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Drugging the PI3 kinome: from chemical tools to drugs in the clinic
Paul Workman1, Paul A Clarke, Florence I Raynaud
1Cancer Research UK Centre for Cancer Therapeutics, Section of Cancer Therapeutics, The Institute of Cancer Research, Haddow Laboratories, Sutton, Surrey, United Kingdom. paul.workman@icr.ac.uk
Abstract:
The phosphatidylinositide 3-kinase (PI3K) pathway is very commonly activated in a wide range of human cancers and is a major driving force in oncogenesis. One of the class I lipid kinase members of the PI3K family, p110alpha, is probably the most commonly mutated kinase in the human genome. Alongside genetic, molecular biological, and biochemical studies, chemical inhibitors have been extremely helpful tools in understanding the role of PI3K enzymes in signal transduction and downstream physiological and pathological processes, and also in validating PI3Ks as therapeutic targets. Although they have been valuable in the past, the early and still frequently employed inhibitors, wortmannin and LY294002, have significant limitations as chemical tools. Here, we discuss the case history of the discovery and properties of an increasingly used chemical probe, the pan-class I PI3K and mammalian target of rapamycin (mTOR) inhibitor PI-103 (a pyridofuropyrimidine), and its very recent evolution into the thienopyrimidine drug GDC-0941, which exhibits excellent oral anticancer activity in preclinical models and is now undergoing phase I clinical trials in cancer patients. We also illustrate the impact of structural biology on the design of PI3K inhibitors and on the interpretation of their effects. The challenges and outlook for drugging the PI3 kinome are discussed in the more general context of the role of structural biology and chemical biology in innovative drug discovery.
Insights
The phosphatidylinositide 3-kinase (PI3K) pathway is crucial in cancer. New inhibitors like GDC-0941, developed using structural biology, show promise for oral anticancer activity in clinical trials.
Area of Science:
- Oncology
- Pharmacology
- Structural Biology
Background:
- The phosphatidylinositide 3-kinase (PI3K) pathway is frequently activated in human cancers, driving oncogenesis.
- p110alpha, a PI3K family member, is the most commonly mutated kinase in the human genome.
- Chemical inhibitors are vital for understanding PI3K signaling and validating PI3Ks as therapeutic targets.
Purpose of the Study:
- To discuss the discovery and properties of PI3K inhibitors, specifically PI-103 and its evolution into GDC-0941.
- To illustrate the impact of structural biology on PI3K inhibitor design.
- To explore challenges and future directions for targeting the PI3 kinome.
Main Methods:
- Review of chemical probe development, including PI-103 and GDC-0941.
- Analysis of structural biology's role in inhibitor design and effect interpretation.
- Discussion of preclinical and clinical trial data for GDC-0941.
Main Results:
- PI-103 is a potent pan-class I PI3K and mammalian target of rapamycin (mTOR) inhibitor.
- GDC-0941, an evolution of PI-103, demonstrates excellent oral anticancer activity in preclinical models.
- GDC-0941 is currently undergoing phase I clinical trials for cancer treatment.
Conclusions:
- Advanced chemical probes and drugs targeting the PI3K pathway, like GDC-0941, offer therapeutic potential.
- Structural biology significantly aids in the rational design of effective PI3K inhibitors.
- Targeting the PI3 kinome remains a key area for innovative cancer drug discovery.
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