wiek, Constanze
Brenneisen, Peter
Piekorz, Roland P.
Mettler-Altmann, Tabea
Weber, Andreas P. M.
Reichert, Andreas S.
author_sort Drews, Leonie
collection PubMed
description Astrocyte dysfunction is a primary factor in hepatic encephalopathy (HE) impairing neuronal activity under hyperammonemia. In particular, the early events causing ammonia-induced toxicity to astrocytes are not well understood. Using established cellular HE models, we show that mitochondria rapidly undergo fragmentation in a reversible manner upon hyperammonemia. Further, in our analyses, within a timescale of minutes, mitochondrial respiration and glycolysis were hampered, which occurred in a pH-independent manner. Using metabolomics, an accumulation of glucose and numerous amino acids, including branched chain amino acids, was observed. Metabolomic tracking of (15)N-labeled ammonia showed rapid incorporation of (15)N into glutamate and glutamate-derived amino acids. Downregulating human GLUD2 [encoding mitochondrial glutamate dehydrogenase 2 (GDH2)], inhibiting GDH2 activity by SIRT4 overexpression, and supplementing cells with glutamate or glutamine alleviated ammonia-induced inhibition of mitochondrial respiration. Metabolomic tracking of (13)C-glutamine showed that hyperammonemia can inhibit anaplerosis of tricarboxylic acid (TCA) cycle intermediates. Contrary to its classical anaplerotic role, we show that, under hyperammonemia, GDH2 catalyzes the removal of ammonia by reductive amination of α-ketoglutarate, which efficiently and rapidly inhibits the TCA cycle. Overall, we propose a critical GDH2-dependent mechanism in HE models that helps to remove ammonia, but also impairs energy metabolism in mitochondria rapidly.
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spelling pubmed-76574702020-11-12 Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner Drews, Leonie Zimmermann, Marcel Westhoff, Philipp Brilhaus, Dominik Poss, Rebecca E. Bergmann, Laura Wiek, Constanze Brenneisen, Peter Piekorz, Roland P. Mettler-Altmann, Tabea Weber, Andreas P. M. Reichert, Andreas S. Dis Model Mech Research Article Astrocyte dysfunction is a primary factor in hepatic encephalopathy (HE) impairing neuronal activity under hyperammonemia. In particular, the early events causing ammonia-induced toxicity to astrocytes are not well understood. Using established cellular HE models, we show that mitochondria rapidly undergo fragmentation in a reversible manner upon hyperammonemia. Further, in our analyses, within a timescale of minutes, mitochondrial respiration and glycolysis were hampered, which occurred in a pH-independent manner. Using metabolomics, an accumulation of glucose and numerous amino acids, including branched chain amino acids, was observed. Metabolomic tracking of (15)N-labeled ammonia showed rapid incorporation of (15)N into glutamate and glutamate-derived amino acids. Downregulating human GLUD2 [encoding mitochondrial glutamate dehydrogenase 2 (GDH2)], inhibiting GDH2 activity by SIRT4 overexpression, and supplementing cells with glutamate or glutamine alleviated ammonia-induced inhibition of mitochondrial respiration. Metabolomic tracking of (13)C-glutamine showed that hyperammonemia can inhibit anaplerosis of tricarboxylic acid (TCA) cycle intermediates. Contrary to its classical anaplerotic role, we show that, under hyperammonemia, GDH2 catalyzes the removal of ammonia by reductive amination of α-ketoglutarate, which efficiently and rapidly inhibits the TCA cycle. Overall, we propose a critical GDH2-dependent mechanism in HE models that helps to remove ammonia, but also impairs energy metabolism in mitochondria rapidly. The Company of Biologists Ltd 2020-11-04 /pmc/articles/PMC7657470/ /pubmed/32917661 http://dx.doi.org/10.1242/dmm.047134 Text en © 2020. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Drews, Leonie
Zimmermann, Marcel
Westhoff, Philipp
Brilhaus, Dominik
Poss, Rebecca E.
Bergmann, Laura
Wiek, Constanze
Brenneisen, Peter
Piekorz, Roland P.
Mettler-Altmann, Tabea
Weber, Andreas P. M.
Reichert, Andreas S.
Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title_full Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title_fullStr Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title_full_unstemmed Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title_short Ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
title_sort ammonia inhibits energy metabolism in astrocytes in a rapid and glutamate dehydrogenase 2-dependent manner
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7657470/
https://www.ncbi.nlm.nih.gov/pubmed/32917661
http://dx.doi.org/10.1242/dmm.047134
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