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Chemical Research in Toxicology|October 23, 2009
A large-scale quantitative proteomic approach to identifying sulfur mustard-induced protein phosphorylation cascadesPatrick A Everley, James F DillmanToxicology Letters|August 17, 2010
Genomics and proteomics in chemical warfare agent research: recent studies and future applicationsPatrick A Everley, James F DillmanAnnals of the New York Academy of Sciences|December 31, 2005
Proteomics in tumor progression and metastasisPatrick A Everley, Bruce R ZetterMolecular & Cellular Proteomics : MCP|April 23, 2004
Quantitative cancer proteomics: stable isotope labeling with amino acids in cell culture (SILAC) as a tool for prostate cancer researchPatrick A Everley, Jeroen Krijgsveld, Bruce R Zetter, et al.Journal of Proteome Research|September 19, 2008
The impact of peptide abundance and dynamic range on stable-isotope-based quantitative proteomic analysesCorey E Bakalarski, Joshua E Elias, Judit Villén, et al.Molecular & Cellular Proteomics : MCP|July 14, 2007
Assessing enzyme activities using stable isotope labeling and mass spectrometryPatrick A Everley, Carlos A Gartner, Wilhelm Haas, et al.Journal of Proteome Research|May 6, 2006
Enhanced analysis of metastatic prostate cancer using stable isotopes and high mass accuracy instrumentationPatrick A Everley, Corey E Bakalarski, Joshua E Elias, et al.Journal of Proteome Research|April 30, 2010
Quantitative proteomics analysis reveals molecular networks regulated by epidermal growth factor receptor level in head and neck cancerWei Yang, Quan Cai, Vivian W Y Lui, et al.Nature Communications|July 24, 2020
Rapid, deep and precise profiling of the plasma proteome with multi-nanoparticle protein coronaJohn E Blume, William C Manning, Gregory Troiano, et al.Proceedings of the National Academy of Sciences of the United States of America|March 11, 2022
Engineered nanoparticles enable deep proteomics studies at scale by leveraging tunable nano-bio interactionsShadi Ferdosi, Behzad Tangeysh, Tristan R Brown, et al.Pageof 1