Crystal structures of human and mouse ketohexokinase provide a structural basis for species- and isoform-selective inhibitor design

A molecular understanding of the proteins involved in fructose metabolism is essential for controlling the current spread of fructose-related obesity, diabetes and related adverse metabolic states in Western populations. Fructose catabolism starts with the phosphorylation of D-fructose to fructose 1...

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Veröffentlicht in:Acta crystallographica. Section D, Biological crystallography. Biological crystallography., 2023-10, Vol.79 (10), p.871-880
Hauptverfasser: Ebenhoch, Rebecca, Bauer, Margit, Romig, Helmut, Gottschling, Dirk, Kley, Jörg Thomas, Heine, Niklas, Weber, Alexander, Uphues, Ingo, Nar, Herbert, Pautsch, Alexander
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Sprache:eng
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Zusammenfassung:A molecular understanding of the proteins involved in fructose metabolism is essential for controlling the current spread of fructose-related obesity, diabetes and related adverse metabolic states in Western populations. Fructose catabolism starts with the phosphorylation of D-fructose to fructose 1-phosphate by ketohexokinase (KHK). KHK exists in two alternatively spliced isoforms: the hepatic and intestinal isoform KHK-C and the peripheral isoform KHK-A. Here, the structure of apo murine KHK (mKHK), which differs from structures of human KHK in overall conformation, is reported. An isoform-selective ligand, which offers a 50-fold higher potency on mKHK and human KHK-A compared with KHK-C, is further characterized. In mKHK, large-scale conformational changes are observed upon ligand binding. The structures suggest a combined strategy for the design of species- and isoform-selective KHK inhibitors.
ISSN:2059-7983
0907-4449
2059-7983
1399-0047
DOI:10.1107/S2059798323006137