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Gavin Pell

Showing results (1-10 of 11) with videos related to

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Journal of Molecular Biology|March 3, 2005
Structure of a mannan-specific family 35 carbohydrate-binding module: evidence for significant conformational changes upon ligand bindingRichard B Tunnicliffe, David N Bolam, Gavin Pell, et al.
Chemical Communications (Cambridge, England)|May 15, 2003
Distortion of a cellobio-derived isofagomine highlights the potential conformational itinerary of inverting beta-glucosidasesAnnabelle Varrot, James Macdonald, Robert V Stick, et al.
Biochemistry|August 6, 2003
Importance of hydrophobic and polar residues in ligand binding in the family 15 carbohydrate-binding module from Cellvibrio japonicus Xyn10CGavin Pell, Michael P Williamson, Christopher Walters, et al.
The Journal of Biological Chemistry|March 9, 2004
X4 modules represent a new family of carbohydrate-binding modules that display novel propertiesDavid N Bolam, Hefang Xie, Gavin Pell, et al.
The Biochemical Journal|January 14, 2003
The modular architecture of Cellvibrio japonicus mannanases in glycoside hydrolase families 5 and 26 points to differences in their role in mannan degradationDeborah Hogg, Gavin Pell, Paul Dupree, et al.
The Journal of Biological Chemistry|December 13, 2003
Structural and biochemical analysis of Cellvibrio japonicus xylanase 10C: how variation in substrate-binding cleft influences the catalytic profile of family GH-10 xylanasesGavin Pell, Lóránd Szabo, Simon J Charnock, et al.
The Journal of Biological Chemistry|April 13, 2005
Mycobacterium tuberculosis strains possess functional cellulasesAnnabelle Varrot, Sabine Leydier, Gavin Pell, et al.
The Journal of Biological Chemistry|September 29, 2004
The use of forced protein evolution to investigate and improve stability of family 10 xylanases. The production of Ca2+-independent stable xylanasesSimon R Andrews, Edward J Taylor, Gavin Pell, et al.
Journal of Molecular Biology|July 5, 2003
Multifunctional xylooligosaccharide/cephalosporin C deacetylase revealed by the hexameric structure of the Bacillus subtilis enzyme at 1.9A resolutionFlorence Vincent, Simon J Charnock, Koen H G Verschueren, et al.
The Journal of Biological Chemistry|December 12, 2003
The mechanisms by which family 10 glycoside hydrolases bind decorated substratesGavin Pell, Edward J Taylor, Tracey M Gloster, et al.
Pageof 2

Showing results (1-10 of 11) with videos related to

Sort By:
Pageof 2
Journal of Molecular Biology|March 3, 2005
Structure of a mannan-specific family 35 carbohydrate-binding module: evidence for significant conformational changes upon ligand bindingRichard B Tunnicliffe, David N Bolam, Gavin Pell, et al.
Chemical Communications (Cambridge, England)|May 15, 2003
Distortion of a cellobio-derived isofagomine highlights the potential conformational itinerary of inverting beta-glucosidasesAnnabelle Varrot, James Macdonald, Robert V Stick, et al.
Biochemistry|August 6, 2003
Importance of hydrophobic and polar residues in ligand binding in the family 15 carbohydrate-binding module from Cellvibrio japonicus Xyn10CGavin Pell, Michael P Williamson, Christopher Walters, et al.
The Journal of Biological Chemistry|March 9, 2004
X4 modules represent a new family of carbohydrate-binding modules that display novel propertiesDavid N Bolam, Hefang Xie, Gavin Pell, et al.
The Biochemical Journal|January 14, 2003
The modular architecture of Cellvibrio japonicus mannanases in glycoside hydrolase families 5 and 26 points to differences in their role in mannan degradationDeborah Hogg, Gavin Pell, Paul Dupree, et al.
The Journal of Biological Chemistry|December 13, 2003
Structural and biochemical analysis of Cellvibrio japonicus xylanase 10C: how variation in substrate-binding cleft influences the catalytic profile of family GH-10 xylanasesGavin Pell, Lóránd Szabo, Simon J Charnock, et al.
The Journal of Biological Chemistry|April 13, 2005
Mycobacterium tuberculosis strains possess functional cellulasesAnnabelle Varrot, Sabine Leydier, Gavin Pell, et al.
The Journal of Biological Chemistry|September 29, 2004
The use of forced protein evolution to investigate and improve stability of family 10 xylanases. The production of Ca2+-independent stable xylanasesSimon R Andrews, Edward J Taylor, Gavin Pell, et al.
Journal of Molecular Biology|July 5, 2003
Multifunctional xylooligosaccharide/cephalosporin C deacetylase revealed by the hexameric structure of the Bacillus subtilis enzyme at 1.9A resolutionFlorence Vincent, Simon J Charnock, Koen H G Verschueren, et al.
The Journal of Biological Chemistry|December 12, 2003
The mechanisms by which family 10 glycoside hydrolases bind decorated substratesGavin Pell, Edward J Taylor, Tracey M Gloster, et al.
Pageof 2