A Gelatinases-targeting scFv-based Fusion Protein Shows Enhanced Antitumour Activity with Endostar against Hepatoma
Ruijuan Gao1, Liang Li1, Boyang Shang1
1Department of Oncology, Institute of Medicinal Biotechnology, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing, China.
Abstract:
Gelatinases play important roles in tumour invasion and metastasis and are thus considered promising targets for cancer therapy. In this study, a new single-chain variable fragment (scFv)-based fusion protein Fv-LDP, composed of the anti-gelatinases scFv and lidamycin apoprotein (LDP), was prepared, and its combination with angiogenesis inhibitor Endostar was then investigated. The fusion protein Fv-LDP specifically bound to various tumour cells, and its binding capability to human pulmonary giant cell carcinoma (PG) cells was higher than that of LDP. Fv-LDP inhibited the expression and secretion of gelatinases and could be internalized into tumour cells via endocytosis. Fv-LDP also suppressed the growth of human hepatoma cells and murine hepatoma 22 transplanted in Kunming mice in various degrees. In addition, Endostar could enhance the synergistic or additive inhibition of Fv-LDP on the growth, migration or invasion of human hepatoma cells shown by a colony formation assay and a transwell-based migration or invasion assay, respectively. In vivo, Fv-LDP/Endostar combination showed a significantly synergistic effect on the growth of a human hepatoma xenograft, with an inhibition rate of 80.8% compared with the Fv-LDP (44.1%) or Endostar (8.9%)-treated group. The above-mentioned results indicate that the fusion protein Fv-LDP is effective against transplantable hepatoma in mice and human hepatoma xenografts in athymic mice. Moreover, Endostar can potentiate the inhibition effect of Fv-LDP on the growth of human hepatoma cells and xenografts. These data will provide a new combined strategy for improving the therapeutic efficacy of treatments for hepatoma or other gelatinase-overexpressing tumours.
Insights
A novel fusion protein, Fv-LDP, targeting gelatinases, effectively suppressed hepatoma growth. Combining Fv-LDP with Endostar significantly enhanced anti-cancer effects in vitro and in vivo.
Area of Science:
- Oncology
- Biotechnology
- Cancer Therapy
Background:
- Gelatinases are crucial in tumor invasion and metastasis, making them key therapeutic targets.
- Developing novel agents to inhibit gelatinase activity is a significant area of cancer research.
Purpose of the Study:
- To prepare and evaluate a single-chain variable fragment (scFv)-based fusion protein, Fv-LDP, targeting gelatinases.
- To investigate the combination therapy of Fv-LDP with the angiogenesis inhibitor Endostar for hepatoma treatment.
Main Methods:
- Preparation of Fv-LDP fusion protein.
- Assessing Fv-LDP binding to tumor cells and its internalization via endocytosis.
- Evaluating Fv-LDP and Endostar combination effects on hepatoma cell growth, migration, and invasion using colony formation and Transwell assays.
- In vivo studies using murine hepatoma models and human hepatoma xenografts.
Main Results:
- Fv-LDP specifically bound to tumor cells and inhibited gelatinase expression and secretion.
- Fv-LDP demonstrated inhibitory effects on hepatoma cell growth in vitro and in vivo.
- The combination of Fv-LDP and Endostar exhibited synergistic or additive inhibition of hepatoma cell growth, migration, and invasion.
- In vivo, Fv-LDP/Endostar combination achieved an 80.8% inhibition rate against human hepatoma xenografts.
Conclusions:
- The Fv-LDP fusion protein is effective against transplantable and xenografted hepatoma models.
- Endostar potentiates the anti-tumor effects of Fv-LDP, suggesting a promising combined therapeutic strategy for hepatoma and other gelatinase-overexpressing cancers.
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