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Updated: May 26, 2026

RNA Interference-based Investigation of the Function of Heat Shock Protein 27 during Corneal Epithelial Wound Healing
Published on: September 27, 2016
Hsp27 silencing coordinately inhibits proliferation and promotes Fas-induced apoptosis by regulating the PEA-15
N Hayashi1, J W Peacock, E Beraldi
1Vancouver Prostate Centre, University of British Columbia, Vancouver, British Columbia, Canada.
Abstract:
Heat shock protein 27 (Hsp27) is emerging as a promising therapeutic target for treatment of various cancers. Although the role of Hsp27 in protection from stress-induced intrinsic cell death has been relatively well studied, its role in Fas (death domain containing member of the tumor necrosis factor receptor superfamily)-induced apoptosis and cell proliferation remains underappreciated. Here, we show that Hsp27 silencing induces dual coordinated effects, resulting in inhibition of cell proliferation and sensitization of cells to Fas-induced apoptosis through regulation of PEA-15 (15-kDa phospho-enriched protein in astrocytes). We demonstrate that Hsp27 silencing suppresses proliferation by causing PEA-15 to bind and sequester extracellular signal-regulated kinase (ERK), resulting in reduced translocation of ERK to the nucleus. Concurrently, Hsp27 silencing promotes Fas-induced apoptosis by inducing PEA-15 to release Fas-associating protein with a novel death domain (FADD), thus allowing FADD to participate in death receptor signaling. Conversely, Hsp27 overexpression promotes cell proliferation and suppresses Fas-induced apoptosis. Furthermore, we show that Hsp27 regulation of PEA-15 activity occurs in an Akt-dependent manner. Significantly, Hsp27 silencing in a panel of phosphatase and tensin homolog on chromosome 10 (PTEN) wild-type or null cell lines, and in LNCaP cells that inducibly express PTEN, resulted in selective growth inhibition of PTEN-deficient cancer cells. These data identify a dual coordinated role of Hsp27 in cell proliferation and Fas-induced apoptosis via Akt and PEA-15, and indicate that improved clinical responses to Hsp27-targeted therapy may be achieved by stratifying patient populations based on tumor PTEN expression.
Insights
Silencing Heat shock protein 27 (Hsp27) inhibits cancer cell proliferation and enhances Fas-induced apoptosis by regulating PEA-15. This targeted therapy shows promise, especially in PTEN-deficient tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cellular Signaling
Background:
- Heat shock protein 27 (Hsp27) is a potential cancer therapeutic target.
- Hsp27's role in Fas-induced apoptosis and cell proliferation is understudied.
- Hsp27 influences intrinsic cell death pathways.
Purpose of the Study:
- To investigate the role of Hsp27 in Fas-induced apoptosis and cell proliferation.
- To elucidate the mechanism of Hsp27's action via PEA-15, ERK, and FADD.
- To assess the therapeutic potential of Hsp27 targeting in PTEN-deficient cancers.
Main Methods:
- Hsp27 silencing and overexpression in cancer cell lines.
- Analysis of PEA-15, ERK, and FADD interactions.
- Assessment of Fas-induced apoptosis and cell proliferation.
- Evaluation of Akt and PTEN pathway involvement.
- Testing in PTEN wild-type/null and inducible PTEN cell lines.
Main Results:
- Hsp27 silencing inhibits proliferation by sequestering ERK via PEA-15.
- Hsp27 silencing sensitizes cells to Fas-induced apoptosis by releasing FADD.
- Hsp27 overexpression promotes proliferation and inhibits apoptosis.
- Hsp27's regulation of PEA-15 is Akt-dependent.
- Hsp27 silencing selectively inhibits growth of PTEN-deficient cancer cells.
Conclusions:
- Hsp27 plays a dual role in cell proliferation and Fas-induced apoptosis through Akt and PEA-15.
- Targeting Hsp27 offers a therapeutic strategy for cancer.
- Patient stratification based on PTEN expression can optimize Hsp27-targeted therapy outcomes.
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