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Exploring the potential of PI3K inhibitors for inflammation and cancer
1UCB, 216 Bath Road, Slough, UK. tom.crabbe@ucb-group.com
Abstract:
Considerable biological evidence has accumulated in support of nominating the Class I PI3Ks (phosphoinositide 3-kinases) as excellent targets for the development of novel pharmaceuticals to treat cancer and inflammatory disease. Although it remains a goal to deliver compounds with precise PI3K isoform selectivity in order to minimize safety risks, it is not yet certain that this approach will deliver suitable benefit against disease when tested in the clinic. The UCB strategy, therefore, has been to generate a range of compounds covering a broad spectrum of PI3K isoform inhibition. Scaffold diversity has been accomplished by identifying hits using both pharmacophore search and high-throughput screening campaigns, while modulation of potency and isoform selectivity has been achieved through exploratory medicinal chemistry. Simple, high-throughput cell assays relevant to either inflammation or cancer have then been employed to establish a blueprint for defining how isoform selectivity affects biological potency. I will focus on two compounds from our collection: a pan-PI3K inhibitor and UCB1311236, a compound with significant potency against only the PI3Kgamma isoform. These examples will be used to illustrate the extent to which isoform selectivity informs on compound potency against other kinases and to highlight the risks and benefits of developing compounds with limited isoform selectivity.
Insights
Targeting phosphoinositide 3-kinases (PI3Ks) shows promise for cancer and inflammation. This study explores PI3K isoform selectivity, evaluating risks and benefits of developing targeted therapies.
Area of Science:
- Biochemistry
- Pharmacology
- Medicinal Chemistry
Background:
- Class I phosphoinositide 3-kinases (PI3Ks) are validated targets for cancer and inflammatory diseases.
- Achieving PI3K isoform selectivity is crucial for minimizing safety risks and maximizing therapeutic benefit.
- The clinical utility of highly isoform-selective inhibitors versus broad-spectrum inhibitors remains uncertain.
Purpose of the Study:
- To generate and evaluate a diverse range of PI3K inhibitors with varying isoform selectivity profiles.
- To establish a framework for understanding how PI3K isoform selectivity impacts biological potency in disease models.
- To assess the risks and benefits associated with developing PI3K inhibitors with limited isoform selectivity.
Main Methods:
- Utilized pharmacophore searching and high-throughput screening to identify PI3K inhibitor scaffolds.
- Employed medicinal chemistry to modulate compound potency and isoform selectivity.
- Used high-throughput cell-based assays relevant to cancer and inflammation to assess biological activity.
Main Results:
- Developed a collection of compounds with a broad spectrum of PI3K isoform inhibition.
- Investigated two compounds: a pan-PI3K inhibitor and UCB1311236, selective for PI3Kgamma.
- Demonstrated how isoform selectivity influences potency against other kinases and cellular activity.
Conclusions:
- PI3K isoform selectivity is a key consideration in drug development for cancer and inflammatory conditions.
- The study highlights the trade-offs between isoform selectivity and therapeutic efficacy.
- Findings inform strategies for developing novel PI3K-targeted therapeutics with optimized safety and efficacy profiles.
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