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Updated: Apr 19, 2026

Live Cell Imaging to Assess the Dynamics of Metaphase Timing and Cell Fate Following Mitotic Spindle Perturbations
Published on: September 20, 2019
Dis-organizing centrosomal clusters: specific cancer therapy for a generic spread?
D Bhakta-Guha, M E M Saeed, H J Greten
1Institute of Pharmacy and Biochemistry, Johannes Gutenberg University, Mainz, Staudinger Weg 5, 55128 Mainz, Germany. efferth@uni-mainz.de.
Abstract:
Cancer is a leading cause of mortality and the annual incidence of new cancer cases is rising worldwide. Due to the frequent development of resistance and the side effects of established anti-cancer drugs, the quest for new drugs with improved therapeutic features goes on. In contrast to cytotoxic chemotherapy of the past, the concept of targeted chemotherapy attempts to increase specificity of therapy by attacking tumor-related mechanisms. A novel emerging treatment concept represents the inhibition of centrosomal clustering. The centrosome regulates mitotic spindle formation assuring uniform separation of chromosomes to daughter cells. Many tumors contain supernumerary centrosomes, which contribute to aneuploidy induction via multipolar mitotic spindle formation. As spindle multipolarity leads to cell death, tumor cells developed centrosomal clustering mechanism to prevent multipolar spindle formation by coalescence of multiple centrosomes into two functional spindle poles. Inhibition of centrosome clustering represents a novel strategy for drug development and leads to the formation of multipolar spindles and subsequent cell death. In the present review, we report advances in understanding the biology of centrosomal clustering as well as enlist compounds capable of inducing the formation of multipolar spindles such as indolquinolizines, integrin-linked kinase inhibitors (QLT-0267), noscapinoids (EM011), phthalamide derivatives (TC11), griseofulvin, phenanthridines (PJ-34), CCC1-01, CW069 GF-15, colcemid, nocodazole, paclitaxel, and vinblastine. We also present in silico result of compounds that bind to γ-tubulin under the ambit of centrosomal clustering inhibition. We observed maximum binding efficacy in GF-15, CW069, paclitaxel and larotaxel with GF-15 exhibiting least energy of -8.4 Kcal/mol and 0.7 μM Pki value.
Insights
Targeting cancer cell division by inhibiting centrosome clustering offers a novel therapeutic strategy. This approach disrupts cancer cell replication, leading to cell death and potential new anti-cancer drug development.
Area of Science:
- Oncology
- Cell Biology
- Drug Discovery
Background:
- Cancer remains a leading cause of mortality with rising incidence.
- Established chemotherapy faces challenges due to resistance and side effects.
- Targeted therapies aim for increased specificity by attacking tumor-specific mechanisms.
Purpose of the Study:
- To review the biological understanding of centrosome clustering.
- To identify compounds that inhibit centrosome clustering and induce cancer cell death.
- To present in silico results for compounds binding to gamma-tubulin.
Main Methods:
- Literature review of centrosome biology and clustering inhibitors.
- Compilation of known compounds targeting centrosome clustering.
- In silico analysis of compound binding to gamma-tubulin.
Main Results:
- Supernumerary centrosomes in tumors promote aneuploidy via multipolar spindles.
- Tumor cells cluster centrosomes to avoid multipolar spindle formation and cell death.
- Several compounds, including indolquinolizines, QLT-0267, EM011, TC11, griseofulvin, PJ-34, CCC1-01, CW069, GF-15, colcemid, nocodazole, paclitaxel, and vinblastine, induce multipolar spindles.
- In silico analysis identified GF-15, CW069, paclitaxel, and larotaxel with high binding efficacy to gamma-tubulin.
- GF-15 showed the strongest binding with -8.4 Kcal/mol energy and 0.7 μM Pki.
Conclusions:
- Inhibition of centrosome clustering is a promising anti-cancer strategy.
- Compounds like GF-15 demonstrate significant potential for targeted cancer therapy.
- Further research into these compounds could lead to novel anti-cancer drugs.

