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Published on: April 25, 2025
Improved tumor-targeting drug delivery and therapeutic efficacy by cationic liposome modified with truncated bFGF
Xiang Chen1, Xianhuo Wang, Yongsheng Wang
1West China Hospital, Sichuan University, Chengdu, People's Republic of China.
Abstract:
Fibroblast growth factor receptors (FGFRs), overexpressed on the surface of a variety of tumor cells and on tumor neovasculature in situ, are potential targets for tumor- and vascular-targeting therapy. This study aimed to develop a FGFR-mediated drug delivery system to target chemotherapeutic agents to FGFR-overexpressed tumor cells and tumor neovasculature endothelial cells in vitro and in vivo. Here we designed a truncated human basic fibroblast growth factor peptide (tbFGF), which was attached to the surface of cationic liposomal doxorubicin (LPs-DOX) and paclitaxel (LPs-PTX) via electrostatic force. Then we characterized the tbFGF-modified liposome (tbFGF-LPs) and examined internalization of doxorubicin in tumor cells (TRAMP-C1, B16) and HUVEC cells in vitro. In vivo, we evaluated the biodistribution and antitumor efficacy of tbFGF-LPs-DOX and tbFGF-LPs-PTX in C57BL/6J mice bearing TRAMP-C1 prostate carcinoma and B16 melanoma, respectively. The tbFGF-LPs-DOX significantly improved the uptake of doxorubicin in TRAMP-C1, B16 and HUVEC cells, respectively. Biodistribution study in B16 tumor-bearing mice showed that tbFGF-LPs-PTX achieved 7.1-fold (72.827+/-7.321mgh/L vs 10.292+/-0.775mgh/L, mean+/-SD, P<0.01) accumulation of paclitaxel in tumor tissue than those of free paclitaxel. More importantly, treatment of tumor-bearing mice with tbFGF-LPs-DOX and tbFGF-LPs-PTX showed the significant inhibition in tumor growth and improvement in survival rate as compared with mice treated with free and liposomal drugs in TRAMP-C1 and B16 tumor models, respectively. Furthermore, repeated intravenous administration of tbFGF-LPs-DOX/PTX did not induce anti-bFGF antibodies. These results suggested that this FGFR-mediated drug delivery system may provide a new treatment strategy for tumors which overexpress FGFRs.
Insights
This study developed a novel drug delivery system targeting Fibroblast Growth Factor Receptors (FGFRs) overexpressed in tumors. The modified liposomes significantly enhanced chemotherapy delivery and inhibited tumor growth in preclinical models.
Area of Science:
- Oncology
- Nanomedicine
- Drug Delivery
Background:
- Fibroblast Growth Factor Receptors (FGFRs) are overexpressed in various tumors and tumor vasculature.
- Targeting FGFRs offers a potential strategy for tumor- and vascular-targeting therapy.
Purpose of the Study:
- To develop a FGFR-mediated drug delivery system to target chemotherapeutic agents to FGFR-overexpressed tumor cells and neovasculature.
- To evaluate the in vitro and in vivo efficacy of this novel system.
Main Methods:
- A truncated human basic fibroblast growth factor peptide (tbFGF) was attached to liposomal doxorubicin (LPs-DOX) and paclitaxel (LPs-PTX).
- Characterization of tbFGF-modified liposomes (tbFGF-LPs) and assessment of drug uptake in tumor and endothelial cells in vitro.
- Evaluation of biodistribution and antitumor efficacy of tbFGF-LPs-DOX and tbFGF-LPs-PTX in relevant mouse tumor models in vivo.
Main Results:
- tbFGF-LPs significantly improved doxorubicin uptake in tumor and HUVEC cells.
- tbFGF-LPs-PTX demonstrated a 7.1-fold increase in paclitaxel accumulation in tumor tissue compared to free paclitaxel.
- Significant inhibition of tumor growth and improved survival rates were observed in mice treated with tbFGF-LPs-DOX and tbFGF-LPs-PTX.
Conclusions:
- The developed FGFR-mediated drug delivery system effectively targets FGFR-overexpressing tumors.
- This system shows promising potential as a new therapeutic strategy for FGFR-driven cancers.
- Repeated administration did not induce anti-bFGF antibodies, suggesting good tolerability.
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