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Biorxiv : the Preprint Server for Biology|January 20, 2025
pH adjustment increases biofuel production from inhibitory switchgrass hydrolysatesLillian M Barten, Johnathan G Crandall, Dan Xie, et al.
Applied and Environmental Microbiology|September 10, 2005
Whole-genome shotgun optical mapping of Rhodospirillum rubrumSusan Reslewic, Shiguo Zhou, Mike Place, et al.
Journal of Experimental Botany|December 19, 2025
Developmentally-specific physiological and metabolic responses support drought resilience in switchgrass and constrains biofuel yieldBinod Basyal, Xingxing Li, V J Pargulski, et al.
Biotechnology for Biofuels and Bioproducts|June 24, 2022
Utilization of lignocellulosic biofuel conversion residue by diverse microorganismsCaryn S Wadler, John F Wolters, Nathaniel W Fortney, et al.
Applied and Environmental Microbiology|March 6, 2012
Complex physiology and compound stress responses during fermentation of alkali-pretreated corn stover hydrolysate by an Escherichia coli ethanologenMichael S Schwalbach, David H Keating, Mary Tremaine, et al.
Biotechnology for Biofuels|November 10, 2016
Inhibition of microbial biofuel production in drought-stressed switchgrass hydrolysateRebecca Garlock Ong, Alan Higbee, Scott Bottoms, et al.
Bioresource Technology|September 4, 2013
Effect of storage conditions on the stability and fermentability of enzymatic lignocellulosic hydrolysateMingjie Jin, William Bothfeld, Samantha Austin, et al.
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