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G Withers

Showing results (31-40 of 487) with videos related to

Pageof 49
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Biochemistry|October 20, 1992
Mechanism of Agrobacterium beta-glucosidase: kinetic studiesJ B Kempton, S G Withers
The Biochemical Journal|June 9, 2004
Glycosynthase-catalysed formation of modified polysaccharide microstructures Andrew G Watts, Stephen G Withers
RSC Chemical Biology|July 5, 2024
Carbohydrate-active enzyme (CAZyme) discovery and engineering <i>via</i> (Ultra)high-throughput screeningJacob F Wardman, Stephen G Withers
Carbohydrate Research|August 4, 2018
Synthesis of azido-deoxy and amino-deoxy glycosides and glycosyl fluorides for screening of glycosidase libraries and assembly of substituted glycosidesHong-Ming Chen, Stephen G Withers
Journal of the American Chemical Society|July 25, 2017
Glycosyl Cations versus Allylic Cations in Spontaneous and Enzymatic HydrolysisPhillip M Danby, Stephen G Withers
Chemical Communications (Cambridge, England)|October 19, 2004
Mechanistic analogies amongst carbohydrate modifying enzymesLuke L Lairson, Stephen G Withers
Biochemistry|January 21, 1992
Binding energy and catalysis: deoxyfluoro sugars as probes of hydrogen bonding in phosphoglucomutaseM D Percival, S G Withers
The Biochemical Journal|November 1, 1978
The necessity of magnesium cation for acid assistance aglycone departure in catalysis by Escherichia coli (lacZ) beta-galactosidaseM L Sinnott, S G Withers
Accounts of Chemical Research|March 29, 2000
Glycosidase mechanisms: anatomy of a finely tuned catalystD L Zechel, S G Withers
Organic & Biomolecular Chemistry|March 13, 2014
Phosphodiesters serve as potentially tunable aglycones for fluoro sugar inactivators of retaining β-glycosidasesB P Rempel, S G Withers
Pageof 49

Showing results (31-40 of 487) with videos related to

Sort By:
Pageof 49
Biochemistry|October 20, 1992
Mechanism of Agrobacterium beta-glucosidase: kinetic studiesJ B Kempton, S G Withers
The Biochemical Journal|June 9, 2004
Glycosynthase-catalysed formation of modified polysaccharide microstructures Andrew G Watts, Stephen G Withers
RSC Chemical Biology|July 5, 2024
Carbohydrate-active enzyme (CAZyme) discovery and engineering <i>via</i> (Ultra)high-throughput screeningJacob F Wardman, Stephen G Withers
Carbohydrate Research|August 4, 2018
Synthesis of azido-deoxy and amino-deoxy glycosides and glycosyl fluorides for screening of glycosidase libraries and assembly of substituted glycosidesHong-Ming Chen, Stephen G Withers
Journal of the American Chemical Society|July 25, 2017
Glycosyl Cations versus Allylic Cations in Spontaneous and Enzymatic HydrolysisPhillip M Danby, Stephen G Withers
Chemical Communications (Cambridge, England)|October 19, 2004
Mechanistic analogies amongst carbohydrate modifying enzymesLuke L Lairson, Stephen G Withers
Biochemistry|January 21, 1992
Binding energy and catalysis: deoxyfluoro sugars as probes of hydrogen bonding in phosphoglucomutaseM D Percival, S G Withers
The Biochemical Journal|November 1, 1978
The necessity of magnesium cation for acid assistance aglycone departure in catalysis by Escherichia coli (lacZ) beta-galactosidaseM L Sinnott, S G Withers
Accounts of Chemical Research|March 29, 2000
Glycosidase mechanisms: anatomy of a finely tuned catalystD L Zechel, S G Withers
Organic & Biomolecular Chemistry|March 13, 2014
Phosphodiesters serve as potentially tunable aglycones for fluoro sugar inactivators of retaining β-glycosidasesB P Rempel, S G Withers
Pageof 49