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Robert Landick

Showing results (161-170 of 168) with videos related to

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Proceedings of the National Academy of Sciences of the United States of America|March 17, 2015
Plant-derived antifungal agent poacic acid targets β-1,3-glucanJeff S Piotrowski, Hiroki Okada, Fachuang Lu, et al.
Biotechnology for Biofuels|May 11, 2018
Complete genome sequence and the expression pattern of plasmids of the model ethanologen <i>Zymomonas mobilis</i> ZM4 and its xylose-utilizing derivatives 8b and 2032Shihui Yang, Jessica M Vera, Jeff Grass, et al.
Nature|February 1, 2023
Structural basis for substrate selection by the SARS-CoV-2 replicaseBrandon F Malone, Jason K Perry, Paul Dominic B Olinares, et al.
Frontiers in Microbiology|September 2, 2014
Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxificationDavid H Keating, Yaoping Zhang, Irene M Ong, et al.
Biotechnology for Biofuels|November 20, 2015
Controlling microbial contamination during hydrolysis of AFEX-pretreated corn stover and switchgrass: effects on hydrolysate composition, microbial response and fermentationJose Serate, Dan Xie, Edward Pohlmann, et al.
Plos Genetics|October 15, 2016
Directed Evolution Reveals Unexpected Epistatic Interactions That Alter Metabolic Regulation and Enable Anaerobic Xylose Use by Saccharomyces cerevisiaeTrey K Sato, Mary Tremaine, Lucas S Parreiras, et al.
Plos Genetics|November 10, 2016
Correction: Directed Evolution Reveals Unexpected Epistatic Interactions That Alter Metabolic Regulation and Enable Anaerobic Xylose Use by Saccharomyces cerevisiaeTrey K Sato, Mary Tremaine, Lucas S Parreiras, et al.
Plos One|September 16, 2014
Engineering and two-stage evolution of a lignocellulosic hydrolysate-tolerant Saccharomyces cerevisiae strain for anaerobic fermentation of xylose from AFEX pretreated corn stoverLucas S Parreiras, Rebecca J Breuer, Ragothaman Avanasi Narasimhan, et al.
Pageof 17

Showing results (161-170 of 168) with videos related to

Sort By:
Pageof 17
You have reached the last page of results.This site can display upto 168 results.
Proceedings of the National Academy of Sciences of the United States of America|March 17, 2015
Plant-derived antifungal agent poacic acid targets β-1,3-glucanJeff S Piotrowski, Hiroki Okada, Fachuang Lu, et al.
Biotechnology for Biofuels|May 11, 2018
Complete genome sequence and the expression pattern of plasmids of the model ethanologen <i>Zymomonas mobilis</i> ZM4 and its xylose-utilizing derivatives 8b and 2032Shihui Yang, Jessica M Vera, Jeff Grass, et al.
Nature|February 1, 2023
Structural basis for substrate selection by the SARS-CoV-2 replicaseBrandon F Malone, Jason K Perry, Paul Dominic B Olinares, et al.
Frontiers in Microbiology|September 2, 2014
Aromatic inhibitors derived from ammonia-pretreated lignocellulose hinder bacterial ethanologenesis by activating regulatory circuits controlling inhibitor efflux and detoxificationDavid H Keating, Yaoping Zhang, Irene M Ong, et al.
Biotechnology for Biofuels|November 20, 2015
Controlling microbial contamination during hydrolysis of AFEX-pretreated corn stover and switchgrass: effects on hydrolysate composition, microbial response and fermentationJose Serate, Dan Xie, Edward Pohlmann, et al.
Plos Genetics|October 15, 2016
Directed Evolution Reveals Unexpected Epistatic Interactions That Alter Metabolic Regulation and Enable Anaerobic Xylose Use by Saccharomyces cerevisiaeTrey K Sato, Mary Tremaine, Lucas S Parreiras, et al.
Plos Genetics|November 10, 2016
Correction: Directed Evolution Reveals Unexpected Epistatic Interactions That Alter Metabolic Regulation and Enable Anaerobic Xylose Use by Saccharomyces cerevisiaeTrey K Sato, Mary Tremaine, Lucas S Parreiras, et al.
Plos One|September 16, 2014
Engineering and two-stage evolution of a lignocellulosic hydrolysate-tolerant Saccharomyces cerevisiae strain for anaerobic fermentation of xylose from AFEX pretreated corn stoverLucas S Parreiras, Rebecca J Breuer, Ragothaman Avanasi Narasimhan, et al.
Pageof 17