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Updated: Nov 30, 2025

Identification of Novel CK2 Kinase Substrates Using a Versatile Biochemical Approach
Published on: February 21, 2019
Linker residues regulate the activity and stability of hexokinase 2, a promising anticancer target
Juliana C Ferreira1, Abdul-Rahman Khrbtli1, Cameron L Shetler2
1Science Division, New York University Abu Dhabi, Abu Dhabi, United Arab Emirates.
Abstract:
Hexokinase (HK) catalyzes the first step in glucose metabolism, making it an exciting target for the inhibition of tumor initiation and progression due to their elevated glucose metabolism. The upregulation of hexokinase-2 (HK2) in many cancers and its limited expression in normal tissues make it a particularly attractive target for the selective inhibition of cancer growth and the eradication of tumors with limited side effects. The design of such safe and effective anticancer therapeutics requires the development of HK2-specific inhibitors that will not interfere with other HK isozymes. As HK2 is unique among HKs in having a catalytically active N-terminal domain (NTD), we have focused our attention on this region. We previously found that NTD activity is affected by the size of the linker helix-α13 that connects the N- and C-terminal domains of HK2. Three nonactive site residues (D447, S449, and K451) at the beginning of the linker helix-α13 have been found to regulate the NTD activity of HK2. Mutation of these residues led to increased dynamics, as shown via hydrogen deuterium exchange analysis and molecular dynamic simulations. D447A contributed the most to the enhanced dynamics of the NTD, with reduced calorimetric enthalpy of HK2. Similar residues exist in the C-terminal domain (CTD) but are unnecessary for HK1 and HK2 activity. Thus, we postulate these residues serve as a regulatory site for HK2 and may provide new directions for the design of anticancer therapeutics that reduce the rate of glycolysis in cancer through specific inhibition of HK2.
Insights
Targeting hexokinase-2 (HK2), crucial for cancer metabolism, offers a promising therapeutic strategy. Researchers identified specific residues in HK2
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Hexokinase (HK) is key to glucose metabolism, making it a target for cancer therapy.
- Hexokinase-2 (HK2) is upregulated in many cancers, presenting an opportunity for selective tumor inhibition.
- Developing HK2-specific inhibitors is crucial to avoid side effects on other HK isozymes.
Purpose of the Study:
- To investigate the N-terminal domain (NTD) of HK2 as a target for developing selective inhibitors.
- To identify specific residues within the HK2 NTD that regulate its activity.
- To explore novel strategies for anticancer therapeutics targeting cancer glycolysis.
Main Methods:
- Focusing on the catalytically active N-terminal domain (NTD) of HK2.
- Analyzing the role of the linker helix-α13 and specific residues (D447, S449, K451) in NTD regulation.
- Employing hydrogen deuterium exchange analysis and molecular dynamic simulations to assess residue mutation effects.
Main Results:
- Mutation of residues D447, S449, and K451 increased the dynamics of the HK2 NTD.
- The D447A mutation showed the most significant impact on NTD dynamics and reduced HK2 calorimetric enthalpy.
- These regulatory residues are unique to HK2's NTD and not essential for HK1 or HK2 activity in the CTD.
Conclusions:
- Specific residues in the HK2 NTD act as a regulatory site.
- These findings suggest a novel direction for designing HK2-specific inhibitors.
- Targeting these regulatory sites could lead to effective anticancer therapeutics that reduce cancer glycolysis.
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