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E Monroe

Showing results (191-200 of 282) with videos related to

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Molecular Ecology|October 4, 2016
The fungal cultivar of leaf-cutter ants produces specific enzymes in response to different plant substratesLily Khadempour, Kristin E Burnum-Johnson, Erin S Baker, et al.
Proteomics|June 6, 2015
Enhancing bottom-up and top-down proteomic measurements with ion mobility separationsErin Shammel Baker, Kristin E Burnum-Johnson, Yehia M Ibrahim, et al.
Scientific Data|August 26, 2015
The Pacific Northwest National Laboratory library of bacterial and archaeal proteomic biodiversitySamuel H Payne, Matthew E Monroe, Christopher C Overall, et al.
Scientific Data|April 22, 2021
A resource of lipidomics and metabolomics data from individuals with undiagnosed diseasesJennifer E Kyle, Kelly G Stratton, Erika M Zink, et al.
Journal of Proteome Research|December 31, 2009
Novel Ser/Thr protein phosphatase 5 (PP5) regulated targets during DNA damage identified by proteomics analysisBryan M Ham, Hemalatha Jayachandran, Feng Yang, et al.
Molecular & Cellular Proteomics : MCP|August 14, 2014
Proteome-wide light/dark modulation of thiol oxidation in cyanobacteria revealed by quantitative site-specific redox proteomicsJia Guo, Amelia Y Nguyen, Ziyu Dai, et al.
Genomics, Proteomics & Bioinformatics|March 19, 2013
Basophile: accurate fragment charge state prediction improves peptide identification ratesDong Wang, Surendra Dasari, Matthew C Chambers, et al.
Bioinformatics (Oxford, England)|May 25, 2010
Machine learning based prediction for peptide drift times in ion mobility spectrometryAnuj R Shah, Khushbu Agarwal, Erin S Baker, et al.
Analytical Chemistry|July 18, 2006
Improved peptide elution time prediction for reversed-phase liquid chromatography-MS by incorporating peptide sequence informationKonstantinos Petritis, Lars J Kangas, Bo Yan, et al.
Applied and Environmental Microbiology|December 4, 2012
Proteome analyses of strains ATCC 51142 and PCC 7822 of the diazotrophic cyanobacterium Cyanothece sp. under culture conditions resulting in enhanced H₂ productionUma K Aryal, Stephen J Callister, Sujata Mishra, et al.
Pageof 29

Showing results (191-200 of 282) with videos related to

Sort By:
Pageof 29
Molecular Ecology|October 4, 2016
The fungal cultivar of leaf-cutter ants produces specific enzymes in response to different plant substratesLily Khadempour, Kristin E Burnum-Johnson, Erin S Baker, et al.
Proteomics|June 6, 2015
Enhancing bottom-up and top-down proteomic measurements with ion mobility separationsErin Shammel Baker, Kristin E Burnum-Johnson, Yehia M Ibrahim, et al.
Scientific Data|August 26, 2015
The Pacific Northwest National Laboratory library of bacterial and archaeal proteomic biodiversitySamuel H Payne, Matthew E Monroe, Christopher C Overall, et al.
Scientific Data|April 22, 2021
A resource of lipidomics and metabolomics data from individuals with undiagnosed diseasesJennifer E Kyle, Kelly G Stratton, Erika M Zink, et al.
Journal of Proteome Research|December 31, 2009
Novel Ser/Thr protein phosphatase 5 (PP5) regulated targets during DNA damage identified by proteomics analysisBryan M Ham, Hemalatha Jayachandran, Feng Yang, et al.
Molecular & Cellular Proteomics : MCP|August 14, 2014
Proteome-wide light/dark modulation of thiol oxidation in cyanobacteria revealed by quantitative site-specific redox proteomicsJia Guo, Amelia Y Nguyen, Ziyu Dai, et al.
Genomics, Proteomics & Bioinformatics|March 19, 2013
Basophile: accurate fragment charge state prediction improves peptide identification ratesDong Wang, Surendra Dasari, Matthew C Chambers, et al.
Bioinformatics (Oxford, England)|May 25, 2010
Machine learning based prediction for peptide drift times in ion mobility spectrometryAnuj R Shah, Khushbu Agarwal, Erin S Baker, et al.
Analytical Chemistry|July 18, 2006
Improved peptide elution time prediction for reversed-phase liquid chromatography-MS by incorporating peptide sequence informationKonstantinos Petritis, Lars J Kangas, Bo Yan, et al.
Applied and Environmental Microbiology|December 4, 2012
Proteome analyses of strains ATCC 51142 and PCC 7822 of the diazotrophic cyanobacterium Cyanothece sp. under culture conditions resulting in enhanced H₂ productionUma K Aryal, Stephen J Callister, Sujata Mishra, et al.
Pageof 29