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Published on: November 17, 2023
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.
Abstract:
Sulforaphane (SFN) inhibited growth in many cancers, but its half-life is 2 h in circulation. However, its metabolites, sulforaphane-cysteine (SFN-Cys) and sulforaphane-N-acetyl-cysteine (SFN-NAC) had longer half-lives and decreased the cell viability in both dose- and time-dependent manners in human prostate cancer. Flow cytometry assay revealed that these two SFN metabolites induced apoptosis with the features such as vacuolization, disappeared nuclear envelope, nuclear agglutination and fragmentation via transmission electron microscopy observation. Western blot showed that the sustained phosphorylation of ERK1/2 mediated by SFN metabolites caused activation and upregulation of cleaved Caspase 3 and downregulation of α-tubulin. High expression of α-tubulin was demonstrated to be positively correlated with cancer pathological grading. Both co-immunoprecipitation and immunofluorescence staining implicated the interaction between SFN metabolite-induced phosphorylated ERK1/2 and α-tubulin, and Caspase 3 cleavage assay showed that α-tubulin might be the substrate for cleaved Caspase 3. More, the SFN metabolite-mediated reduction of α-tubulin increased the depolymerization and instability of microtubules by microtubule polymerization assay. Reversely, microtubule-associated protein Stathmin-1 phosphorylation was increased via phosphorylated ERK1/2 and total Stathmin-1 was reduced, which might promote over-stability of microtubules. Immunofluorescence staining also showed that SFN metabolites induced the 'nest-like' structures of microtubule distribution resulting from the disrupted and aggregated microtubules, and abnormal nuclear division, suggesting that the disturbance of spindle formation and mitosis turned up. Thus, SFN-Cys and SFN-NAC triggered the dynamic imbalance of microtubules, microtubule disruption leading to cell apoptosis. These findings provided a novel insight into the chemotherapy of human prostate cancer.
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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