The dual role of cyclin C connects stress regulated gene expression to mitochondrial dynamics

Randy Strich1, Katrina F Cooper1

  • 1Department of Molecular Biology, Rowan University School of Osteopathic Medicine, Stratford NJ, USA.

Insights

Cyclin C couples gene expression changes to mitochondrial fission and programmed cell death (PCD). This protein regulates stress-responsive transcription and mediates mitochondrial fragmentation and cell death pathways in yeast.

Area of Science:

  • Cellular Biology
  • Molecular Biology
  • Yeast Genetics

Background:

  • Cellular damage triggers sensor mechanisms and signal transduction to the nucleus for gene expression.
  • Mitochondria act as signaling platforms during stress responses, initiating fragmentation (fission).
  • Excessive damage leads to mitochondrial outer membrane rupture, releasing factors for programmed cell death (PCD).

Purpose of the Study:

  • To review the role of Cyclin C in regulating stress-responsive transcription.
  • To detail Cyclin C's function in mediating mitochondrial fission and PCD.
  • To concentrate on Cyclin C's dual role in the budding yeast Saccharomyces cerevisiae.

Main Methods:

  • Review of existing literature on Cyclin C, Cdk8, Med13, and stress response pathways.
  • Analysis of Cyclin C's interaction with RNA polymerase holoenzyme for transcriptional regulation.
  • Investigation of Cyclin C's translocation from nucleus to cytoplasm and interaction with fission machinery.

Main Results:

  • Cyclin C, with Cdk8, represses stress-responsive genes.
  • Stress induces Cyclin C destruction, relieving repression.
  • Cytoplasmic Cyclin C induces mitochondrial fragmentation and promotes PCD.

Conclusions:

  • Cyclin C is essential for coupling gene expression changes to mitochondrial fission and PCD.
  • Cyclin C mediates both mitochondrial fission and cell death pathways.
  • The dual role of Cyclin C in transcription and cell fate is conserved, particularly in Saccharomyces cerevisiae.

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