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Updated: May 24, 2026

Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics
Published on: May 14, 2016
Sensitivity of tumor cells towards CIGB-300 anticancer peptide relies on its nucleolar localization
Yasser Perera1, Heydi C Costales, Yakelin Diaz
1Laboratory of Molecular Oncology, Division of Pharmaceuticals, Center for Genetic Engineering and Biotechnology-CIGB, Havana CP10600, Cuba. yasser.perera@cigb.edu.cu
Abstract:
CIGB-300 is a novel anticancer peptide that impairs the casein kinase 2-mediated phosphorylation by direct binding to the conserved phosphoacceptor site on their substrates. Previous findings indicated that CIGB-300 inhibits tumor cell proliferation in vitro and induces tumor growth delay in vivo in cancer animal models. Interestingly, we had previously demonstrated that the putative oncogene B23/nucleophosmin (NPM) is the major intracellular target for CIGB-300 in a sensitive human lung cancer cell line. However, the ability of this peptide to target B23/NPM in cancer cells with differential CIGB-300 response phenotype remained to be determined. Interestingly, in this work, we evidenced that CIGB-300's antiproliferative activity on tumor cells strongly correlates with its nucleolar localization, the main subcellular localization of the previously identified B23/NPM target. Likewise, using CIGB-300 equipotent doses (concentration that inhibits 50% of proliferation), we demonstrated that this peptide interacts and inhibits B23/NPM phosphorylation in different cancer cell lines as evidenced by in vivo pull-down and metabolic labeling experiments. Moreover, such inhibition was followed by a fast apoptosis on CIGB-300-treated cells and also an impairment of cell cycle progression mainly after 5 h of treatment. Altogether, our data not only validates B23/NPM as a main target for CIGB-300 in cancer cells but also provides the first experimental clues to explain their differential antiproliferative response. Importantly, our findings suggest that further improvements to this cell penetrating peptide-based drug should entail its more efficient intracellular delivery at such subcellular localization.
Insights
The anticancer peptide CIGB-300 targets B23/nucleophosmin (NPM) by inhibiting its phosphorylation, correlating with nucleolar localization and antiproliferative effects in cancer cells.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- CIGB-300 is a novel anticancer peptide inhibiting casein kinase 2-mediated phosphorylation.
- Previous studies identified B23/nucleophosmin (NPM) as a key intracellular target of CIGB-300 in lung cancer cells.
- The differential response of cancer cells to CIGB-300 necessitates understanding its targeting mechanisms.
Purpose of the Study:
- To investigate the correlation between CIGB-300's antiproliferative activity and its subcellular localization.
- To determine if CIGB-300 targets and inhibits B23/NPM phosphorylation in various cancer cell lines.
- To elucidate the downstream effects of B23/NPM inhibition by CIGB-300 on cancer cell apoptosis and cell cycle progression.
Main Methods:
- Correlation analysis of CIGB-300's antiproliferative activity with its nucleolar localization.
- In vivo pull-down assays and metabolic labeling to assess B23/NPM phosphorylation inhibition.
- Flow cytometry and cell cycle analysis to evaluate apoptosis and cell cycle progression.
Main Results:
- CIGB-300's antiproliferative efficacy strongly correlates with its accumulation in the nucleolus, the primary site of B23/NPM.
- Equipotent doses of CIGB-300 effectively inhibit B23/NPM phosphorylation across different cancer cell lines.
- CIGB-300 treatment rapidly induces apoptosis and impairs cell cycle progression within 5 hours.
Conclusions:
- B23/NPM is validated as a major intracellular target of CIGB-300 in cancer cells.
- The study provides mechanistic insights into the differential antiproliferative responses observed with CIGB-300.
- Enhanced intracellular delivery of CIGB-300 to the nucleolus may improve its therapeutic potential as a cell-penetrating peptide-based drug.
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