Functional Proteomics

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· ACS In Focus Bók 22 · American Chemical Society
Rafbók
100
Síður
Gjaldgeng
Einkunnir og umsagnir eru ekki staðfestar  Nánar

Um þessa rafbók

The fundamental importance of proteins in cellular activity and drug discovery combined with the enormous complexity of proteoforms requires wide-ranging strategies to characterize the proteome at a system-wide scale. Because of its speed, sensitivity, and reliability, mass spectrometry–based proteomics technology has become a critical platform for systematic analysis of proteins. Functional Proteomics covers the basic knowledge about and summarizes some of the latest developments in this field as an introduction for anyone interested in applying functional proteomics strategies to study biological pathways and diseases.

Um höfundinn

Luke Erber is a scientist studying epigenetics and post-translational modifications. He received his B.Sc. in Biology and Chemistry from Concordia University Chicago and his Ph.D. in Biochemistry with Dr. Yue Chen from the University of Minnesota in 2019. He is currently an NIH-funded Training Research Educators in Minnesota Postdoctoral Fellow with Dr. Natalia Tretyakova and Dr. William Pomerantz at the University of Minnesota. He is interested in applying quantitative mass spectrometry to study DNA damage pathways and epigenetic regulators of histone modifications.

Yue Chen is currently an Associate Professor in the Department of Biochemistry, Molecular Biology and Biophysics at the University of Minnesota, Twin Cities. He earned his B.Sc. in Chemistry from Peking University in China and his Ph.D. in Biochemistry with Dr. Yingming Zhao at the University of Texas, Arlington, in 2009. After a postdoctoral training at the University of Chicago in the field of proteomic analysis of lysine short-chain acylations, he began his faculty position at the University of Minnesota in 2013. He is interested in applying functional proteomic strategies to discover and biochemically characterize metabolic-sensing posttranslational modification pathways in protein homeostasis and epigenetic regulation. His work has revealed new oxygen-sensing proline hydroxylation pathways and hypoxia-mediated DNA damage responses. He has developed chemical proteomics strategies for system-wide, site-specific quantification of lysine acetylation and ubiquitination stoichiometries. He has authored more than 70 peer-reviewed publications and received an NIH MIRA Award as well as an NSF CAREER Award.

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