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Targeting STAT3 to Suppress Systemic Pro-Oncogenic Effects from Hepatic Radiofrequency Ablation
Gaurav Kumar1, S Nahum Goldberg1, Svetlana Gourevitch1
1From the Laboratory for Minimally Invasive Tumor Therapies, Department of Radiology, Beth Israel Deaconess Medical Center, Harvard Medical School, 1 Deaconess Rd, WCC 308-B, Boston, MA 02215 (G.K., S.N.G., M.A.); Division of Image-guided Therapy and Interventional Oncology, Department of Radiology (S.N.G.), and Goldyne Savad Institute of Gene Therapy (S.G., E.G.), Hadassah Hebrew University Hospital, Jerusalem, Israel; and Department of Pharmaceutical Sciences, Northeastern University, Boston, Mass (T.L., V.T.).
Abstract:
Purpose To (a) identify key expressed genes in the periablational rim after radiofrequency ablation (RFA) and their role in driving the stimulation of distant tumor growth and (b) use adjuvant drug therapies to block key identified mediator(s) to suppress off-target tumorigenic effects of hepatic RFA. Materials and Methods This institutional animal care and use committee-approved study was performed in C57BL6 mice (n = 20) and F344 rats (n = 124). First, gene expression analysis was performed in mice after hepatic RFA or sham procedure; mice were sacrificed 24 hours to 7 days after treatment. Data were analyzed for differentially expressed genes (greater than twofold change) and their functional annotations. Next, animals were allocated to hepatic RFA or sham treatment with or without STAT3 (signal transducer and activator of transcription 3) inhibitor S3I-201 for periablational phosphorylated STAT3 immunohistochemistry analysis at 24 hours. Finally, animals with subcutaneous R3230 adenocarcinoma tumors were allocated to RFA or sham treatment with or without a STAT3 inhibitor (S3I-201 or micellar curcumin, eight arms). Outcomes included distant tumor growth, proliferation (Ki-67 percentage), and microvascular density. Results At 24 hours, 217 genes had altered expression (107 upregulated and 110 downregulated), decreasing to 55 genes (27 upregulated and 28 downregulated) and 18 genes (four upregulated, 14 downregulated) at 72 hours and 7 days, respectively. At 24 hours, STAT3 occurred in four of seven activated pathways associated with pro-oncogenic genes at network analysis. Immunohistochemistry analysis confirmed elevated periablational phosphorylated STAT3 24 hours after RFA, which was suppressed with S3I-201 (percentage of positive cells per field: 31.7% ± 3.4 vs 3.8% ± 1.7; P < .001). Combined RFA plus S3I-201 reduced systemic distant tumor growth at 7 days (end diameter: 11.8 mm ± 0.5 with RFA plus S3I-201, 19.8 mm ± 0.7 with RFA alone, and 15 mm ± 0.7 with sham procedure; P < .001). STAT3 inhibition with micellar curcumin also suppressed postablation stimulation of distant tumor growth, proliferation, and microvascular density (P < .01). Conclusion Gene expression analysis identified multiple pathways upregulated in the periablational rim after hepatic RFA, of which STAT3 was active in four of seven. Postablation STAT3 activation is linked to increased distant tumor stimulation and can be suppressed with adjuvant STAT3 inhibitors. © RSNA, 2017.
Insights
Radiofrequency ablation (RFA) can stimulate distant tumor growth by activating STAT3. Inhibiting STAT3 with drugs like S3I-201 or micellar curcumin suppressed this effect, offering a potential adjuvant therapy for RFA.
Area of Science:
- Oncology
- Molecular Biology
- Interventional Radiology
Background:
- Radiofrequency ablation (RFA) is a common cancer treatment.
- RFA may inadvertently stimulate distant tumor growth.
- Identifying molecular mechanisms behind RFA-induced tumor stimulation is crucial.
Purpose of the Study:
- To identify genes in the periablational rim after RFA that drive distant tumor growth.
- To investigate the role of STAT3 activation in RFA-induced tumor stimulation.
- To evaluate adjuvant drug therapies targeting STAT3 to suppress off-target effects of RFA.
Main Methods:
- Gene expression analysis in mice and rats following hepatic RFA.
- Immunohistochemistry for phosphorylated STAT3 in periablational tissue.
- Treatment with STAT3 inhibitors (S3I-201, micellar curcumin) in tumor-bearing animals.
- Assessment of distant tumor growth, proliferation, and microvascular density.
Main Results:
- Gene expression analysis revealed altered expression of 217 genes at 24 hours post-RFA.
- STAT3 was identified as active in key pro-oncogenic pathways.
- Periablational phosphorylated STAT3 was elevated post-RFA and suppressed by S3I-201.
- Combined RFA and STAT3 inhibition significantly reduced distant tumor growth, proliferation, and microvascular density.
Conclusions:
- Hepatic RFA upregulates multiple pathways in the periablational rim, with STAT3 being a key mediator.
- Post-RFA STAT3 activation is linked to increased distant tumor stimulation.
- Adjuvant STAT3 inhibitors can suppress RFA-induced distant tumor growth, suggesting a potential therapeutic strategy.
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