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Epidermal growth factor (EGF)-based activatable probe for predicting therapeutic outcome of an EGF-based doxorubicin
Han Young Kim1, Sang Hoon Um1, Yejin Sung1
1Biomedical Research Institute, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.
Abstract:
One of the most promising approaches for the treatment of colorectal cancer is targeting epidermal growth factor receptor (EGFR). Comprehensive research has led to significant clinical outcomes using EGFR-targeted anticancer drugs; however, the response to these drugs still largely varies among individuals. The current diagnostic platform provides limited information that does not enable successful prediction of the anticancer performance of EGFR-targeted drugs. Here, we developed a EGFR-targeted activatable probe for predicting therapeutic efficacy of EGFR-targeted doxorubicin prodrug in colorectal cancer therapy. The EGF-conjugated fluorescence-activatable probe (EGF-probe) and EGF-conjugated doxorubicin prodrug (EGF-prodrug) were both fabricated using peptide substrates that can be dissociated by lysosomal enzymes, and thus share an intracellular mechanism of action. We demonstrated that after EGFR-mediated endocytosis, lysosomal enzymes de-quench the fluorescence of EGF-probe and activate the cytotoxicity of EGF-prodrug. When evaluated in vivo, EGF-probe yielded an outstanding cancer-specific imaging ability with reduced background signals. EGF-prodrug also successfully targeted the tumor and promoted cancer cell death. We tested different colorectal cancer cell types to investigate the correlation between the fluorescence recovery efficiency of EGF-probe and the cytotoxicity of EGF-prodrug. Strong correlations were observed both in vitro and in vivo. The actions of EGF-probe and EGF-prodrug were dependent on the inherent lysosomal activity of the cell type rather than its EGFR expression level. Our proposed approach using EGF-probe and EGF-prodrug may overcome the major drawback of the conventional theranostic platform and provide great opportunity for successful personalized cancer therapy.
Insights
A novel epidermal growth factor receptor (EGFR) targeted probe predicts colorectal cancer drug efficacy. This approach utilizes lysosomal activity, not EGFR levels, for personalized cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Nanotechnology
Background:
- Colorectal cancer (CRC) treatment often targets the epidermal growth factor receptor (EGFR).
- Current EGFR-targeted therapies show variable patient responses, limiting treatment efficacy.
- Existing diagnostic platforms lack the precision to predict individual responses to EGFR-targeted drugs.
Purpose of the Study:
- To develop an EGFR-targeted activatable probe for predicting the therapeutic efficacy of EGFR-targeted doxorubicin prodrugs in colorectal cancer.
- To establish a theranostic platform for personalized colorectal cancer treatment.
Main Methods:
- Fabrication of an EGF-conjugated fluorescence-activatable probe (EGF-probe) and an EGF-conjugated doxorubicin prodrug (EGF-prodrug) using lysosomally dissociable peptide substrates.
- Evaluation of probe and prodrug intracellular mechanisms involving EGFR-mediated endocytosis and lysosomal enzyme activation.
- In vitro and in vivo assessment of EGF-probe's imaging ability and EGF-prodrug's cytotoxicity in colorectal cancer models.
Main Results:
- EGF-probe demonstrated excellent cancer-specific imaging with low background signals in vivo.
- EGF-prodrug effectively targeted tumors and induced cancer cell death.
- A strong correlation was observed between EGF-probe fluorescence recovery and EGF-prodrug cytotoxicity, both in vitro and in vivo.
- Therapeutic response was dependent on cellular lysosomal activity, not EGFR expression levels.
Conclusions:
- The developed EGF-probe and EGF-prodrug system offers a promising theranostic approach for colorectal cancer.
- This method overcomes limitations of conventional platforms by predicting drug efficacy based on lysosomal activity.
- The approach holds significant potential for advancing personalized cancer therapy.
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