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Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides

Despite being initially regarded as a metabolic waste product, lactate is now considered to serve as a primary fuel for the tricarboxylic acid cycle in cancer cells. At the core of lactate metabolism, lactate dehydrogenases (LDHs) catalyze the interconversion of lactate to pyruvate and as such repre...

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Autores principales: Thabault, Léopold, Liberelle, Maxime, Koruza, Katarina, Yildiz, Esra, Joudiou, Nicolas, Messens, Joris, Brisson, Lucie, Wouters, Johan, Sonveaux, Pierre, Frédérick, Raphaël
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8010463/
https://www.ncbi.nlm.nih.gov/pubmed/33607109
http://dx.doi.org/10.1016/j.jbc.2021.100422
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author Thabault, Léopold
Liberelle, Maxime
Koruza, Katarina
Yildiz, Esra
Joudiou, Nicolas
Messens, Joris
Brisson, Lucie
Wouters, Johan
Sonveaux, Pierre
Frédérick, Raphaël
author_facet Thabault, Léopold
Liberelle, Maxime
Koruza, Katarina
Yildiz, Esra
Joudiou, Nicolas
Messens, Joris
Brisson, Lucie
Wouters, Johan
Sonveaux, Pierre
Frédérick, Raphaël
author_sort Thabault, Léopold
collection PubMed
description Despite being initially regarded as a metabolic waste product, lactate is now considered to serve as a primary fuel for the tricarboxylic acid cycle in cancer cells. At the core of lactate metabolism, lactate dehydrogenases (LDHs) catalyze the interconversion of lactate to pyruvate and as such represent promising targets in cancer therapy. However, direct inhibition of the LDH active site is challenging from physicochemical and selectivity standpoints. However, LDHs are obligate tetramers. Thus, targeting the LDH tetrameric interface has emerged as an appealing strategy. In this work, we examine a dimeric construct of truncated human LDH to search for new druggable sites. We report the identification and characterization of a new cluster of interactions in the LDH tetrameric interface. Using nanoscale differential scanning fluorimetry, chemical denaturation, and mass photometry, we identified several residues (E62, D65, L71, and F72) essential for LDH tetrameric stability. Moreover, we report a family of peptide ligands based on this cluster of interactions. We next demonstrated these ligands to destabilize tetrameric LDHs through binding to this new tetrameric interface using nanoscale differential scanning fluorimetry, NMR water–ligand observed via gradient spectroscopy, and microscale thermophoresis. Altogether, this work provides new insights on the LDH tetrameric interface as well as valuable pharmacological tools for the development of LDH tetramer disruptors.
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spelling pubmed-80104632021-04-02 Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides Thabault, Léopold Liberelle, Maxime Koruza, Katarina Yildiz, Esra Joudiou, Nicolas Messens, Joris Brisson, Lucie Wouters, Johan Sonveaux, Pierre Frédérick, Raphaël J Biol Chem Research Article Despite being initially regarded as a metabolic waste product, lactate is now considered to serve as a primary fuel for the tricarboxylic acid cycle in cancer cells. At the core of lactate metabolism, lactate dehydrogenases (LDHs) catalyze the interconversion of lactate to pyruvate and as such represent promising targets in cancer therapy. However, direct inhibition of the LDH active site is challenging from physicochemical and selectivity standpoints. However, LDHs are obligate tetramers. Thus, targeting the LDH tetrameric interface has emerged as an appealing strategy. In this work, we examine a dimeric construct of truncated human LDH to search for new druggable sites. We report the identification and characterization of a new cluster of interactions in the LDH tetrameric interface. Using nanoscale differential scanning fluorimetry, chemical denaturation, and mass photometry, we identified several residues (E62, D65, L71, and F72) essential for LDH tetrameric stability. Moreover, we report a family of peptide ligands based on this cluster of interactions. We next demonstrated these ligands to destabilize tetrameric LDHs through binding to this new tetrameric interface using nanoscale differential scanning fluorimetry, NMR water–ligand observed via gradient spectroscopy, and microscale thermophoresis. Altogether, this work provides new insights on the LDH tetrameric interface as well as valuable pharmacological tools for the development of LDH tetramer disruptors. American Society for Biochemistry and Molecular Biology 2021-02-17 /pmc/articles/PMC8010463/ /pubmed/33607109 http://dx.doi.org/10.1016/j.jbc.2021.100422 Text en © 2021 The Authors https://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 Research Article
Thabault, Léopold
Liberelle, Maxime
Koruza, Katarina
Yildiz, Esra
Joudiou, Nicolas
Messens, Joris
Brisson, Lucie
Wouters, Johan
Sonveaux, Pierre
Frédérick, Raphaël
Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title_full Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title_fullStr Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title_full_unstemmed Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title_short Discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
title_sort discovery of a novel lactate dehydrogenase tetramerization domain using epitope mapping and peptides
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8010463/
https://www.ncbi.nlm.nih.gov/pubmed/33607109
http://dx.doi.org/10.1016/j.jbc.2021.100422
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