A Tautomerase-Null Macrophage Migration-Inhibitory Factor (MIF) Gene Knock-In Mouse Model Reveals That Protein Interactions and Not Enzymatic Activity Mediate MIF-Dependent Growth Regulation
A Tautomerase-Null Macrophage Migration-Inhibitory Factor (MIF) Gene Knock-In Mouse Model Reveals That Protein Interactions and Not Enzymatic Activity Mediate MIF-Dependent Growth Regulation
Macrophage migration-inhibitory factor (MIF) is an upstream regulator of innate immunity and a potential molecular link between inflammation and cancer. The unusual structural homology between MIF and certain tautomerases, which includes both a conserved substrate-binding pocket and a catalytic N-terminal proline (Pro1), has fueled speculation that an enzymatic reaction underlies MIF's biologic function. To address the functional role of the MIF tautomerase activity in vivo, we created a knock-in mouse in which the endogenous mif gene was replaced by one encoding a tautomerase-null, Pro1-->Gly1 MIF protein (P1G-MIF). While P1G-MIF is completely inactive catalytically, it maintains significant, albeit reduced, binding to its cell surface receptor (CD74) and to the intracellular binding protein JAB1/CSN5. P1G-MIF knock-in mice (mif(P1G/P1G)) and cells derived from these mice show a phenotype in assays of growth control and tumor induction that is intermediate between those of the wild type (mif(+/+)) and complete MIF deficiency (mif(-)(/)(-)). These data provide genetic evidence that MIF's intrinsic tautomerase activity is dispensable for this cytokine's growth-regulatory properties and support a role for the N-terminal region in protein-protein interactions.
- Technical University of Munich Germany
- Yale University United States
- Kunming Medical University China (People's Republic of)
- Icahn School of Medicine at Mount Sinai United States
- University Hospital Cologne Germany
Embryonic Development, Fibroblasts, Embryo, Mammalian, Models, Biological, Intramolecular Oxidoreductases, Mice, Cell Transformation, Neoplastic, Genes, ras, Phenotype, Amino Acid Substitution, Gene Targeting, Benzo(a)pyrene, Animals, Gene Knock-In Techniques, Macrophage Migration-Inhibitory Factors, Alleles, Cells, Cultured, Cell Proliferation, Protein Binding, Signal Transduction
Embryonic Development, Fibroblasts, Embryo, Mammalian, Models, Biological, Intramolecular Oxidoreductases, Mice, Cell Transformation, Neoplastic, Genes, ras, Phenotype, Amino Acid Substitution, Gene Targeting, Benzo(a)pyrene, Animals, Gene Knock-In Techniques, Macrophage Migration-Inhibitory Factors, Alleles, Cells, Cultured, Cell Proliferation, Protein Binding, Signal Transduction
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