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D Eide

Showing results (21-30 of 33) with videos related to

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Proceedings of the National Academy of Sciences of the United States of America|June 17, 1998
Identification of a family of zinc transporter genes from Arabidopsis that respond to zinc deficiencyN Grotz, T Fox, E Connolly, et al.
Plant Molecular Biology|July 8, 1999
The IRT1 protein from Arabidopsis thaliana is a metal transporter with a broad substrate rangeY O Korshunova, D Eide, W G Clark, et al.
Scientific Reports|July 2, 2025
Wounding causes rapid, intense upregulation of glycolytic and fermentative genes and enzymatic activities in harvested sugarbeet rootsKaren K Fugate, Mercedes Morin, John D Eide, et al.
Scientific Reports|November 8, 2024
Sugar beet root susceptibility to storage rots and downregulation of plant defense genes increases with time in storageShyam L Kandel, John D Eide, Andrea Firrincieli, et al.
Microbiology Spectrum|September 23, 2024
Continental-scale insights into the sugarbeet diffusion juice microbiomesMalick Bill, John D Eide, Karen K Fugate, et al.
Cell|January 28, 1994
Molecular characterization of a copper transport protein in S. cerevisiae: an unexpected role for copper in iron transportA Dancis, D S Yuan, D Haile, et al.
Plant Disease|November 23, 2022
Sugar Beet Root Storage Properties Are Unaffected by Cercospora Leaf SpotKaren K Fugate, Mohamad F R Khan, John D Eide, et al.
Journal of Plant Physiology|August 11, 2019
Colocalization of sucrose synthase expression and sucrose storage in the sugarbeet taproot indicates a potential role for sucrose catabolism in sucrose accumulationKaren K Fugate, John D Eide, Daniel N Martins, et al.
Peerj|June 28, 2021
Methyl jasmonate effects on sugarbeet root responses to postharvest dehydrationFernando L Finger, John D Eide, Abbas M Lafta, et al.
Journal of the Science of Food and Agriculture|December 18, 2025
Effects of biotic and abiotic factors on ethanol concentration in stored sugarbeet rootsMercedes Morin, John D Eide, Malick Bill, et al.
Pageof 4

Showing results (21-30 of 33) with videos related to

Sort By:
Pageof 4
Proceedings of the National Academy of Sciences of the United States of America|June 17, 1998
Identification of a family of zinc transporter genes from Arabidopsis that respond to zinc deficiencyN Grotz, T Fox, E Connolly, et al.
Plant Molecular Biology|July 8, 1999
The IRT1 protein from Arabidopsis thaliana is a metal transporter with a broad substrate rangeY O Korshunova, D Eide, W G Clark, et al.
Scientific Reports|July 2, 2025
Wounding causes rapid, intense upregulation of glycolytic and fermentative genes and enzymatic activities in harvested sugarbeet rootsKaren K Fugate, Mercedes Morin, John D Eide, et al.
Scientific Reports|November 8, 2024
Sugar beet root susceptibility to storage rots and downregulation of plant defense genes increases with time in storageShyam L Kandel, John D Eide, Andrea Firrincieli, et al.
Microbiology Spectrum|September 23, 2024
Continental-scale insights into the sugarbeet diffusion juice microbiomesMalick Bill, John D Eide, Karen K Fugate, et al.
Cell|January 28, 1994
Molecular characterization of a copper transport protein in S. cerevisiae: an unexpected role for copper in iron transportA Dancis, D S Yuan, D Haile, et al.
Plant Disease|November 23, 2022
Sugar Beet Root Storage Properties Are Unaffected by Cercospora Leaf SpotKaren K Fugate, Mohamad F R Khan, John D Eide, et al.
Journal of Plant Physiology|August 11, 2019
Colocalization of sucrose synthase expression and sucrose storage in the sugarbeet taproot indicates a potential role for sucrose catabolism in sucrose accumulationKaren K Fugate, John D Eide, Daniel N Martins, et al.
Peerj|June 28, 2021
Methyl jasmonate effects on sugarbeet root responses to postharvest dehydrationFernando L Finger, John D Eide, Abbas M Lafta, et al.
Journal of the Science of Food and Agriculture|December 18, 2025
Effects of biotic and abiotic factors on ethanol concentration in stored sugarbeet rootsMercedes Morin, John D Eide, Malick Bill, et al.
Pageof 4