Tamoxifen activates cellular phospholipase C and D and elicits protein kinase C translocation

M C Cabot1, Z Zhang, H Cao

  • 1John Wayne Cancer Institute at Saint John's Hospital and Health Center, Santa Monica, CA 90404, USA.

Insights

Tamoxifen activates cell signaling pathways independent of estrogen receptors, influencing phospholipase D and C activity and protein kinase C translocation. These findings reveal novel mechanisms for tamoxifen

Area of Science:

  • Cellular Biology
  • Molecular Pharmacology
  • Signal Transduction

Background:

  • Tamoxifen is a crucial antiestrogen therapy for breast cancer.
  • Estrogen receptor-independent mechanisms of tamoxifen action require further elucidation.
  • Understanding tamoxifen's effects on initial cell signal transduction is vital.

Purpose of the Study:

  • To investigate tamoxifen's impact on early cell signal transduction events.
  • To assess tamoxifen's effects on phospholipid metabolism and protein kinase C (PKC) translocation.
  • To explore the role of PKC in tamoxifen-mediated signaling.

Main Methods:

  • Assessed phospholipid metabolism (phosphatidate, diacylglycerol) and PKC translocation in human mammary fibroblasts.
  • Utilized ethanol to detect phospholipase D (PLD) and phospholipase C (PLC) activation.
  • Conducted structure-activity relationship studies and employed PKC inhibitors and down-regulation protocols.

Main Results:

  • Tamoxifen induced dose- and time-dependent increases in phosphatidate (PA) and diacylglycerol (DG).
  • Tamoxifen activated both PLD and PLC, evidenced by phosphatidylethanol and DG formation in ethanol.
  • Tamoxifen selectively induced PKC epsilon membrane association, and PKC activity mediated PLD activation.

Conclusions:

  • Tamoxifen exerts significant extra-nuclear effects at the transmembrane signaling level.
  • Activation of PLD and PLC, along with PKC epsilon translocation, represents a novel signaling pathway for tamoxifen.
  • These non-genomic actions may contribute to tamoxifen's therapeutic effects beyond estrogen receptor blockade.

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