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N Silverman

Showing results (121-130 of 296) with videos related to

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Molecular and Cellular Biology|June 1, 1997
ADA1, a novel component of the ADA/GCN5 complex, has broader effects than GCN5, ADA2, or ADA3J Horiuchi, N Silverman, B Piña, et al.
Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences|September 11, 2007
Stark spectroscopy of mixed-valence systemsLisa N Silverman, Pakorn Kanchanawong, Thomas P Treynor, et al.
European Journal of Biochemistry|September 21, 2000
Enhancement of catalytic efficiency by the combination of site-specific mutations in a carbonic anhydrase-related proteinB Elleby, B Sjöblom, C Tu, et al.
Journal of the American Chemical Society|June 21, 2001
Bicarbonate as a proton donor in catalysis by Zn(II)- and Co(II)-containing carbonic anhydrasesC Tu, B C Tripp, J G Ferry, et al.
The Journal of Biological Chemistry|August 24, 1999
Characterization of the product-inhibited complex in catalysis by human manganese superoxide dismutaseA S Hearn, C Tu, H S Nick, et al.
Free Radical Biology & Medicine|February 26, 2011
Detection of nitroxyl (HNO) by membrane inlet mass spectrometryMeredith R Cline, Chingkuang Tu, David N Silverman, et al.
The Journal of Biological Chemistry|November 25, 1978
CO2 kinetics in red cell suspensions measured by 18O exchangeC Tu, G C Wynns, R E McMurray, et al.
Genetics|August 22, 2003
Using evolutionary rates to investigate protein functional divergence and conservation. A case study of the carbonic anhydrasesBjarne Knudsen, Michael M Miyamoto, Philip J Laipis, et al.
Journal of the American Chemical Society|May 15, 2009
Elucidation of the proton transport mechanism in human carbonic anhydrase IIC Mark Maupin, Robert McKenna, David N Silverman, et al.
The Journal of Biological Chemistry|May 23, 1997
Catalytic properties of murine carbonic anhydrase IVJ D Hurt, C Tu, P J Laipis, et al.
Pageof 30

Showing results (121-130 of 296) with videos related to

Sort By:
Pageof 30
Molecular and Cellular Biology|June 1, 1997
ADA1, a novel component of the ADA/GCN5 complex, has broader effects than GCN5, ADA2, or ADA3J Horiuchi, N Silverman, B Piña, et al.
Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences|September 11, 2007
Stark spectroscopy of mixed-valence systemsLisa N Silverman, Pakorn Kanchanawong, Thomas P Treynor, et al.
European Journal of Biochemistry|September 21, 2000
Enhancement of catalytic efficiency by the combination of site-specific mutations in a carbonic anhydrase-related proteinB Elleby, B Sjöblom, C Tu, et al.
Journal of the American Chemical Society|June 21, 2001
Bicarbonate as a proton donor in catalysis by Zn(II)- and Co(II)-containing carbonic anhydrasesC Tu, B C Tripp, J G Ferry, et al.
The Journal of Biological Chemistry|August 24, 1999
Characterization of the product-inhibited complex in catalysis by human manganese superoxide dismutaseA S Hearn, C Tu, H S Nick, et al.
Free Radical Biology & Medicine|February 26, 2011
Detection of nitroxyl (HNO) by membrane inlet mass spectrometryMeredith R Cline, Chingkuang Tu, David N Silverman, et al.
The Journal of Biological Chemistry|November 25, 1978
CO2 kinetics in red cell suspensions measured by 18O exchangeC Tu, G C Wynns, R E McMurray, et al.
Genetics|August 22, 2003
Using evolutionary rates to investigate protein functional divergence and conservation. A case study of the carbonic anhydrasesBjarne Knudsen, Michael M Miyamoto, Philip J Laipis, et al.
Journal of the American Chemical Society|May 15, 2009
Elucidation of the proton transport mechanism in human carbonic anhydrase IIC Mark Maupin, Robert McKenna, David N Silverman, et al.
The Journal of Biological Chemistry|May 23, 1997
Catalytic properties of murine carbonic anhydrase IVJ D Hurt, C Tu, P J Laipis, et al.
Pageof 30