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Biometals : an International Journal on the Role of Metal Ions in Biology, Biochemistry, and Medicine|February 8, 2002
Fluorescence-based biosensing of zinc using carbonic anhydraseC A Fierke, R B ThompsonAnalytical Chemistry|June 10, 2011
Expanded dynamic range of free zinc ion determination by fluorescence anisotropyR B Thompson, B P Maliwal, C A FierkeAnalytical Biochemistry|January 27, 1999
Selectivity and sensitivity of fluorescence lifetime-based metal ion biosensing using a carbonic anhydrase transducerR B Thompson, B P Maliwal, C A FierkeAnalytical Chemistry|December 9, 1998
Determination of picomolar concentrations of metal ions using fluorescence anisotropy: biosensing with a "reagentless" enzyme transducerR B Thompson, B P Maliwal, V L Feliccia, et al.Journal of Neuroscience Methods|March 8, 2000
Fluorescence microscopy of stimulated Zn(II) release from organotypic cultures of mammalian hippocampus using a carbonic anhydrase-based biosensor systemR B Thompson, W O Whetsell, B P Maliwal, et al.Current Opinion in Chemical Biology|September 28, 2000
Ribonuclease P: a ribonucleoprotein enzymeJ C Kurz, C A FierkeThe Journal of Biological Chemistry|August 15, 1997
Selection of carbonic anhydrase variants displayed on phage. Aromatic residues in zinc binding site enhance metal affinity and equilibration kineticsJ A Hunt, C A FierkeThe Journal of Biological Chemistry|January 15, 1993
Determinants of catalytic activity and stability of carbonic anhydrase II as revealed by random mutagenesisJ F Krebs, C A FierkeThe Journal of Biological Chemistry|June 15, 1986
Two functional domains of coenzyme A activate catalysis by coenzyme A transferase. Pantetheine and adenosine 3'-phosphate 5'-diphosphateC A Fierke, W P JencksBiochemistry|January 24, 1989
Probing the functional role of threonine-113 of Escherichia coli dihydrofolate reductase for its effect on turnover efficiency, catalysis, and bindingC A Fierke, S J BenkovicPageof 14