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Updated: Dec 26, 2025

Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
Biochemical and structural insights into how amino acids regulate pyruvate kinase muscle isoform 2
1Department of Chemistry, University of Iowa, Iowa City, Iowa 52242.
Abstract:
Pyruvate kinase muscle isoform 2 (PKM2) is a key glycolytic enzyme involved in ATP generation and critical for cancer metabolism. PKM2 is expressed in many human cancers and is regulated by complex mechanisms that promote tumor growth and proliferation. Therefore, it is considered an attractive therapeutic target for modulating tumor metabolism. Various stimuli allosterically regulate PKM2 by cycling it between highly active and less active states. Several small molecules activate PKM2 by binding to its intersubunit interface. Serine and cysteine serve as an activator and inhibitor of PKM2, respectively, by binding to its amino acid (AA)-binding pocket, which therefore represents a potential druggable site. Despite binding similarly to PKM2, how cysteine and serine differentially regulate this enzyme remains elusive. Using kinetic analyses, fluorescence binding, X-ray crystallography, and gel filtration experiments with asparagine, aspartate, and valine as PKM2 ligands, we examined whether the differences in the side-chain polarity of these AAs trigger distinct allosteric responses in PKM2. We found that Asn (polar) and Asp (charged) activate PKM2 and that Val (hydrophobic) inhibits it. The results also indicate that both Asn and Asp can restore the activity of Val-inhibited PKM2. AA-bound crystal structures of PKM2 displayed distinctive interactions within the binding pocket, causing unique allosteric effects in the enzyme. These structure-function analyses of AA-mediated PKM2 regulation shed light on the chemical requirements in the development of mechanism-based small-molecule modulators targeting the AA-binding pocket of PKM2 and provide broader insights into the regulatory mechanisms of complex allosteric enzymes.
Insights
Pyruvate kinase muscle isoform 2 (PKM2) activity is modulated by amino acids. Polar and charged amino acids activate PKM2, while hydrophobic ones inhibit it, offering insights for cancer drug development.
Area of Science:
- Biochemistry
- Enzymology
- Cancer Metabolism
Background:
- Pyruvate kinase muscle isoform 2 (PKM2) is a crucial enzyme in glycolysis and ATP generation.
- PKM2 plays a significant role in cancer metabolism, promoting tumor growth and proliferation.
- Its regulation is complex, making it an attractive therapeutic target for cancer treatment.
Purpose of the Study:
- To investigate how differences in amino acid side-chain polarity affect PKM2 allosteric regulation.
- To explore the distinct allosteric responses triggered by polar, charged, and hydrophobic amino acids.
- To understand the structural basis for amino acid-mediated PKM2 modulation.
Main Methods:
- Kinetic analyses
- Fluorescence binding assays
- X-ray crystallography
- Gel filtration experiments
Main Results:
- Asparagine (polar) and aspartate (charged) were found to activate PKM2.
- Valine (hydrophobic) was identified as an inhibitor of PKM2.
- Both asparagine and aspartate could reverse valine-induced inhibition.
- Crystal structures revealed unique interactions within the amino acid-binding pocket, leading to distinct allosteric effects.
Conclusions:
- Amino acid side-chain properties dictate PKM2's allosteric regulation.
- The amino acid-binding pocket is a druggable site for developing PKM2 modulators.
- These findings enhance understanding of allosteric enzyme regulation and inform targeted cancer therapies.
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