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An Oncogenic Hepatocyte-Induced Orthotopic Mouse Model of Hepatocellular Cancer Arising in the Setting of Hepatic Inflammation and Fibrosis
Published on: September 12, 2019
Overexpressed or hyperactivated Rac1 as a target to treat hepatocellular carcinoma
Vincent Sauzeau1, Julien Beignet2, Gérard Vergoten3
1Université de Nantes, CHU Nantes, CNRS, INSERM, Institut du Thorax, Nantes, France.
Abstract:
Despite novel targeted and immunotherapies, the prognosis remains bleak for patients with hepatocellular carcinoma (HCC), especially for advanced and/or metastatic forms. The rapid emergence of drug resistance is a major obstacle in the success of chemo-, targeted-, immuno-therapies of HCC. Novel targets are needed. The prominent roles of the small GTPase Rac1 in the development and progression of HCC are discussed here, together with its multiple protein partners, and the targeting of Rac1 with RNA-based regulators and small molecules. We discuss the oncogenic functions of Rac1 in HCC, including the contribution of Rac1 mutants and isoform Rac1b. Rac1 is a ubiquitous target, but the protein is frequently overexpressed and hyperactivated in HCC. It contributes to the aggressivity of the disease, with key roles in cancer cell proliferation, tumor metastasis and resistance to treatment. Small molecule targeting Rac1, indirectly or directly, have shown anticancer effects in HCC experimental models. Rac1-binding agents such as EHT 1864 and analogues offer novel opportunities to combat HCC. We discuss the different modalities to repress Rac1 overactivation in HCC with small molecules and the combination with reference drugs to promote cancer cell death and to repress cell invasion. We highlight the necessity to combine Rac1-targeted approach with appropriate biomarkers to select Rac1 activated tumors. Our analysis underlines the prominent oncogenic functions of Rac1 in HCC and discuss the modalities to target this small GTPase. Rac1 shall be considered as a valid target to limit the acquired and intrinsic resistance of HCC tumors and their metastatic potential.
Insights
Targeting the small GTPase Rac1 shows promise for treating hepatocellular carcinoma (HCC). Inhibiting Rac1 may overcome drug resistance and reduce metastasis in advanced HCC patients.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Hepatocellular carcinoma (HCC) prognosis remains poor, particularly for advanced/metastatic stages.
- Drug resistance is a significant challenge for current HCC therapies.
- Novel therapeutic targets are urgently needed for effective HCC treatment.
Purpose of the Study:
- To discuss the oncogenic roles of the small GTPase Rac1 in HCC development and progression.
- To explore targeting Rac1 using RNA-based regulators and small molecules.
- To evaluate Rac1 as a therapeutic target for overcoming drug resistance and metastasis in HCC.
Main Methods:
- Review of literature on Rac1's function in HCC.
- Analysis of Rac1 overexpression and hyperactivation in HCC.
- Discussion of small molecule inhibitors and RNA-based regulators targeting Rac1.
Main Results:
- Rac1 is frequently overexpressed and hyperactivated in HCC, promoting cancer cell proliferation, metastasis, and treatment resistance.
- Small molecule inhibitors targeting Rac1 have demonstrated anticancer effects in HCC models.
- Rac1-binding agents like EHT 1864 show potential for HCC treatment.
Conclusions:
- Rac1 is a key oncogenic driver in HCC, contributing to disease aggressiveness and therapeutic resistance.
- Targeting Rac1, directly or indirectly, offers a promising strategy to combat HCC.
- Combining Rac1-targeted therapies with biomarkers for patient selection is crucial for clinical success.
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