Center-Authored Papers
Filters: Author is Whiteaker, Jeffrey R [Clear All Filters]
Anti-peptide monoclonal antibodies generated for immuno-multiple reaction monitoring-mass spectrometry assays have a high probability of supporting Western blot and ELISA.. Molecular & cellular proteomics : MCP. 14(2):382-98. Abstract
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2015.
Antibody-Coupled Magnetic Beads Can Be Reused in Immuno-MRM Assays To Reduce Cost and Extend Antibody Supply.. Journal of proteome research. Abstract
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2015.
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2015.
An automated and multiplexed method for high throughput peptide immunoaffinity enrichment and multiple reaction monitoring mass spectrometry-based quantification of protein biomarkers.. Molecular & cellular proteomics : MCP. 9(1):184-96. Abstract
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2010.
Automated screening of monoclonal antibodies for SISCAPA assays using a magnetic bead processor and liquid chromatography-selected reaction monitoring-mass spectrometry.. Journal of immunological methods. 353(1-2):49-61. Abstract
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2010.
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2016.
CPTAC Assay Portal: a repository of targeted proteomic assays.. Nature methods. 11(7):703-4.
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2014.
Demonstrating the feasibility of large-scale development of standardized assays to quantify human proteins.. Nature methods. 11(2):149-55. Abstract
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2014.
Effect of collision energy optimization on the measurement of peptides by selected reaction monitoring (SRM) mass spectrometry.. Analytical chemistry. 82(24):10116-24. Abstract
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2010.
Evaluation of large scale quantitative proteomic assay development using peptide affinity-based mass spectrometry.. Molecular & cellular proteomics : MCP. 10(4):M110.005645. Abstract
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2011.
The evolving role of mass spectrometry in cancer biomarker discovery.. Cancer biology & therapy. 8(12):1083-94. Abstract
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2009.
High-Affinity Recombinant Antibody Fragments (Fabs) Can Be Applied in Peptide Enrichment Immuno-MRM Assays.. Journal of proteome research. 13(4):2187-2196. Abstract
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2014.
Immobilized metal affinity chromatography coupled to multiple reaction monitoring enables reproducible quantification of phospho-signaling.. Molecular & cellular proteomics : MCP. Abstract
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2015.
Interlaboratory evaluation of automated, multiplexed peptide immunoaffinity enrichment coupled to multiple reaction monitoring mass spectrometry for quantifying proteins in plasma.. Molecular & cellular proteomics : MCP. 11(6):M111.013854. Abstract
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2012.
Interlaboratory study characterizing a yeast performance standard for benchmarking LC-MS platform performance.. Molecular & cellular proteomics : MCP. 9(2):242-54. Abstract
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2010.
Multi-site assessment of the precision and reproducibility of multiple reaction monitoring-based measurements of proteins in plasma.. Nature biotechnology. 27(7):633-41. Abstract
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2009.
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2012.
Optimized Protocol for Quantitative Multiple Reaction Monitoring-Based Proteomic Analysis of Formalin-Fixed, Paraffin-Embedded Tissues.. Journal of proteome research. 15(8):2717-2728. Abstract
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2016.
Panorama: A Targeted Proteomics Knowledge Base.. Journal of proteome research. Abstract
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2014.
Peptide immunoaffinity enrichment and targeted mass spectrometry enables multiplex, quantitative pharmacodynamic studies of phospho-signaling.. Molecular & cellular proteomics : MCP. Abstract
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2015.
Peptide immunoaffinity enrichment coupled with mass spectrometry for peptide and protein quantification.. Clinics in laboratory medicine. 31(3):385-96.
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2011.
Peptide Immunoaffinity Enrichment with Targeted Mass Spectrometry: Application to Quantification of ATM Kinase Phospho-Signaling.. Methods in molecular biology (Clifton, N.J.). 1599:197-213. Abstract
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2017.
Performance metrics for liquid chromatography-tandem mass spectrometry systems in proteomics analyses.. Molecular & cellular proteomics : MCP. 9(2):225-41. Abstract
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2010.
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2018.
Proteome and transcriptome profiles of a Her2/Neu-driven mouse model of breast cancer.. Proteomics. Clinical applications. 5(3-4):179-88. Abstract
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