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27-Hydroxycholesterol Impairs Plasma Membrane Lipid Raft Signaling as Evidenced by Inhibition of IL6-JAK-STAT3
Shweta Dambal1, Mahmoud Alfaqih2, Sergio Sanders3
1Department of Pathology, Duke University School of Medicine, Durham, North Carolina.
Abstract:
We recently reported that restoring the CYP27A1-27hydroxycholesterol axis had antitumor properties. Thus, we sought to determine the mechanism by which 27HC exerts its anti-prostate cancer effects. As cholesterol is a major component of membrane microdomains known as lipid rafts, which localize receptors and facilitate cellular signaling, we hypothesized 27HC would impair lipid rafts, using the IL6-JAK-STAT3 axis as a model given its prominent role in prostate cancer. As revealed by single molecule imaging of DU145 prostate cancer cells, 27HC treatment significantly reduced detected cholesterol density on the plasma membranes. Further, 27HC treatment of constitutively active STAT3 DU145 prostate cancer cells reduced STAT3 activation and slowed tumor growth in vitro and in vivo. 27HC also blocked IL6-mediated STAT3 phosphorylation in nonconstitutively active STAT3 cells. Mechanistically, 27HC reduced STAT3 homodimerization, nuclear translocation, and decreased STAT3 DNA occupancy at target gene promoters. Combined treatment with 27HC and STAT3 targeting molecules had additive and synergistic effects on proliferation and migration, respectively. Hallmark IL6-JAK-STAT gene signatures positively correlated with CYP27A1 gene expression in a large set of human metastatic castrate-resistant prostate cancers and in an aggressive prostate cancer subtype. This suggests STAT3 activation may be a resistance mechanism for aggressive prostate cancers that retain CYP27A1 expression. In summary, our study establishes a key mechanism by which 27HC inhibits prostate cancer by disrupting lipid rafts and blocking STAT3 activation. IMPLICATIONS: Collectively, these data show that modulation of intracellular cholesterol by 27HC can inhibit IL6-JAK-STAT signaling and may synergize with STAT3-targeted compounds.
Insights
Restoring the CYP27A1-27hydroxycholesterol (27HC) axis inhibits prostate cancer by disrupting lipid rafts and blocking the IL6-JAK-STAT3 pathway. This mechanism offers potential for combination therapies targeting aggressive prostate cancers.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- The CYP27A1-27hydroxycholesterol (27HC) axis demonstrates antitumor properties.
- Cholesterol's role in lipid rafts is crucial for cellular signaling.
- The IL6-JAK-STAT3 pathway is significant in prostate cancer progression.
Purpose of the Study:
- To elucidate the mechanism of 27HC's anti-prostate cancer effects.
- To investigate 27HC's impact on lipid rafts and the IL6-JAK-STAT3 axis.
Main Methods:
- Single molecule imaging of DU145 prostate cancer cells.
- Assessing STAT3 activation and tumor growth in vitro and in vivo.
- Analyzing STAT3 homodimerization, nuclear translocation, and DNA occupancy.
Main Results:
- 27HC treatment reduced plasma membrane cholesterol density.
- 27HC inhibited STAT3 activation and slowed tumor growth.
- 27HC blocked IL6-mediated STAT3 phosphorylation and downstream signaling.
Conclusions:
- 27HC inhibits prostate cancer by disrupting lipid rafts and blocking STAT3 activation.
- Modulating intracellular cholesterol with 27HC can inhibit IL6-JAK-STAT signaling.
- 27HC may synergize with STAT3-targeted compounds for prostate cancer treatment.
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