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Nano-Differential Scanning Fluorimetry for Screening in Fragment-based Lead Discovery
Published on: May 16, 2021
Novel isoquinolone PDK1 inhibitors discovered through fragment-based lead discovery
M Catherine Johnson1, Qiyue Hu, Laura Lingardo
1Pfizer Global Research and Development, San Diego, CA 92121, USA, mcjohnson@inchemdesign.com
Abstract:
Phosphoinositide-dependent kinase-1 (PDK1) is a critical enzyme in the PI3K/AKT pathway and to the activation of AGC family protein kinases, including S6K, SGK, and PKC. Dysregulation of this pathway plays a key role in cancer cell growth, survival and tumor angiogenesis. As such, inhibitors of PDK1 offer the promise of a new therapeutic modality for cancer treatment. Fragment based drug screening has recently become a viable entry point for hit identification. In this work, NMR spectroscopy fragment screening of PDK1 afforded novel chemotypes as orthogonal starting points from HTS screening hits. Compounds identified as hits by NMR spectroscopy were tested in a biochemical assay, and fragments with activity in both assays were clustered. The Pfizer compound file was mined via substructure and 2D similarity search, and the chemotypes were prioritized by ligand efficiency (LE), SAR mining, chemical attractiveness, and chemical enablement of promising vectors. From this effort, an isoquinolone fragment hit, 5 (IC(50) 870 μM, LE = 0.39), was identified as a novel, ligand efficient inhibitor of PDK1 and a suitable scaffold for further optimization. Initially in the absence of crystallographic data, a fragment growing approach efficiently explored four vectors of the isoquinolone scaffold via parallel synthesis to afford a compound with crystallographic data, 16 (IC(50) 41.4 μM, LE = 0.33). Subsequent lead optimization efforts provided 24 (IC(50) 1.8 μM, LE = 0.42), with greater than fivefold selectivity against other key pathway kinases.
Insights
Researchers identified novel inhibitors for phosphoinositide-dependent kinase-1 (PDK1), a key enzyme in cancer pathways. Fragment-based screening yielded promising isoquinolone scaffolds for developing new cancer therapeutics.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Oncology
Background:
- Phosphoinositide-dependent kinase-1 (PDK1) is crucial for the PI3K/AKT pathway, regulating cancer cell growth, survival, and angiogenesis.
- Inhibiting PDK1 presents a potential therapeutic strategy for cancer treatment.
Purpose of the Study:
- To identify novel chemotypes for PDK1 inhibition using NMR spectroscopy fragment screening.
- To optimize initial fragment hits into potent and selective PDK1 inhibitors.
Main Methods:
- NMR spectroscopy-based fragment screening of PDK1.
- Biochemical assays to evaluate fragment activity.
- Substructure and 2D similarity searches of compound libraries.
- Fragment growing and parallel synthesis for lead optimization.
Main Results:
- Novel isoquinolone fragment hits were identified with moderate inhibitory activity (e.g., compound 5, IC50 = 870 μM).
- Structure-activity relationship exploration led to optimized compounds, such as compound 24 (IC50 = 1.8 μM).
- The optimized inhibitor demonstrated over fivefold selectivity against other kinases in the pathway.
Conclusions:
- Fragment-based drug screening is an effective approach for identifying novel PDK1 inhibitors.
- The identified isoquinolone scaffold is a promising starting point for developing new anti-cancer drugs targeting the PI3K/AKT pathway.
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