Abstract
Alkaline phosphatase (EC 3.1.3.1) containing m-flurotyrosine has been prepared from E. coli grown in the presence of m-flurotyrosine. The kinetic properties of the m-fluorotyrosine enzyme measured with p-nitrophenylphosphate at pH 8.0 and dinitrophenylphosphate at pH 5.5 are essentially the same as those of normal alkaline phosphatase. However, the ability of the m-fluorotyrosine protein to refold active enzyme after acid denaturation, while unchanged at pH 5.8, was markedly decreased at pH 7.6. This result implies that the tyrosines must be in their protonated form for the protein to refold, reassociate, and take on zinc. The (19)F nuclear magnetic resonance spectrum of m-fluorotyrosine alkaline phosphatase contains resolved resonances corresponding to different chemical environments for each m-fluorotyrosine in the folded protein. This demonstrates that (19)F nuclear magnetic resonance spectroscopy of enzymes specifically labeled with (19)F, even with enzymes as large as alkaline phosphatase (molecular weight, 86,000), will provide a very valuable probe for conformational changes in proteins.
MeSH Terms
Alkaline Phosphatase/analysis,metabolism
Amino Acids/analysis
Escherichia coli/enzymology
Fluorine
Hydrogen-Ion Concentration
Kinetics
Magnetic Resonance Spectroscopy
Protein Conformation
Protein Denaturation
Spectrophotometry, Ultraviolet
Tyrosine
Chemicals
Amino Acids
Fluorine
Tyrosine
Alkaline Phosphatase
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Sykes B D
Weingarten H I
Schlesinger M J
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18 references, click to expand
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