Related Experiment Video
Updated: Feb 6, 2026

The In ovo CAM-assay as a Xenograft Model for Sarcoma
Published on: July 17, 2013
Targeting MEK in a Translational Model of Histiocytic Sarcoma
Marilia Takada1, Jeremy M L Hix2, Sarah Corner1
1Comparative Medicine and Integrative Biology Program, Michigan State University, East Lansing, Michigan.
Abstract:
Histiocytic sarcoma in humans is an aggressive orphan disease with a poor prognosis as treatment options are limited. Dogs are the only species that spontaneously develops histiocytic sarcoma with an appreciable frequency, and may have value as a translational model system. In the current study, high-throughput drug screening utilizing histiocytic sarcoma cells isolated from canine neoplasms identified these cells as particularly sensitive to a MEK inhibitor, trametinib. One of the canine cell lines carries a mutation in PTPN11 (E76K), and another one in KRAS (Q61H), which are associated with the activation of oncogenic MAPK signaling. Both mutations were previously reported in human histiocytic sarcoma. Trametinib inhibited sensitive cell lines by promoting cell apoptosis, indicated by a significant increase in caspase 3/7. Furthermore, in vitro findings were successfully recapitulated in an intrasplenic orthotopic xenograft mouse model, which represents a disseminated aggressive form of histiocytic sarcoma. Mice with histiocytic sarcoma xenograft neoplasms that were treated with trametinib had significantly longer survival times. Target engagement was validated as activity of ERK, downstream of MEK, was significantly downregulated in neoplasms of treated mice. Additionally, trametinib was found in plasma and neoplastic tissues within projected therapeutic levels. These findings demonstrate that in dogs, histiocytic sarcoma may be associated with a dysfunctional MAPK pathway, at least in some cases, and may be effectively targeted through MEK inhibition. Clinical trials to test safety and efficacy of trametinib in dogs with histiocytic sarcoma are warranted, and may provide valuable translational information to similar diseases in humans. Mol Cancer Ther; 17(11); 2439-50. ©2018 AACR.
Insights
Histiocytic sarcoma, a rare cancer, may be treatable with trametinib, a MEK inhibitor. This drug showed promise in canine models, offering hope for human patients with similar aggressive cancers.
Area of Science:
- Oncology
- Comparative Pathology
- Pharmacology
Background:
- Histiocytic sarcoma is an aggressive orphan disease in humans with limited treatment options.
- Dogs develop histiocytic sarcoma spontaneously, making them a valuable translational model.
- Canine histiocytic sarcoma shares genetic mutations (PTPN11, KRAS) with human forms, activating oncogenic MAPK signaling.
Purpose of the Study:
- To identify effective therapeutic targets for canine histiocytic sarcoma.
- To evaluate the efficacy of MEK inhibition in canine histiocytic sarcoma models.
- To explore the translational potential of canine histiocytic sarcoma as a model for human disease.
Main Methods:
- High-throughput drug screening of canine histiocytic sarcoma cells.
- In vitro studies using canine cell lines with known mutations (PTPN11 E76K, KRAS Q61H).
- In vivo validation using an intrasplenic orthotopic xenograft mouse model.
Main Results:
- Canine histiocytic sarcoma cells were sensitive to the MEK inhibitor trametinib.
- Trametinib induced apoptosis (caspase 3/7 increase) in sensitive cell lines.
- Trametinib treatment significantly increased survival in a mouse xenograft model, with validated target engagement (ERK downregulation).
Conclusions:
- Canine histiocytic sarcoma can be associated with MAPK pathway dysfunction and effectively targeted by MEK inhibition.
- Trametinib demonstrates therapeutic potential in preclinical canine models of histiocytic sarcoma.
- Further clinical trials in dogs are warranted and may offer valuable translational insights for human histiocytic sarcoma.
Related Concept Videos
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...
Translation
Translation Produces the Building Blocks of Life
Proteins are...
Initiation of Translation
First, the initiator tRNA must be selected from the pool of elongator tRNAs by eukaryotic initiation factor 2 (eIF2). The initiator tRNA (Met-tRNAi) has conserved sequence elements including modified bases at...
Termination of Translation
Termination of Translation
Improving Translational Accuracy

