Literature DB >> 25368315

Using the RCAS-TVA system to model human cancer in mice.

Leanne G Ahronian1, Brian C Lewis1.   

Abstract

For successful infection, avian sarcoma leukosis virus subgroup A (ASLV-A) requires its receptor, tumor virus A (TVA), to be present on the surface of target cells. This is the basis of the RCAS-TVA gene delivery system: Mammalian cells lack the gene encoding TVA and are normally resistant to infection by ASLV; however, transgenic targeting of TVA to specific cell types or tissues in the mouse renders these cells uniquely susceptible to infection by ASLV-A-based RCAS viruses. The RCAS-TVA system is a powerful tool for effectively modeling human tumors, including pancreatic, ovarian, and breast cancers, gliomas, and melanomas. RCAS viruses can deliver cDNAs (≤2.8 kb), as well as short hairpin RNAs (shRNAs), microRNAs (miRNAs), and other noncoding RNAs. Compared with traditional transgenic and knockout mice, the RCAS-TVA system has several strengths. First, virus delivery is generally performed postnatally and results in a relatively low infection rate of target cells; the sporadic postnatal expression of the gene of interest mimics the situation in developing human tumors. Second, a single transgenic mouse line can be used to compare the consequences of specific genes on tumor development, with viruses encoding oncogenes or shRNAs targeting specific tumor suppressor genes. TVA mouse strains can also be easily combined with transgenic, knock-in, and knockout mouse models to study cooperating genetic events.
© 2014 Cold Spring Harbor Laboratory Press.

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Year:  2014        PMID: 25368315     DOI: 10.1101/pdb.top069831

Source DB:  PubMed          Journal:  Cold Spring Harb Protoc        ISSN: 1559-6095


  17 in total

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2.  Viral infection: A key host receptor for AAV.

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Journal:  Nat Microbiol       Date:  2016-02-01       Impact factor: 17.745

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Journal:  J Virol       Date:  2021-01-27       Impact factor: 5.103

4.  Anti-PD-L1 antibody direct activation of macrophages contributes to a radiation-induced abscopal response in glioblastoma.

Authors:  Chibawanye I Ene; Shannon A Kreuser; Miyeon Jung; Huajia Zhang; Sonali Arora; Kara White Moyes; Frank Szulzewsky; Jason Barber; Patrick J Cimino; Hans-Georg Wirsching; Anoop Patel; Paul Kong; Timothy R Woodiwiss; Sharon J Durfy; A McGarry Houghton; Robert H Pierce; Ian F Parney; Courtney A Crane; Eric C Holland
Journal:  Neuro Oncol       Date:  2020-05-15       Impact factor: 12.300

Review 5.  Pre-clinical tumor models of primary brain tumors: Challenges and opportunities.

Authors:  Farhana Akter; Brennan Simon; Nadine Leonie de Boer; Navid Redjal; Hiroaki Wakimoto; Khalid Shah
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Review 6.  Leveraging the replication-competent avian-like sarcoma virus/tumor virus receptor-A system for modeling human gliomas.

Authors:  Pranjali P Kanvinde; Adarsha P Malla; Nina P Connolly; Frank Szulzewsky; Pavlos Anastasiadis; Heather M Ames; Anthony J Kim; Jeffrey A Winkles; Eric C Holland; Graeme F Woodworth
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7.  Culture, differentiation, and transduction of mouse E12.5 pancreatic spheres: an in vitro model for the secondary transition of pancreas development.

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Journal:  Islets       Date:  2021-03-01       Impact factor: 2.694

8.  Genetically engineered rat gliomas: PDGF-driven tumor initiation and progression in tv-a transgenic rats recreate key features of human brain cancer.

Authors:  Nina P Connolly; Jesse A Stokum; Craig S Schneider; Tatsuya Ozawa; Su Xu; Rebeca Galisteo; Rudolph J Castellani; Anthony J Kim; J Marc Simard; Jeffrey A Winkles; Eric C Holland; Graeme F Woodworth
Journal:  PLoS One       Date:  2017-03-30       Impact factor: 3.240

9.  Somatic genome editing with the RCAS-TVA-CRISPR-Cas9 system for precision tumor modeling.

Authors:  Barbara Oldrini; Álvaro Curiel-García; Carolina Marques; Veronica Matia; Özge Uluçkan; Osvaldo Graña-Castro; Raul Torres-Ruiz; Sandra Rodriguez-Perales; Jason T Huse; Massimo Squatrito
Journal:  Nat Commun       Date:  2018-04-13       Impact factor: 14.919

Review 10.  Genetic Alterations in Gliomas Remodel the Tumor Immune Microenvironment and Impact Immune-Mediated Therapies.

Authors:  Maria B Garcia-Fabiani; Santiago Haase; Andrea Comba; Stephen Carney; Brandon McClellan; Kaushik Banerjee; Mahmoud S Alghamri; Faisal Syed; Padma Kadiyala; Felipe J Nunez; Marianela Candolfi; Antonela Asad; Nazareno Gonzalez; Marisa E Aikins; Anna Schwendeman; James J Moon; Pedro R Lowenstein; Maria G Castro
Journal:  Front Oncol       Date:  2021-06-08       Impact factor: 5.738

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