Authors
Giovanni Danilo D'Angelo, Kosmas Alexandros Pervanidis, Ioannis Athanasiadis, Vladimir Lukianchikov, Andrea Scrima, Laura Depta, Sara Stier, Matthias P Müller, Henner F Farin, Lena Quambusch, Daniel Rauh
Published in
Angewandte Chemie (International ed. in English). Pages e3567206. Sep 07, 2026. Epub Sep 07, 2026.
Abstract
The Akt family of serine/threonine kinases plays a crucial role in various cellular processes, including proliferation, survival, and metabolism. Three Akt isoforms (Akt1, Akt2, and Akt3) have distinct physiological roles, and while individual isoform dysregulation is disease-linked, unselective Akt inhibition leads to side effects. Here, we report the development of selective covalent-allosteric Akt inhibitors (CAAIs) targeting Akt2 and Akt3 while sparing Akt1. Guided by protein x-ray crystallography and molecular modeling, key structural differences within the allosteric pockets of the isoforms were identified and exploited in a structure-based design strategy. By stabilizing the inactive kinase conformation, CAAIs overcome the intrinsic selectivity limitations of ATP-competitive inhibitors. After biological characterization, the pyrazole-containing inhibitors emerged as the most potent and selective Akt2 inhibitors, while inhibitors with pyridines as an isoform-selective element were predominantly targeting Akt3 selectively. Importantly, these new inhibitors were also evaluated in patient-derived colorectal cancer organoids. Co-crystal structures of inhibitors bound to an engineered construct mimicking the Akt2 allosteric pocket elucidated the molecular basis of isoform selectivity, guiding further optimization. This work not only establishes a framework for the development of isoform-selective therapeutics but also highlights the potential for unraveling isoform-specific functions in signaling pathways relevant to cancer biology.
PMID:
42704227
Bibliographic data and abstract were imported from PubMed on 07 Sep 2026.
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