Targeting cancer with small-molecular-weight kinase inhibitors

Doriano Fabbro1, Sandra W Cowan-Jacob, Henrik Möbitz

  • 1Novartis Institutes for Biomedical Research, Expertise Platform Kinases, Basel, Switzerland. doriano.fabbro@novartis.com

Insights

Protein and lipid kinases are crucial for cell function, but their dysregulation causes diseases. Kinase inhibitors are key drug targets, with many in development for cancer and other conditions.

Area of Science:

  • Biochemistry and Molecular Biology
  • Pharmacology and Drug Discovery

Background:

  • Protein and lipid kinases regulate essential cellular functions; their dysregulation is implicated in diverse pathologies including cancer, diabetes, and cardiovascular disorders.
  • The human genome encodes numerous kinases, with many more in pathogens, presenting significant opportunities for therapeutic intervention.
  • Kinases represent a major focus for the pharmaceutical industry, constituting approximately one-third of all drug targets under investigation.

Purpose of the Study:

  • To review achievements in protein and lipid kinase drug discovery.
  • To explore the binding modes of current kinase inhibitors.
  • To identify novel strategies for developing next-generation kinase inhibitors for cancer treatment.

Main Methods:

  • Review of existing literature on kinase inhibitors and their clinical development.
  • Analysis of binding modes of inhibitors targeting the ATP-site.
  • Exploration of emerging trends in kinase inhibitor design.

Main Results:

  • Current kinase inhibitors are primarily used in oncology and target the ATP-binding site, exhibiting varied selectivity and pharmacokinetic profiles.
  • Approximately 150 kinase-targeted drugs are in clinical trials, spanning various stages of signal transduction.
  • Significant progress has been made in developing kinase inhibitors, with ongoing research into novel therapeutic avenues.

Conclusions:

  • Kinase inhibitors are vital therapeutics, particularly for cancer, with ongoing efforts to improve their efficacy and broaden their applications.
  • Understanding inhibitor binding modes is crucial for designing more selective and potent second-generation drugs.
  • Future research will focus on novel strategies to overcome resistance and target a wider range of kinases for diverse diseases.

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