Related Experiment Video
Updated: Jul 4, 2025

A Robust Discovery Platform for the Identification of Novel Mediators of Melanoma Metastasis
Published on: March 8, 2022
Methods to study xenografted human cancer in genetically diverse mice
Muneer G Hasham1, Jennifer K Sargent1, Mark A Warner1
1The Jackson Laboratory, Bar Harbor, ME 04605 USA.
Abstract:
Xenografting human cancer tissues into mice to test new cures against cancers is critical for understanding and treating the disease. However, only a few inbred strains of mice are used to study cancers, and derivatives of mainly one strain, mostly NOD/ShiLtJ, are used for therapy efficacy studies. As it has been demonstrated when human cancer cell lines or patient-derived tissues (PDX) are xenografted into mice, the neoplastic cells are human but the supporting cells that comprise the tumor (the stroma) are from the mouse. Therefore, results of studies of xenografted tissues are influenced by the host strain. We previously published that when the same neoplastic cells are xenografted into different mouse strains, the pattern of tumor growth, histology of the tumor, number of immune cells infiltrating the tumor, and types of circulating cytokines differ depending on the strain. Therefore, to better comprehend the behavior of cancer in vivo, one must xenograft multiple mouse strains. Here we describe and report a series of methods that we used to reveal the genes and proteins expressed when the same cancer cell line, MDA-MB-231, is xenografted in different hosts. First, using proteomic analysis, we show how to use the same cell line in vivo to reveal the protein changes in the neoplastic cell that help it adapt to its host. Then, we show how different hosts respond molecularly to the same cell line. We also find that using multiple strains can reveal a more suitable host than those traditionally used for a "difficult to xenograft" PDX. In addition, using complex trait genetics, we illustrate a feasible method for uncovering the alleles of the host that support tumor growth. Finally, we demonstrate that Diversity Outbred mice, the epitome of a model of mouse-strain genetic diversity, can be xenografted with human cell lines or PDX using 2-deoxy-D-glucose treatment.
Insights
Xenografting human cancer cells into diverse mouse strains reveals how cancer adapts to hosts. This approach identifies host genes influencing tumor growth and finds better models for difficult-to-grow patient-derived xenografts.
Area of Science:
- Oncology
- Genetics
- Immunology
Background:
- Xenografting human cancer tissues into mice is crucial for cancer research and therapy development.
- Current xenograft models predominantly use limited mouse strains, potentially skewing results due to host-specific factors.
- Tumor stroma, derived from the mouse host, significantly influences xenograft outcomes.
Conclusions:
- Utilizing multiple mouse strains in xenograft studies provides a more comprehensive understanding of cancer biology in vivo.
- This multi-strain approach can uncover host factors critical for tumor progression and identify improved models for cancer research.
- Diversity Outbred mice offer a valuable platform for xenografting, enhancing the study of cancer genetics and host interactions.

