Abstract
Mammalian cells adapt to hypoxic conditions through a transcriptional response pathway mediated by the hypoxia-inducible factor, HIF. HIF transcriptional activity is suppressed under normoxic conditions by hydroxylation of an asparagine residue within its C-terminal transactivation domain, blocking association with coactivators. Here we show that the protein FIH-1, previously shown to interact with HIF, is an asparaginyl hydroxylase. Like known hydroxylase enzymes, FIH-1 is an Fe(II)-dependent enzyme that uses molecular O(2) to modify its substrate. Together with the recently discovered prolyl hydroxylases that regulate HIF stability, this class of oxygen-dependent enzymes comprises critical regulatory components of the hypoxic response pathway.
Publication types
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Research Support, Non-U.S. Gov't
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Research Support, U.S. Gov't, P.H.S.
MeSH terms
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Amino Acid Sequence
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Animals
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Asparagine / chemistry*
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Basic Helix-Loop-Helix Transcription Factors
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Cell Line
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Glutathione Transferase / metabolism
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Humans
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Hydroxylation
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Hypoxia
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Hypoxia-Inducible Factor 1, alpha Subunit
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Iron / metabolism
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Ketoglutaric Acids / metabolism
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Mass Spectrometry
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Mice
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Mixed Function Oxygenases / metabolism*
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Molecular Sequence Data
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Oxygen / metabolism
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Plasmids / metabolism
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Protein Binding
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Protein Structure, Tertiary
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Recombinant Fusion Proteins / metabolism
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Recombinant Proteins / metabolism
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Repressor Proteins / metabolism*
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Repressor Proteins / physiology*
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Sequence Homology, Amino Acid
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Trans-Activators / metabolism
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Transcription Factors / metabolism
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Transcription, Genetic*
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Transcriptional Activation
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Transfection
Substances
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Basic Helix-Loop-Helix Transcription Factors
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HIF1A protein, human
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Hypoxia-Inducible Factor 1, alpha Subunit
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Ketoglutaric Acids
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Recombinant Fusion Proteins
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Recombinant Proteins
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Repressor Proteins
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Trans-Activators
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Transcription Factors
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endothelial PAS domain-containing protein 1
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Asparagine
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Iron
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Mixed Function Oxygenases
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HIF1AN protein, human
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aspartic acid 2-oxoglutarate-dependent dioxygenase
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Glutathione Transferase
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Oxygen