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      Collision-Induced Unfolding Reveals Unique Fingerprints for Remote Protein Interaction Sites in the KIX Regulation Domain

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          Abstract

          The kinase-inducible domain (KIX) of the transcriptional coactivator CBP binds multiple transcriptional regulators through two allosterically-connected sites. Establishing a method for observing activator-specific KIX conformations would facilitate the discovery of drug-like molecules that capture specific conformations and further elucidate how distinct activator-KIX complexes produce differential transcriptional effects. However, the transient and low to moderate affinity interactions between activators and KIX are difficult to capture using traditional biophysical assays. Here, we describe a collision induced unfolding-based approach that produces unique fingerprints for peptides bound to each of the two available sites within KIX, as well as a third fingerprint for ternary KIX complexes. Furthermore, we evaluate the analytical utility of unfolding fingerprints for KIX complexes using CIUSuite, and conclude by speculating as to the structural origins of the conformational families created from KIX:peptide complexes following collisional activation.

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          Author and article information

          Journal
          Journal of The American Society for Mass Spectrometry
          J. Am. Soc. Mass Spectrom.
          Springer Science and Business Media LLC
          1044-0305
          1879-1123
          January 2019
          August 22 2018
          January 2019
          : 30
          : 1
          : 94-102
          Article
          10.1007/s13361-018-2043-6
          6320266
          30136215
          80b0c53f-d409-4cb2-8a90-0a071ba02952
          © 2019

          http://www.springer.com/tdm

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