R-(+)-perillyl alcohol-induced cell cycle changes, altered actin cytoskeleton, and decreased ras and p34(cdc2)

S R Cerda1, J Wilkinson, S Thorgeirsdottir

  • 1University of Chicago, Department of Medicine, Chicago, IL, USA.

Insights

R-(+)-perillyl alcohol (PA) alters cell cycle and protein isoprenylation in colon cancer cells. PA also affects cell morphology and reduces expression of key growth proteins like ras and cdc2 kinase.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Biology

Background:

  • S-(-)-perillyl alcohol (PA) inhibits protein isoprenylation, a process crucial for growth regulation.
  • The K-ras mutation is implicated in various cancers, including colon adenocarcinoma.

Purpose of the Study:

  • To investigate the effects of R-(+)-PA on cell cycle, signaling, and cytoskeletal control in SW480 colon cancer cells.
  • To compare the effects of R-(+)-PA with mevinolin (MVN), a mevalonate synthesis inhibitor.

Main Methods:

  • Cell cycle analysis using flow cytometry.
  • Measurement of protein isoprenylation using (14)C-mevalonate.
  • Analysis of protein expression for ras and p34(cdc2) kinase.
  • Morphological assessment of cells.

Main Results:

  • R-(+)-PA treatment increased G0/G1 phase cells and decreased S phase cells.
  • PA inhibited protein isoprenylation and decreased p34(cdc2) expression.
  • PA induced a flattened cell morphology with peripheral actin condensation, distinct from MVN's effect.
  • PA decreased total ras protein expression, unlike MVN which inhibited ras farnesylation.

Conclusions:

  • R-(+)-PA influences cell cycle progression, protein isoprenylation, and cytoskeletal organization in colon cancer cells.
  • Distinct morphological changes induced by PA and MVN suggest different mechanisms related to mevalonate and isoprenoid pools.
  • PA's effects on ras and cdc2 kinase expression may contribute to its growth inhibitory activity.

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