1. The PAX-FOXO1s trigger fast trans-differentiation of chick embryonic neural cells into alveolar rhabdomyosarcoma with tissue invasive properties limited by S phase entry inhibition
- Author
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Muriel Rigolet, Pascale Gilardi-Hebenstreit, Frédéric Relaix, Gloria Gonzalez Curto, Orestis Faklaris, Frédéric Causeret, Aurélien de Reyniès, Daniil Korenkov, James Briscoe, Selene Prisco, Audrey Der Vartanian, Youcef El-Mokhtar Frarma, Vincent Contremoulins, Nabila Elarouci, Line Manceau, Vanessa Ribes, Lorenzo Baldi, Frédéric Auradé, Institut Jacques Monod (IJM (UMR_7592)), Université de Paris (UP)-Centre National de la Recherche Scientifique (CNRS), École nationale vétérinaire d'Alfort (ENVA), Institut Mondor de Recherche Biomédicale (IMRB), Institut National de la Santé et de la Recherche Médicale (INSERM)-IFR10-Université Paris-Est Créteil Val-de-Marne - Paris 12 (UPEC UP12), (le programme) Cartes d'identité des tumeurs (CIT), Ligue Nationales Contre le Cancer (LNCC), Imagine - Institut des maladies génétiques (IHU) (Imagine - U1163), Institut National de la Santé et de la Recherche Médicale (INSERM)-Université de Paris (UP), Institut de psychiatrie et neurosciences de Paris (IPNP - U1266 Inserm), Centre de Recherche en Myologie, Institut National de la Santé et de la Recherche Médicale (INSERM)-Sorbonne Université (SU), ImagoSeine core facility, Université de Paris (UP)-Centre National de la Recherche Scientifique (CNRS)-Université de Paris (UP)-Centre National de la Recherche Scientifique (CNRS), The Francis Crick Institute [London], Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité), École nationale vétérinaire - Alfort (ENVA), Institut National de la Santé et de la Recherche Médicale (INSERM)-Université Paris Cité (UPCité), Centre de recherche en Myologie – U974 SU-INSERM, ImagoSeine, Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité)-Centre National de la Recherche Scientifique (CNRS)-Université Paris Cité (UPCité), Martinez Rico, Clara, Centre National de la Recherche Scientifique (CNRS)-Université de Paris (UP), and Centre National de la Recherche Scientifique (CNRS)-Université de Paris (UP)-Centre National de la Recherche Scientifique (CNRS)-Université de Paris (UP)
- Subjects
Cancer Research ,Oncogene Proteins, Fusion ,Molecular biology ,Biopsy ,PAX3 ,Datasets as Topic ,Gene Expression ,Chick Embryo ,QH426-470 ,Lung and Intrathoracic Tumors ,S Phase ,Cell Fusion ,0302 clinical medicine ,Neural Stem Cells ,Animal Cells ,Medicine and Health Sciences ,Paired Box Transcription Factors ,Cyclin D1 ,Cell Cycle and Cell Division ,Child ,[SDV.BDD]Life Sciences [q-bio]/Development Biology ,Genetics (clinical) ,Neurons ,Immunodetection ,0303 health sciences ,N-Myc Proto-Oncogene Protein ,PAX7 Transcription Factor ,food and beverages ,musculoskeletal system ,3. Good health ,Chromatin ,Cell biology ,Gene Expression Regulation, Neoplastic ,medicine.anatomical_structure ,Cell Transformation, Neoplastic ,Oncology ,Cell Processes ,030220 oncology & carcinogenesis ,embryonic structures ,Alveolar rhabdomyosarcoma ,[SDV.NEU]Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC] ,Cellular Types ,Research Article ,Neural Tube ,Cell Physiology ,endocrine system ,Mesenchyme ,Surgical and Invasive Medical Procedures ,Biology ,DNA construction ,Research and Analysis Methods ,03 medical and health sciences ,[SDV.BDD] Life Sciences [q-bio]/Development Biology ,medicine ,Genetics ,Animals ,Humans ,Neoplasm Invasiveness ,[SDV.NEU] Life Sciences [q-bio]/Neurons and Cognition [q-bio.NC] ,Progenitor cell ,Transcription factor ,PAX3 Transcription Factor ,Ecology, Evolution, Behavior and Systematics ,Rhabdomyosarcoma, Alveolar ,030304 developmental biology ,Gene Expression Profiling ,Biology and Life Sciences ,Cancers and Neoplasms ,Cell Biology ,medicine.disease ,Embryonic stem cell ,Disease Models, Animal ,Molecular biology techniques ,Cellular Neuroscience ,Cell Transdifferentiation ,Plasmid Construction ,Immunologic Techniques ,PAX7 ,Neuroscience - Abstract
The chromosome translocations generating PAX3-FOXO1 and PAX7-FOXO1 chimeric proteins are the primary hallmarks of the paediatric fusion-positive alveolar subtype of Rhabdomyosarcoma (FP-RMS). Despite the ability of these transcription factors to remodel chromatin landscapes and promote the expression of tumour driver genes, they only inefficiently promote malignant transformation in vivo. The reason for this is unclear. To address this, we developed an in ovo model to follow the response of spinal cord progenitors to PAX-FOXO1s. Our data demonstrate that PAX-FOXO1s, but not wild-type PAX3 or PAX7, trigger the trans-differentiation of neural cells into FP-RMS-like cells with myogenic characteristics. In parallel, PAX-FOXO1s remodel the neural pseudo-stratified epithelium into a cohesive mesenchyme capable of tissue invasion. Surprisingly, expression of PAX-FOXO1s, similar to wild-type PAX3/7, reduce the levels of CDK-CYCLIN activity and increase the fraction of cells in G1. Introduction of CYCLIN D1 or MYCN overcomes this PAX-FOXO1-mediated cell cycle inhibition and promotes tumour growth. Together, our findings reveal a mechanism that can explain the apparent limited oncogenicity of PAX-FOXO1 fusion transcription factors. They are also consistent with certain clinical reports indicative of a neural origin of FP-RMS., Author summary The fusion-positive subtype of rhabdomyosarcoma (FP-RMS) is a rare malignant paediatric cancer, whose induction and evolution still remain to be deciphered. Out of the gross genetic aberrations found in these cancers, t(2:13) and t(1,13) chromosome translocations are the first to appear and lead to the expression of fusion proteins made of the DNA binding domains of either PAX3 or PAX7 and the transactivation domain of FOXO1. Both PAX3-FOXO1 and PAX7-FOXO1 have a strong impact on gene transcription, yet they only inefficiently promote the transformation of healthy cells into tumorigenic cells. To address this issue, we have used chick embryos to monitor in vivo the early response of cells to PAX-FOXO1 chimeric proteins. We showed that both proteins, but not the normal PAX3 and PAX7, transform neural cells into cells with FP-RMS molecular features. The PAX-FOXO1s also force polarized epithelial neural cells to adopt a mesenchymal phenotype with tissue invasive properties. However, the PAX-FOXO1s inhibit cell division and hence tumour growth. Genetically re-activating core cell cycle regulators rescues PAX-FOXO1 mediated cell cycle inhibition. Together, our findings bring further support to the idea that the PAX-FOXO1s are stricto sensu oncoproteins, whose oncogenicity is limited by negative effects on cell cycle.
- Published
- 2020
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