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John H Grabber

Showing results (11-20 of 30) with videos related to

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Comptes Rendus Biologies|July 17, 2004
Genetic and molecular basis of grass cell-wall degradability. I. Lignin-cell wall matrix interactionsJohn H Grabber, John Ralph, Catherine Lapierre, et al.
Journal of Agricultural and Food Chemistry|April 18, 2002
Chemical composition and enzymatic degradability of xylem and nonxylem walls isolated from alfalfa internodesJohn H Grabber, Michael T Panciera, Ronald D Hatfield
Journal of Agricultural and Food Chemistry|February 7, 2013
Acetone enhances the direct analysis of procyanidin- and prodelphinidin-based condensed tannins in lotus species by the butanol-HCl-iron assayJohn H Grabber, Wayne E Zeller, Irene Mueller-Harvey
Biomacromolecules|March 18, 2011
Fluorescence-tagged monolignols: synthesis, and application to studying in vitro lignificationYuki Tobimatsu, Christy L Davidson, John H Grabber, et al.
Mutation Research|May 4, 2007
Model studies of lignified fiber fermentation by human fecal microbiota and its impact on heterocyclic aromatic amine adsorptionCarola Funk, Annett Braune, John H Grabber, et al.
Biomacromolecules|August 21, 2008
Coniferyl ferulate incorporation into lignin enhances the alkaline delignification and enzymatic degradation of cell wallsJohn H Grabber, Ronald D Hatfield, Fachuang Lu, et al.
Biotechnology for Biofuels|August 15, 2012
Epigallocatechin gallate incorporation into lignin enhances the alkaline delignification and enzymatic saccharification of cell wallsSasikumar Elumalai, Yuki Tobimatsu, John H Grabber, et al.
Journal of Agricultural and Food Chemistry|February 27, 2007
Moderate ferulate and diferulate levels do not impede maize cell wall degradation by human intestinal microbiotaCarola Funk, Annett Braune, John H Grabber, et al.
Comptes Rendus Biologies|July 17, 2004
Genetic and molecular basis of grass cell-wall biosynthesis and degradability. III. Towards a forage grass ideotypeJohn Ralph, Sabine Guillaumie, John H Grabber, et al.
BMC Plant Biology|June 23, 2010
Identifying new lignin bioengineering targets: 1. Monolignol-substitute impacts on lignin formation and cell wall fermentabilityJohn H Grabber, Paul F Schatz, Hoon Kim, et al.
Pageof 3

Showing results (11-20 of 30) with videos related to

Sort By:
Pageof 3
Comptes Rendus Biologies|July 17, 2004
Genetic and molecular basis of grass cell-wall degradability. I. Lignin-cell wall matrix interactionsJohn H Grabber, John Ralph, Catherine Lapierre, et al.
Journal of Agricultural and Food Chemistry|April 18, 2002
Chemical composition and enzymatic degradability of xylem and nonxylem walls isolated from alfalfa internodesJohn H Grabber, Michael T Panciera, Ronald D Hatfield
Journal of Agricultural and Food Chemistry|February 7, 2013
Acetone enhances the direct analysis of procyanidin- and prodelphinidin-based condensed tannins in lotus species by the butanol-HCl-iron assayJohn H Grabber, Wayne E Zeller, Irene Mueller-Harvey
Biomacromolecules|March 18, 2011
Fluorescence-tagged monolignols: synthesis, and application to studying in vitro lignificationYuki Tobimatsu, Christy L Davidson, John H Grabber, et al.
Mutation Research|May 4, 2007
Model studies of lignified fiber fermentation by human fecal microbiota and its impact on heterocyclic aromatic amine adsorptionCarola Funk, Annett Braune, John H Grabber, et al.
Biomacromolecules|August 21, 2008
Coniferyl ferulate incorporation into lignin enhances the alkaline delignification and enzymatic degradation of cell wallsJohn H Grabber, Ronald D Hatfield, Fachuang Lu, et al.
Biotechnology for Biofuels|August 15, 2012
Epigallocatechin gallate incorporation into lignin enhances the alkaline delignification and enzymatic saccharification of cell wallsSasikumar Elumalai, Yuki Tobimatsu, John H Grabber, et al.
Journal of Agricultural and Food Chemistry|February 27, 2007
Moderate ferulate and diferulate levels do not impede maize cell wall degradation by human intestinal microbiotaCarola Funk, Annett Braune, John H Grabber, et al.
Comptes Rendus Biologies|July 17, 2004
Genetic and molecular basis of grass cell-wall biosynthesis and degradability. III. Towards a forage grass ideotypeJohn Ralph, Sabine Guillaumie, John H Grabber, et al.
BMC Plant Biology|June 23, 2010
Identifying new lignin bioengineering targets: 1. Monolignol-substitute impacts on lignin formation and cell wall fermentabilityJohn H Grabber, Paul F Schatz, Hoon Kim, et al.
Pageof 3