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Can RNAi-mediated hsp90α knockdown in combination with 17-AAG be a therapy for glioma?
Adi Mehta1, Amal Shervington, John Howl
1Brain Tumour North West (BTNW), Faculty of Science and Technology, University of Central Lancashire (UCLan), Preston PR1 2HE, UK.
Abstract:
Heat shock protein 90 promotes tumor progression and survival and has emerged as a vital therapeutic target. Previously we reported that the combinatorial treatment of 17AAG/sihsp90α significantly downregulated Hsp90α mRNA and protein levels in Glioblastoma Multiforme (GBM). Here we investigated the ability of cell penetrating peptide (Tat48-60 CPP)-mediated siRNA-induced hsp90α knockdown as a single agent and in combination with 17-allylamino-17-demethoxygeldanamycin (17-AAG) to induce tumor growth inhibition in GBM and whether it possessed therapeutic implications. GBM and non-tumorigenic cells exposed to siRNA and/or 17-AAG were subsequently assessed by qRT-PCR, immunofluorescence, FACS analysis, quantitative Akt, LDH leakage and cell viability assays. PAGE was performed for serum stability assessment. A combination of siRNA/17-AAG treatment significantly induced Hsp90α gene and protein knockdown by 95% and 98%, respectively, concomitant to 84% Akt kinase activity attenuation, induced cell cycle arrest and tumor-specific cytotoxicity by 88%. Efficient complex formation between CPP and siRNA exhibited improved serum stability of the siRNA with minimal intrinsic toxicity in vitro. The preliminary in vivo results showed that combination therapy induced hsp90α knockdown and attenuated Akt kinase activity in intracranial glioblastoma mouse models. The results imply that RNAi-mediated hsp90α knockdown increases 17-AAG treatment efficacy in GBM. In addition, the cytotoxic response observed was the consequence of downregulation of hsp90α gene expression, reduced Akt kinase activity and S-G2/M cell cycle arrest. These results are novel and highlight the ability of Tat to efficiently deliver siRNA in GBM and suggest that the dual inhibition of Hsp90 has therapeutic potentials.
Insights
Combining Tat-mediated siRNA with 17-AAG effectively targets Heat Shock Protein 90 (Hsp90) in Glioblastoma Multiforme (GBM). This dual inhibition significantly reduces tumor growth, offering new therapeutic potential for GBM treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Heat shock protein 90 (Hsp90) is crucial for tumor progression and survival, making it a key therapeutic target.
- Previous research demonstrated that combined treatment with 17-allylamino-17-demethoxygeldanamycin (17-AAG) and siRNA targeting Hsp90α (siHsp90α) downregulated Hsp90α in Glioblastoma Multiforme (GBM).
Purpose of the Study:
- To investigate the efficacy of cell-penetrating peptide (Tat48-60 CPP)-mediated siRNA targeting Hsp90α, alone and in combination with 17-AAG, for inhibiting GBM tumor growth.
- To assess the therapeutic implications of this combined approach.
Main Methods:
- Glioblastoma and non-tumorigenic cells were treated with siRNA and/or 17-AAG.
- Assays included qRT-PCR, immunofluorescence, FACS analysis, quantitative Akt activity, LDH leakage, and cell viability.
- Serum stability of the siRNA-CPP complex was assessed using PAGE.
Main Results:
- The siRNA/17-AAG combination achieved significant Hsp90α gene (95%) and protein (98%) knockdown.
- This resulted in 84% Akt kinase activity attenuation, cell cycle arrest, and 88% tumor-specific cytotoxicity.
- The Tat-siRNA complex demonstrated improved serum stability and minimal intrinsic toxicity in vitro.
- Preliminary in vivo studies in intracranial glioblastoma models confirmed Hsp90α knockdown and Akt activity reduction.
Conclusions:
- RNAi-mediated Hsp90α knockdown enhances the efficacy of 17-AAG treatment in GBM.
- The observed cytotoxicity is attributed to Hsp90α gene downregulation, reduced Akt activity, and S-G2/M cell cycle arrest.
- Tat peptide efficiently delivers siRNA in GBM, suggesting dual Hsp90 inhibition holds significant therapeutic potential for GBM.
