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Preventing skin toxicities induced by EGFR inhibitors by topically blocking drug-receptor interactions
Nethanel Friedman1, Liza Weinstein-Fudim2,3, Yelena Mostinski2
1Institute for Drug Research, School of Pharmacy, Faculty of Medicine, Hebrew University of Jerusalem, Jerusalem 91120, Israel.
Abstract:
Epidermal growth factor receptor (EGFR) inhibitors are used to treat many advanced-stage epithelial cancers but induce severe skin toxicities in most treated patients. These side effects lead to a deterioration in the quality of life of the patients and compromise the anticancer treatment. Current treatment strategies for these skin toxicities focus on symptom reduction rather than preventing the initial trigger that causes the toxicity. In this study, we developed a compound and method for treating "on-target" skin toxicity by blocking the drug at the site of toxicity without reducing the systemic dose reaching the tumor. We first screened for small molecules that effectively blocked the binding of anti-EGFR monoclonal antibodies to EGFR and identified a potential candidate, SDT-011. In silico docking predicted that SDT-011 interacted with the same residues on EGFR found to be important for the binding of EGFR inhibitors cetuximab and panitumumab. Binding of SDT-011 to EGFR reduced the binding affinity of cetuximab to EGFR and could reactivate EGFR signaling in keratinocyte cell lines, ex vivo cetuximab-treated whole human skin, and A431-injected mice. Specific small molecules were topically applied and were delivered via a slow-release system derived from biodegradable nanoparticles that penetrate the hair follicles and sebaceous glands, within which EGFR is highly expressed. Our approach has the potential to reduce skin toxicity caused by EGFR inhibitors.
Insights
Researchers developed a novel topical treatment to prevent skin toxicities caused by epidermal growth factor receptor (EGFR) inhibitors. This approach blocks the drug locally, improving patient quality of life without compromising cancer treatment efficacy.
Area of Science:
- Oncology
- Dermatology
- Pharmacology
Background:
- Epidermal growth factor receptor (EGFR) inhibitors are crucial for treating advanced epithelial cancers.
- These inhibitors often cause severe skin toxicities, diminishing patient quality of life and treatment adherence.
- Current management focuses on symptom relief, not addressing the root cause of toxicity.
Purpose of the Study:
- To develop a method for preventing EGFR inhibitor-induced skin toxicity.
- To identify a compound that blocks anti-EGFR monoclonal antibodies at the skin.
- To maintain systemic drug efficacy while mitigating local side effects.
Main Methods:
- Screening for small molecules that inhibit anti-EGFR antibody binding to EGFR.
- Utilizing in silico docking to predict compound-EGFR interactions.
- Developing a topical, slow-release nanoparticle delivery system for targeted follicular and sebaceous gland penetration.
Main Results:
- Identified SDT-011 as a candidate compound that binds to EGFR.
- SDT-011 reduced cetuximab binding affinity and reactivated EGFR signaling in skin models.
- Nanoparticle delivery system demonstrated effective penetration into EGFR-rich skin structures.
Conclusions:
- A novel topical treatment strategy targeting EGFR-mediated skin toxicity was developed.
- This approach has the potential to significantly reduce skin side effects of EGFR inhibitors.
- The method offers a way to improve patient outcomes and treatment adherence in cancer therapy.
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