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Mouse models of human chromosomal translocations and approaches to cancer therapy
T H Rabbitts1, A Appert, G Chung
1MRC Laboratory of Molecular Biology, Hills Road, Cambridge, CB2 2QH, United Kingdom. thr@mrc-lmb.cam.ac.uk
Abstract:
Cancer arises because of genetic changes in somatic cells, eventually giving rise to overt malignancy. Principle among genetic changes found in tumor cells are chromosomal translocations which give rise to fusion genes or enforced oncogene expression. These mutations are tumor-specific and result in production of tumor-specific mRNAs and proteins and are attractive targets for therapy. Also, in acute leukemias, many of these molecules are transcription regulators which involve cell-type-specific complexes, offering an alternative therapy via interfering with protein-protein interaction. We are studying these various features of tumor cells to evaluate new therapeutic methods. We describe a mouse model of de novo chromosomal translocations using the Cre-loxP system in which interchromosomal recombination occurs between the Mll and Af9 genes. We are also developing other in vivo methods designed, like the Cre-loxP system, to emulate the effects of these chromosomal abnormalities in human tumors. In addition, we describe new technologies to facilitate the intracellular targeting of fusion mRNAs and proteins resulting from such chromosomal translocations. These include a masked antisense RNA method with the ability to discriminate between closely related RNA targets and the selection and use of intracellular antibodies to bind to target proteins in vivo and cause cell death. These approaches should also be adaptable to targeting point mutations or to differentially expressed tumor-associated proteins. We hope to develop therapeutic approaches for use in cancer therapy after testing their efficacy in our mouse models of human cancer.
Insights
Researchers are developing novel cancer therapies targeting tumor-specific genetic mutations. They utilize a Cre-loxP mouse model to study chromosomal translocations and create new intracellular targeting technologies for fusion mRNAs and proteins.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Cancer develops from genetic alterations in somatic cells, leading to malignancy.
- Chromosomal translocations are key genetic changes in tumors, creating fusion genes and driving oncogene expression.
- These tumor-specific mutations produce unique mRNAs and proteins, making them ideal therapeutic targets.
Purpose of the Study:
- To evaluate new therapeutic methods for cancer.
- To develop in vivo models that mimic chromosomal abnormalities found in human tumors.
- To create novel technologies for intracellular targeting of fusion mRNAs and proteins.
Main Methods:
- Utilizing a Cre-loxP mouse model for de novo chromosomal translocations, specifically recombination between Mll and Af9 genes.
- Developing in vivo methods to replicate chromosomal abnormalities seen in human cancers.
- Employing masked antisense RNA technology for precise RNA targeting and intracellular antibodies for protein targeting.
Main Results:
- A functional mouse model for studying de novo chromosomal translocations has been established.
- New technologies for intracellular targeting of fusion mRNAs and proteins are under development.
- These methods show potential for targeting point mutations and differentially expressed tumor proteins.
Conclusions:
- The developed mouse models and targeting technologies offer promising avenues for cancer therapy.
- Interfering with transcription regulators involved in chromosomal translocations presents an alternative therapeutic strategy.
- Further testing in preclinical models is needed to advance these approaches for clinical application.