Completed Cancer Cells, Biochemistry & Physiology

Structure-aided discovery of kinase inhibitors as targeted therapeutic agents for breast cancer

In plain English

AI plain-English summary

A team of UK and South African researchers is designing drug-like molecules to block a specific enzyme, called a CaMK protein, that drives an aggressive form of breast cancer. This matters because kinases—enzymes that switch other proteins on and off—are prime targets for stopping cancer, but many remain untapped. No drugs currently exist that can specifically inhibit any kinase activated by the regulatory protein calmodulin, even though faulty CaMK enzymes are now thought to play a key role in breast cancer progression. The consortium is focusing on a CaMK protein involved in basal-like breast cancer, a subtype with few treatment options. If the project succeeds, the result will be a set of lead molecules that could be developed into targeted therapeutic agents for breast cancer. These inhibitors are designed to enter cells and selectively block the cancer-causing state of the enzyme. The work may also yield a new general approach—using nature’s own inhibitory mechanisms to block cancer-driving kinases. The two-year project combines structural biology, high-throughput screening with superconducting magnets and robots, and medicinal chemistry to design improved inhibitors, including deuterated analogs for enhanced activity.

View original technical description
Kinases are important targets for blocking cancer progression. However, many remain to be exploited. For example, no drugs are yet available to specifically inhibit any kinase which is switched on by a regulatory protein called calmodulin. Nonetheless, faulty expression of these “CaMK” enzymes is now thought to play a key role in breast cancer progression. The Wellcome Trust has funded the CAMSEED consortium to discover small molecule inhibitors for a CaMK protein involved in basal-like breast cancer. The three dimensional structure of this target has been solved by the Structural Genomics Consortium and Professor Stefan Knapp at the University of Oxford. Interactions with small molecules are being screened by Professor Michael Overduin’s lab at the University of Birmingham using superconducting magnets and high throughput robots at the national HWB-NMR facility. The design of improved inhibitors that can enter cells and selectively block the oncogenic state is being led by Professor Peter Fischer at the University of Nottingham, with Colin Kenyon at CSIR, Pretoria, designing deuterated analogs for enhanced activity. The result of the two year project is expected to be a set of lead molecules for development as potential therapeutic agents for breast cancer, and may yield a new approach for using nature’s own inhibitory mechanisms to block cancer-causing kinases.

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Researchers

Sam Butterworth (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Structure-aided discovery of CaMK1D kinase inhibitors as targeted therapeutic agents for breast cancer.
From kinase molecular mechanisms towards new cancer therapeutics
Molecular mechanisms of calcium/calmodulin-dependent kinase localisation activation and inhibition
The Development of Inhibitors of Cdk Activating Kinase (CAK)
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Original classification

Seeding Drug Discovery Award

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