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Mark F Davis

Showing results (31-40 of 57) with videos related to

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Plant Biotechnology Journal|November 18, 2014
Identification and overexpression of gibberellin 2-oxidase (GA2ox) in switchgrass (Panicum virgatum L.) for improved plant architecture and reduced biomass recalcitranceWegi A Wuddineh, Mitra Mazarei, Jiyi Zhang, et al.
Journal of Visualized Experiments : Jove|October 6, 2015
High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar ReleaseStephen R Decker, Robert W Sykes, Geoffrey B Turner, et al.
Chemsuschem|November 25, 2016
An In-Depth Understanding of Biomass Recalcitrance Using Natural Poplar Variants as the FeedstockXianzhi Meng, Yunqiao Pu, Chang Geun Yoo, et al.
Genetics|August 22, 2003
Identification of quantitative trait loci influencing wood property traits in loblolly pine (Pinus taeda L.). III. QTL Verification and candidate gene mappingGarth R Brown, Daniel L Bassoni, Geoffrey P Gill, et al.
Biotechnology for Biofuels|May 2, 2018
Switchgrass (<i>Panicum virgatum</i> L.) promoters for green tissue-specific expression of the <i>MYB4</i> transcription factor for reduced-recalcitrance transgenic switchgrassWusheng Liu, Mitra Mazarei, Rongjian Ye, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 19, 2017
Network-based integration of systems genetics data reveals pathways associated with lignocellulosic biomass accumulation and processingEshchar Mizrachi, Lieven Verbeke, Nanette Christie, et al.
Biotechnology for Biofuels|August 28, 2015
Down-regulation of p-coumaroyl quinate/shikimate 3'-hydroxylase (C3'H) and cinnamate 4-hydroxylase (C4H) genes in the lignin biosynthetic pathway of Eucalyptus urophylla × E. grandis leads to improved sugar releaseRobert W Sykes, Erica L Gjersing, Kirk Foutz, et al.
Biotechnology for Biofuels|January 14, 2016
Biological lignocellulose solubilization: comparative evaluation of biocatalysts and enhancement via cotreatmentJulie M D Paye, Anna Guseva, Sarah K Hammer, et al.
Plant Physiology|November 21, 2009
Genetic resources for maize cell wall biologyBryan W Penning, Charles T Hunter, Reuben Tayengwa, et al.
Plant Biotechnology Journal|April 25, 2017
Transgenic miR156 switchgrass in the field: growth, recalcitrance and rust susceptibilityHolly L Baxter, Mitra Mazarei, Alexandru Dumitrache, et al.
Pageof 6

Showing results (31-40 of 57) with videos related to

Sort By:
Pageof 6
Plant Biotechnology Journal|November 18, 2014
Identification and overexpression of gibberellin 2-oxidase (GA2ox) in switchgrass (Panicum virgatum L.) for improved plant architecture and reduced biomass recalcitranceWegi A Wuddineh, Mitra Mazarei, Jiyi Zhang, et al.
Journal of Visualized Experiments : Jove|October 6, 2015
High-throughput Screening of Recalcitrance Variations in Lignocellulosic Biomass: Total Lignin, Lignin Monomers, and Enzymatic Sugar ReleaseStephen R Decker, Robert W Sykes, Geoffrey B Turner, et al.
Chemsuschem|November 25, 2016
An In-Depth Understanding of Biomass Recalcitrance Using Natural Poplar Variants as the FeedstockXianzhi Meng, Yunqiao Pu, Chang Geun Yoo, et al.
Genetics|August 22, 2003
Identification of quantitative trait loci influencing wood property traits in loblolly pine (Pinus taeda L.). III. QTL Verification and candidate gene mappingGarth R Brown, Daniel L Bassoni, Geoffrey P Gill, et al.
Biotechnology for Biofuels|May 2, 2018
Switchgrass (<i>Panicum virgatum</i> L.) promoters for green tissue-specific expression of the <i>MYB4</i> transcription factor for reduced-recalcitrance transgenic switchgrassWusheng Liu, Mitra Mazarei, Rongjian Ye, et al.
Proceedings of the National Academy of Sciences of the United States of America|January 19, 2017
Network-based integration of systems genetics data reveals pathways associated with lignocellulosic biomass accumulation and processingEshchar Mizrachi, Lieven Verbeke, Nanette Christie, et al.
Biotechnology for Biofuels|August 28, 2015
Down-regulation of p-coumaroyl quinate/shikimate 3'-hydroxylase (C3'H) and cinnamate 4-hydroxylase (C4H) genes in the lignin biosynthetic pathway of Eucalyptus urophylla × E. grandis leads to improved sugar releaseRobert W Sykes, Erica L Gjersing, Kirk Foutz, et al.
Biotechnology for Biofuels|January 14, 2016
Biological lignocellulose solubilization: comparative evaluation of biocatalysts and enhancement via cotreatmentJulie M D Paye, Anna Guseva, Sarah K Hammer, et al.
Plant Physiology|November 21, 2009
Genetic resources for maize cell wall biologyBryan W Penning, Charles T Hunter, Reuben Tayengwa, et al.
Plant Biotechnology Journal|April 25, 2017
Transgenic miR156 switchgrass in the field: growth, recalcitrance and rust susceptibilityHolly L Baxter, Mitra Mazarei, Alexandru Dumitrache, et al.
Pageof 6