Sulforaphane metabolites cause apoptosis via microtubule disruption in cancer

Yan Zhou1, Gaoxiang Yang1, Hua Tian1

  • 1Department of Biochemistry and Molecular BiologySchool of Basic Medical Sciences, Beijing Key Laboratory of Tumor Invasion and Metastasis Research, Institute of Cancer Research, Capital Medical University, Beijing, China.

Endocrine-Related Cancer
|February 13, 2018
PubMed

Insights

Sulforaphane metabolites, sulforaphane-cysteine (SFN-Cys) and sulforaphane-N-acetyl-cysteine (SFN-NAC), induce apoptosis in prostate cancer cells by disrupting microtubule dynamics and promoting cell death, offering a novel therapeutic strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Sulforaphane (SFN) exhibits anti-cancer properties but has a short half-life.
  • SFN metabolites, SFN-Cys and SFN-NAC, possess longer circulation times.
  • Prostate cancer remains a significant health concern requiring novel therapeutic approaches.

Purpose of the Study:

  • To investigate the anti-cancer effects of SFN metabolites in human prostate cancer.
  • To elucidate the molecular mechanisms underlying SFN metabolite-induced cell death.
  • To explore the potential of SFN metabolites as a novel chemotherapy for prostate cancer.

Main Methods:

  • Cell viability assays (dose- and time-dependent).
  • Flow cytometry and transmission electron microscopy for apoptosis analysis.
  • Western blotting, co-immunoprecipitation, and immunofluorescence staining to assess protein interactions and signaling pathways (ERK1/2, Caspase 3, α-tubulin, Stathmin-1).
  • Microtubule polymerization assays to evaluate microtubule dynamics.

Main Results:

  • SFN-Cys and SFN-NAC significantly decreased prostate cancer cell viability.
  • SFN metabolites induced apoptosis, characterized by distinct morphological changes.
  • SFN metabolites sustained ERK1/2 phosphorylation, leading to Caspase 3 activation and α-tubulin downregulation.
  • SFN metabolites disrupted microtubule dynamics, causing instability and abnormal spindle formation.
  • Interaction between phosphorylated ERK1/2 and α-tubulin was observed, with α-tubulin potentially serving as a Caspase 3 substrate.

Conclusions:

  • SFN-Cys and SFN-NAC effectively induce apoptosis in human prostate cancer cells.
  • The mechanism involves sustained ERK1/2 phosphorylation, leading to microtubule disruption and cell death.
  • SFN metabolites represent a promising novel therapeutic strategy for prostate cancer treatment.

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