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Updated: Sep 28, 2025

Identification of Novel CK2 Kinase Substrates Using a Versatile Biochemical Approach
Published on: February 21, 2019
CIGB-300-Regulated Proteome Reveals Common and Tailored Response Patterns of AML Cells to CK2 Inhibition
Mauro Rosales1,2, Arielis Rodríguez-Ulloa3, George V Pérez2
1Department of Animal and Human Biology, Faculty of Biology, University of Havana (UH), Havana, Cuba.
Abstract:
Protein kinase CK2 is a highly pleiotropic and ubiquitously expressed Ser/Thr kinase with instrumental roles in normal and pathological states, including neoplastic phenotype in solid tumor and hematological malignancies. In line with previous reports, CK2 has been suggested as an attractive prognostic marker and molecular target in acute myeloid leukemia (AML), a blood malignant disorder that remains as an unmet medical need. Accordingly, this work investigates the complex landscape of molecular and cellular perturbations supporting the antileukemic effect exerted by CK2 inhibition in AML cells. To identify and functionally characterize the proteomic profile differentially modulated by the CK2 peptide-based inhibitor CIGB-300, we carried out LC-MS/MS and bioinformatic analysis in human cell lines representing two differentiation stages and major AML subtypes. Using this approach, 109 and 129 proteins were identified as significantly modulated in HL-60 and OCI-AML3 cells, respectively. In both proteomic profiles, proteins related to apoptotic cell death, cell cycle progression, and transcriptional/translational processes appeared represented, in agreement with previous results showing the impact of CIGB-300 in AML cell proliferation and viability. Of note, a group of proteins involved in intracellular redox homeostasis was specifically identified in HL-60 cell-regulated proteome, and flow cytometric analysis also confirmed a differential effect of CIGB-300 over reactive oxygen species (ROS) production in AML cells. Thus, oxidative stress might play a relevant role on CIGB-300-induced apoptosis in HL-60 but not in OCI-AML3 cells. Importantly, these findings provide first-hand insights concerning the CIGB-300 antileukemic effect and draw attention to the existence of both common and tailored response patterns triggered by CK2 inhibition in different AML backgrounds, a phenomenon of particular relevance with regard to the pharmacologic blockade of CK2 and personalized medicine.
Insights
Protein kinase CK2 inhibition shows anti-leukemic effects in acute myeloid leukemia (AML) by modulating cell death and cycle proteins. Differential responses, including oxidative stress in some AML cells, highlight tailored therapeutic strategies.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Protein kinase CK2 (CK2) is a key regulator in normal and pathological processes, including cancer.
- CK2 is implicated in acute myeloid leukemia (AML) pathogenesis and is a potential therapeutic target.
- CK2 inhibition is being explored for its antileukemic effects in AML.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the antileukemic activity of CK2 inhibition in AML.
- To identify proteomic changes induced by the CK2 inhibitor CIGB-300 in different AML subtypes.
- To explore the role of oxidative stress in CK2 inhibitor-mediated apoptosis.
Main Methods:
- Utilized liquid chromatography-tandem mass spectrometry (LC-MS/MS) for proteomic profiling.
- Applied bioinformatic analysis to identify differentially modulated proteins.
- Employed flow cytometry to assess reactive oxygen species (ROS) production.
Main Results:
- Identified 109 and 129 differentially modulated proteins in HL-60 and OCI-AML3 AML cell lines, respectively.
- Modulated proteins were associated with apoptosis, cell cycle, and transcriptional/translational processes.
- Observed differential regulation of proteins involved in redox homeostasis and ROS production, suggesting a role for oxidative stress in specific AML subtypes.
Conclusions:
- CK2 inhibition by CIGB-300 exerts antileukemic effects through common and subtype-specific molecular pathways.
- Oxidative stress contributes to CIGB-300-induced apoptosis in certain AML cells (e.g., HL-60), but not others (e.g., OCI-AML3).
- These findings support CK2 inhibition as a therapeutic strategy and underscore the importance of personalized medicine approaches in AML treatment.
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