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Prisic, Sladjana

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Prisic

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Sladjana

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Prisic, Sladjana

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Now showing 1 - 2 of 2
  • Publication

    Using Bacteria to Determine Protein Kinase Specificity and Predict Target Substrates

    (Public Library of Science, 2012) Chou, Michael; Prisic, Sladjana; Lubner, Joshua M.; Church, George; Husson, Robert; Schwartz, Daniel

    The identification of protein kinase targets remains a significant bottleneck for our understanding of signal transduction in normal and diseased cellular states. Kinases recognize their substrates in part through sequence motifs on substrate proteins, which, to date, have most effectively been elucidated using combinatorial peptide library approaches. Here, we present and demonstrate the ProPeL method for easy and accurate discovery of kinase specificity motifs through the use of native bacterial proteomes that serve as in vivo libraries for thousands of simultaneous phosphorylation reactions. Using recombinant kinases expressed in E. coli followed by mass spectrometry, the approach accurately recapitulated the well-established motif preferences of human basophilic (Protein Kinase A) and acidophilic (Casein Kinase II) kinases. These motifs, derived for PKA and CK II using only bacterial sequence data, were then further validated by utilizing them in conjunction with the scan-x software program to computationally predict known human phosphorylation sites with high confidence.

  • Publication

    Extensive Phosphorylation With Overlapping Specificity by Mycobacterium Tuberculosis Serine/ Threonine Protein Kinases

    (National Academy of Sciences, 2010-04-20) Prisic, Sladjana; Dankwa, Selasi; Schwartz, Dana; Chou, Michael; Locasale, JW; Kang, CM; Bemis, G; Church, George; Steen, Hanno; Husson, RN

    The Mycobacterium tuberculosis genome encodes 11 serine/threonine protein kinases (STPKs) that are structurally related to eukaryotic kinases. To gain insight into the role of Ser/Thr phosphorylation in this major global pathogen, we used a phosphoproteomic approach to carry out an extensive analysis of protein phosphorylation in M. tuberculosis. We identified more than 500 phosphorylation events in 301 proteins that are involved in a broad range of functions. Bioinformatic analysis of quantitative in vitro kinase assays on peptides containing a subset of these phosphorylation sites revealed a dominant motif shared by six of the M. tuberculosis STPKs. Kinase assays on a second set of peptides incorporating targeted substitutions surrounding the phosphoacceptor validated this motif and identified additional residues preferred by individual kinases. Our data provide insight into processes regulated by STPKs in M. tuberculosis and create a resource for understanding how specific phosphorylation events modulate protein activity. The results further provide the potential to predict likely cognate STPKs for newly identified phosphoproteins.