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Updated: Jul 15, 2026

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Published on: April 3, 2026
Structure of the catalytic domain of human polo-like kinase 1
Michael Kothe1, Darcy Kohls, Simon Low
1Pfizer Global Research and Development, Research Technology Center, 620 Memorial Drive, Cambridge, Massachusetts 02139, USA.
Abstract:
Polo-like kinase 1 (Plk1) is an attractive target for the development of anticancer agents due to its importance in regulating cell-cycle progression. Overexpression of Plk1 has been detected in a variety of cancers, and expression levels often correlate with poor prognosis. Despite high interest in Plk1-targeted therapeutics, there is currently no structure publicly available to guide structure-based drug design of specific inhibitors. We determined the crystal structures of the T210V mutant of the kinase domain of human Plk1 complexed with the nonhydrolyzable ATP analogue adenylylimidodiphosphate (AMPPNP) or the pyrrolo-pyrazole inhibitor PHA-680626 at 2.4 and 2.1 A resolution, respectively. Plk1 adopts the typical kinase domain fold and crystallized in a conformation resembling the active state of other kinases. Comparison of the kinetic parameters determined for the (unphosphorylated) wild-type enzyme, as well as the T210V and T210D mutants, shows that the mutations primarily affect the kcat of the reaction, with little change in the apparent Km for the protein or nucleotide substrates (kcat = 0.0094, 0.0376, and 0.0049 s-1 and Km(ATP) = 3.2, 4.0, and 3.0 microM for WT, T210D, and T210V, respectively). The structure highlights features of the active site that can be exploited to obtain Plk1-specific inhibitors with selectivity over other kinases and Plk isoforms. These include the presence of a phenylalanine at the bottom of the ATP pocket, combined with a cysteine (as opposed to the more commonly found leucine) in the roof of the binding site, a pocket created by Leu132 in the hinge region, and a cluster of positively charged residues in the solvent-exposed area outside of the adenine pocket adjacent to the hinge region.
Insights
Structural insights into Polo-like kinase 1 (Plk1), a key cancer target, are now available. These findings guide the design of specific Plk1 inhibitors for cancer therapy.
Area of Science:
- Biochemistry
- Structural Biology
- Medicinal Chemistry
Background:
- Polo-like kinase 1 (Plk1) is crucial for cell-cycle progression and is overexpressed in many cancers, correlating with poor prognosis.
- Targeting Plk1 is a promising anticancer strategy, but a lack of structural data has hindered structure-based drug design.
- No public structural information was available for Plk1 to guide inhibitor development.
Purpose of the Study:
- To determine the crystal structure of the human Plk1 kinase domain.
- To provide structural guidance for the development of specific Plk1 inhibitors.
- To characterize the impact of specific mutations on Plk1 enzyme kinetics.
Main Methods:
- X-ray crystallography was used to determine the structures of the T210V Plk1 mutant.
- Complex structures were obtained with adenylylimidodiphosphate (AMPPNP) and the inhibitor PHA-680626.
- Kinetic parameters (kcat, Km) were compared for wild-type and mutant Plk1 enzymes.
Main Results:
- The crystal structures of Plk1 were determined at 2.4 and 2.1 A resolution.
- Plk1 adopts a typical active kinase conformation.
- Mutations T210V and T210D primarily affected the catalytic rate (kcat) with minimal impact on substrate binding affinity (Km).
Conclusions:
- The determined Plk1 structures reveal key active site features for designing selective inhibitors.
- Specific residues (Phe, Cys, Leu132) and charged clusters offer opportunities for achieving selectivity over other kinases.
- These structural findings are critical for advancing Plk1-targeted cancer therapeutics.
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