The time-dependent serial gene response to Zeocin treatment involves caspase-dependent apoptosis in HeLa cells

Jooyeon Hwang1, Young-Youl Kim, Sungjin Huh

  • 1National Genome Research Institute, NIH, Seoul, Korea.

Insights

Zeocin induces apoptosis in cervical cancer cells by activating a p53-independent mitochondrial caspase cascade. This pathway, involving cytochrome c release and caspase activation, suggests Zeocin

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Cell Biology

Background:

  • Zeocin, a DNA-binding antibiotic, induces apoptosis in cervical cancer cells.
  • The precise mechanism of Zeocin-induced apoptosis remains unclear.
  • Understanding this mechanism is crucial for developing new cancer therapies.

Purpose of the Study:

  • To investigate the time-dependent transcript patterns in HeLa cells after Zeocin treatment.
  • To elucidate the molecular pathways involved in Zeocin-induced apoptosis.
  • To identify potential therapeutic applications of Zeocin in gynecological cancers.

Main Methods:

  • HeLa cervical carcinoma cell line exposure to Zeocin.
  • Time-dependent serial gene expression profiling using an apoptosis functional microarray chip (0-24 hr).
  • Statistical analysis of transcript level changes (≥2-fold change, 95% confidence level).

Main Results:

  • Zeocin exposure decreased HeLa cell proliferation in a time- and dose-dependent manner.
  • Identified 49 up-regulated and 57 down-regulated genes.
  • Zeocin induced cytochrome c release, down-regulated Bcl-X(L), ENDOG, DAXX, MDM2, and up-regulated CASP and BID, indicating a p53-independent mitochondrial caspase cascade.

Conclusions:

  • Zeocin triggers apoptosis via a p53-independent mitochondrial pathway involving caspase 8 and BID.
  • FAS or TNFR1 signaling disruption did not affect Zeocin-induced apoptosis.
  • Zeocin shows promise as a novel therapeutic agent for gynecological cancers, potentially overcoming resistance to conventional chemotherapy.

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