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Johnathan G Crandall

Showing results (1-10 of 12) with videos related to

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Biorxiv : the Preprint Server for Biology|August 2, 2024
Specialization restricts the evolutionary paths available to yeast sugar transportersJohnathan G Crandall, Xiaofan Zhou, Antonis Rokas, et al.
Molecular Biology and Evolution|November 4, 2024
Specialization Restricts the Evolutionary Paths Available to Yeast Sugar TransportersJohnathan G Crandall, Xiaofan Zhou, Antonis Rokas, et al.
Plos Biology|November 9, 2023
Ploidy evolution in a wild yeast is linked to an interaction between cell type and metabolismJohnathan G Crandall, Kaitlin J Fisher, Trey K Sato, et al.
Genetics|June 20, 2019
Selection, Linkage, and Population Structure Interact To Shape Genetic Variation Among Threespine Stickleback GenomesThomas C Nelson, Johnathan G Crandall, Catherine M Ituarte, et al.
Cell Reports|November 21, 2019
Engineered Chromatin Remodeling Proteins for Precise Nucleosome PositioningDrake A Donovan, Johnathan G Crandall, Orion G B Banks, et al.
Elife|February 12, 2021
Basis of specificity for a conserved and promiscuous chromatin remodeling proteinDrake A Donovan, Johnathan G Crandall, Vi N Truong, et al.
Bioresource Technology|May 11, 2025
pH adjustment increases biofuel production from inhibitory switchgrass hydrolysatesLillian M Barten, Johnathan G Crandall, Dan Xie, et al.
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.
Genetics|February 5, 2026
MAL33 drives natural variation in maltose metabolism in Saccharomyces eubayanusPablo Quintrel, Felipe Muñoz-Guzmán, Pablo Villarreal, et al.
Proceedings of the National Academy of Sciences of the United States of America|June 3, 2025
Convergent expansions of keystone gene families drive metabolic innovation in Saccharomycotina yeastsKyle T David, Joshua G Schraiber, Johnathan G Crandall, et al.
Pageof 2

Showing results (1-10 of 12) with videos related to

Sort By:
Pageof 2
Biorxiv : the Preprint Server for Biology|August 2, 2024
Specialization restricts the evolutionary paths available to yeast sugar transportersJohnathan G Crandall, Xiaofan Zhou, Antonis Rokas, et al.
Molecular Biology and Evolution|November 4, 2024
Specialization Restricts the Evolutionary Paths Available to Yeast Sugar TransportersJohnathan G Crandall, Xiaofan Zhou, Antonis Rokas, et al.
Plos Biology|November 9, 2023
Ploidy evolution in a wild yeast is linked to an interaction between cell type and metabolismJohnathan G Crandall, Kaitlin J Fisher, Trey K Sato, et al.
Genetics|June 20, 2019
Selection, Linkage, and Population Structure Interact To Shape Genetic Variation Among Threespine Stickleback GenomesThomas C Nelson, Johnathan G Crandall, Catherine M Ituarte, et al.
Cell Reports|November 21, 2019
Engineered Chromatin Remodeling Proteins for Precise Nucleosome PositioningDrake A Donovan, Johnathan G Crandall, Orion G B Banks, et al.
Elife|February 12, 2021
Basis of specificity for a conserved and promiscuous chromatin remodeling proteinDrake A Donovan, Johnathan G Crandall, Vi N Truong, et al.
Bioresource Technology|May 11, 2025
pH adjustment increases biofuel production from inhibitory switchgrass hydrolysatesLillian M Barten, Johnathan G Crandall, Dan Xie, et al.
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.
Genetics|February 5, 2026
MAL33 drives natural variation in maltose metabolism in Saccharomyces eubayanusPablo Quintrel, Felipe Muñoz-Guzmán, Pablo Villarreal, et al.
Proceedings of the National Academy of Sciences of the United States of America|June 3, 2025
Convergent expansions of keystone gene families drive metabolic innovation in Saccharomycotina yeastsKyle T David, Joshua G Schraiber, Johnathan G Crandall, et al.
Pageof 2