Abstract
Macromolecular function is rooted in energy landscapes, where sequence determines not a single structure but an ensemble of conformations. Hence, evolution modifies a protein's function by altering its energy landscape. Here, we recreate the evolutionary pathway between two modern human oncogenes, Src and Abl, by reconstructing their common ancestors. Our evolutionary reconstruction combined with x-ray structures of the common ancestor and pre-steady-state kinetics reveals a detailed atomistic mechanism for selectivity of the successful cancer drug Gleevec. Gleevec affinity is gained during the evolutionary trajectory toward Abl and lost toward Src, primarily by shifting an induced-fit equilibrium that is also disrupted in the clinical T315I resistancemutation.This work reveals the mechanism of Gleevec specificity while offering insights into how energy landscapes evolve.
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CITATION STYLE
Wilson, C., Agafonov, R. V., Hoemberger, M., Kutter, S., Zorba, A., Halpin, J., … Kern, D. (2015, February 20). Using ancient protein kinases to unravel a modern cancer drug’s mechanism. Science. American Association for the Advancement of Science. https://doi.org/10.1126/science.aaa1823
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