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.

Current Medicinal Chemistry
|December 18, 2014
PubMed

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.