| Literature DB >> 30157855 |
Nikki P Lee1, Chung Man Chan2, Lai Nar Tung2, Hector K Wang2, Simon Law2.
Abstract
Esophageal squamous cell carcinoma (ESCC) is the predominant subtype of esophageal cancer worldwide and highly prevalent in less developed regions. Management of ESCC is challenging and involves multimodal treatments. Patient prognosis is generally poor especially for those diagnosed in advanced disease stage. One factor contributing to this clinical dismal is the incomplete understanding of disease mechanism, for which this situation is further compounded by the presence of other limiting factors for disease diagnosis, patient prognosis and treatments. Tumor xenograft animal models including subcutaneous tumor xenograft model, orthotopic tumor xenograft model and patient-derived tumor xenograft model are vital tools for ESCC research. Establishment of tumor xenograft models involves the implantation of human ESCC cells/xenografts/tissues into immunodeficient animals, in which mice are most commonly used. Different tumor xenograft models have their own advantages and limitations, and these features serve as key factors to determine the use of these models at different stages of research. Apart from their routine use on basic research to understand disease mechanism of ESCC, tumor xenograft models are actively employed for undertaking preclinical drug screening project and biomedical imaging research.Entities:
Keywords: ESCC; Orthotopic tumor xenograft; Patient-derived tumor xenograft; Subcutaneous tumor xenograft
Mesh:
Year: 2018 PMID: 30157855 PMCID: PMC6116446 DOI: 10.1186/s12929-018-0468-7
Source DB: PubMed Journal: J Biomed Sci ISSN: 1021-7770 Impact factor: 8.410
Fig. 1The preclinical use of tumor xenograft mouse models for ESCC research. Different types of tumor xenograft mouse models are developed for ESCC research, which include subcutaneous tumor xenograft model, orthotopic tumor xenograft model and patient-derived tumor xenograft model (the diagram shows the development of this model in a subcutaneous way). These models are commonly used in preclinical research to understand disease mechanism, to perform preclinical drug testing and to develop biomedical imaging. Results derived from the use of these models can advance cancer research and can lead to better patient management in the aspects of cancer diagnosis, patient prognosis, new treatment development and development of new treatment response monitoring methods. The use of animals for research has been approved by the Committee on the Use of Live Animals in Teaching and Research (CULATR) of our institute.
Key features of tumor xenograft models for ESCC research
| Tumor xenograft models | Key features |
|---|---|
| Subcutaneous |
|
| • easy to establish | |
|
| |
| • incorrect tumor microenvironment | |
| Orthotopic |
|
| • correct tumor microenvironment | |
|
| |
| • technique demanding | |
| Patient-derived |
|
| • high resemblance to patient tumor | |
|
| |
| • long latency period |
This table lists the key features of different tumor xenograft models for ESCC research based on comprehensive reviews on tumor xenograft models for cancer research [8, 35]
Technical details for establishing ESCC tumor xenograft models
| Tumor xenograft model | Technical details | References |
|---|---|---|
| Subcutaneous | Starting material: human ESCC cell line | [ |
| Injected cell number: 2 × 106 | ||
| Mouse strain: nude, SCID, NOD/SCID | ||
| Cell injection site: flank | ||
| Orthotopic | Starting material: Human ESCC cell line | [ |
| Mouse strain: nude | ||
| Tumor development site: cervical and abdominal esophagus | ||
| Patient-derived | Starting material: Human ESCC tumor tissue | [ |
| Mouse strain: NOD/SCID | ||
| Tumor implantation method: subcutaneous |
This table shows some examples from representative publications and does not mean to be inclusive
Uses of different tumor xenograft models for preclinical drug testing for ESCC
| Tumor xenograft models | Test compounds/drugs | References |
|---|---|---|
| Subcutaneous | Temsirolimus | [ |
| Subcutaneous | YQ23 alone or combined with cisplatin or 5-fluorouracil | [ |
| Subcutaneous | Ginsenoside Rg3 alone or combined with paclitaxel and cisplatin | [ |
| Subcutaneous | Afatinib | [ |
| Orthotopic | Temsirolimus | [ |
| Patient-derived | Lapatinib alone and in combination with 5-fluorouracil or oxaliplatin | [ |
| Patient-derived | Cisplatin and 5-fluorouracil | [ |
| Patient-derived | Trastuzumab | [ |
Collections of patient-derived tumor xenograft models for ESCC
| Number of established models | Characterized deregulations | References |
|---|---|---|
| 37 | EGFR, K-ras, B-raf and PIK3CA mutation HER2 expression | [ |
| 25 | HER2 expression and amplification | [ |
| 5 | EGFR, K-ras, B-raf and PIK3CA mutation HER2 expression and amplification | [ |
Abbreviations used: EGFR epidermal growth factor receptor, HER2 human epidermal growth factor receptor 2 PIK3CA phosphatidylinositol-4,5-bisphosphate 3-kinase catalytic subunit alpha