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Kras activation in p53-deficient myoblasts results in high-grade sarcoma formation with impaired myogenic
Timothy McKinnon1, Rosemarie Venier1, Brendan C Dickson2
1Lunenfeld-Tanenbaum Research Institute, Mount Sinai Hospital, Toronto, Canada.
Abstract:
While genomic studies have improved our ability to classify sarcomas, the molecular mechanisms involved in the formation and progression of many sarcoma subtypes are unknown. To better understand developmental origins and genetic drivers involved in rhabdomyosarcomagenesis, we describe a novel sarcoma model system employing primary murine p53-deficient myoblasts that were isolated and lentivirally transduced with KrasG12D. Myoblast cell lines were characterized and subjected to proliferation, anchorage-independent growth and differentiation assays to assess the effects of transgenic KrasG12D expression. KrasG12D overexpression transformed p53-/- myoblasts as demonstrated by an increased anchorage-independent growth. Induction of differentiation in parental myoblasts resulted in activation of key myogenic regulators. In contrast, Kras-transduced myoblasts had impaired terminal differentiation. p53-/- myoblasts transformed by KrasG12D overexpression resulted in rapid, reproducible tumor formation following orthotopic injection into syngeneic host hindlimbs. Pathological analysis revealed high-grade sarcomas with myogenic differentiation based on the expression of muscle-specific markers, such as Myod1 and Myog. Gene expression patterns of murine sarcomas shared biological pathways with RMS gene sets as determined by gene set enrichment analysis (GSEA) and were 61% similar to human RMS as determined by metagene analysis. Thus, our novel model system is an effective means to model high-grade sarcomas along the RMS spectrum.
Insights
Researchers developed a new mouse model for rhabdomyosarcoma (RMS) by engineering p53-deficient myoblasts with KrasG12D. This model effectively replicates high-grade sarcomas, aiding the study of RMS development and genetic drivers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Genomic studies have improved sarcoma classification, but molecular mechanisms remain unclear.
- Understanding rhabdomyosarcomagenesis requires insights into developmental origins and genetic drivers.
Purpose of the Study:
- To establish a novel sarcoma model system for studying rhabdomyosarcomagenesis.
- To investigate the effects of KrasG12D expression on p53-deficient myoblasts.
Main Methods:
- Primary murine p53-deficient myoblasts were isolated and transduced with KrasG12D.
- Assays included proliferation, anchorage-independent growth, and differentiation.
- Orthotopic injection into hindlimbs created a sarcoma model in vivo.
Main Results:
- KrasG12D overexpression transformed p53-/- myoblasts, increasing anchorage-independent growth.
- Kras-transduced myoblasts exhibited impaired terminal differentiation.
- Orthotopic injection led to rapid, reproducible high-grade sarcoma formation with myogenic differentiation.
Conclusions:
- The novel model system effectively replicates high-grade sarcomas within the rhabdomyosarcoma spectrum.
- Gene expression patterns in murine sarcomas show significant similarity to human RMS.
- This model provides a valuable tool for studying sarcoma development and identifying therapeutic targets.