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Updated: Jul 5, 2025

Intramucosal Inoculation of Squamous Cell Carcinoma Cells in Mice for Tumor Immune Profiling and Treatment Response Assessment
Published on: April 22, 2019
Establishment of head and neck squamous cell carcinoma mouse models for cetuximab resistance and sensitivity
Hannah Zaryouh1, Ines De Pauw1, Hasan Baysal1
1Center for Oncological Research (CORE), Integrated Personalized & Precision Oncology Network (IPPON), University of Antwerp, Campus Drie Eiken, Antwerp 2610, Belgium.
Abstract:
Aim: Acquired resistance to the targeted agent cetuximab poses a significant challenge in finding effective anti-cancer treatments for head and neck squamous cell carcinoma (HNSCC). To accurately study novel combination treatments, suitable preclinical mouse models for cetuximab resistance are key yet currently limited. This study aimed to optimize an acquired cetuximab-resistant mouse model, with preservation of the innate immunity, ensuring intact antibody-dependent cellular cytotoxicity (ADCC) functionality. Methods: Cetuximab-sensitive and acquired-resistant HNSCC cell lines, generated in vitro, were subcutaneously engrafted in Rag2 knock-out (KO), BALB/c Nude and CB17 Scid mice with/without Matrigel or Geltrex. Once tumor growth was established, mice were intraperitoneally injected twice a week with cetuximab for a maximum of 3 weeks. In addition, immunohistochemistry was used to evaluate the tumor and its microenvironment. Results: Despite several adjustments in cell number, cell lines and the addition of Matrigel, Rag2 KO and BALB/C Nude mice proved to be unsuitable for xenografting our HNSCC cell lines. Durable tumor growth of resistant SC263-R cells could be induced in CB17 Scid mice. However, these cells had lost their resistance phenotype in vivo. Immunohistochemistry revealed a high infiltration of macrophages in cetuximab-treated SC263-R tumors. FaDu-S and FaDu-R cells successfully engrafted into CB17 Scid mice and maintained their sensitivity/resistance to cetuximab. Conclusion: We have established in vivo HNSCC mouse models with intact ADCC functionality for cetuximab resistance and sensitivity using the FaDu-R and FaDu-S cell lines, respectively. These models serve as valuable tools for investigating cetuximab resistance mechanisms and exploring novel drug combination strategies.
Insights
Researchers developed new mouse models to study head and neck squamous cell carcinoma (HNSCC) resistance to cetuximab, preserving innate immunity and antibody-dependent cellular cytotoxicity (ADCC) for better cancer treatment research.
Area of Science:
- Oncology
- Immunology
- Preclinical Research
Background:
- Acquired resistance to cetuximab is a major obstacle in treating head and neck squamous cell carcinoma (HNSCC).
- Effective preclinical models are crucial for studying resistance mechanisms and developing new combination therapies.
- Existing models often lack intact innate immunity, limiting the study of antibody-dependent cellular cytotoxicity (ADCC).
Purpose of the Study:
- To optimize an in vivo mouse model for acquired cetuximab resistance in HNSCC.
- To ensure the model preserves innate immunity and functional antibody-dependent cellular cytotoxicity (ADCC).
- To provide a tool for investigating cetuximab resistance and combination strategies.
Main Methods:
- Generated cetuximab-sensitive and resistant HNSCC cell lines in vitro.
- Engrafted cell lines into CB17 Scid, Rag2 KO, and BALB/c Nude mice.
- Administered cetuximab to established tumors and analyzed tumor microenvironment via immunohistochemistry.
Main Results:
- CB17 Scid mice successfully supported xenograft growth of FaDu-S (sensitive) and FaDu-R (resistant) HNSCC cell lines, maintaining their respective phenotypes.
- Rag2 KO and BALB/c Nude mice were unsuitable for xenografting HNSCC cell lines.
- Immunohistochemistry showed macrophage infiltration in cetuximab-treated resistant tumors, but FaDu models maintained ADCC functionality.
Conclusions:
- Established in vivo HNSCC mouse models using FaDu-S and FaDu-R cell lines in CB17 Scid mice.
- These models retain cetuximab sensitivity/resistance and intact ADCC functionality.
- The models are valuable for studying cetuximab resistance mechanisms and combination therapies in HNSCC.
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