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Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth

Biologically active membrane gangliosides, expressed and released by many human tumors, are hypothesized to significantly impact tumor progression. Lack of a model of complete and specific tumor ganglioside depletion in vivo, however, has hampered elucidation of their role. Here we report the creati...

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Autores principales: Liu, Yihui, Yan, Su, Wondimu, Assefa, Bob, Daniel, Weiss, Michael, Sliwinski, Konrad, Villar, Joaquín, Notario, Vicente, Sutherland, Margaret, Colberg-Poley, Anamaris M., Ladisch, Stephan
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2880627/
https://www.ncbi.nlm.nih.gov/pubmed/20305696
http://dx.doi.org/10.1038/onc.2010.85
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author Liu, Yihui
Yan, Su
Wondimu, Assefa
Bob, Daniel
Weiss, Michael
Sliwinski, Konrad
Villar, Joaquín
Notario, Vicente
Sutherland, Margaret
Colberg-Poley, Anamaris M.
Ladisch, Stephan
author_facet Liu, Yihui
Yan, Su
Wondimu, Assefa
Bob, Daniel
Weiss, Michael
Sliwinski, Konrad
Villar, Joaquín
Notario, Vicente
Sutherland, Margaret
Colberg-Poley, Anamaris M.
Ladisch, Stephan
author_sort Liu, Yihui
collection PubMed
description Biologically active membrane gangliosides, expressed and released by many human tumors, are hypothesized to significantly impact tumor progression. Lack of a model of complete and specific tumor ganglioside depletion in vivo, however, has hampered elucidation of their role. Here we report the creation of a novel, stable, genetically induced tumor cell system resulting in specific and complete blockade of ganglioside synthesis. Wild type (WT) and GM3 synthase/GM2 synthase double knockout (DKO) murine embryonic fibroblasts were transformed using amphotropic retrovirus-transduced oncogenes (pBABE-c-Myc(T58A)+H-Ras(G12V)). The transformed cells, WT(t) and DKO(t) respectively, evidenced comparable integrated copy numbers and oncogene expression. Ganglioside synthesis was completely blocked in the DKO(t) cells, importantly without triggering an alternate pathway of ganglioside synthesis. Ganglioside depletion (to <0.5 nmol/10(7) cells from 9-11 nmol/10(7) WT(t) or untransfected normal fibroblasts) did not adversely affect cell proliferation kinetics but did reduce cell migration on fibronectin-coated wells, consistent with our previous observations in ganglioside-depleted normal human fibroblasts. Strikingly, despite similar oncogene expression and growth kinetics, DKO(t) cells evidenced significantly impaired tumor growth in syngeneic immunocompetent mice, underscoring the pivotal role of tumor cell gangliosides and providing an ideal system for probing their mechanisms of action in vivo.
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spelling pubmed-28806272010-12-03 Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth Liu, Yihui Yan, Su Wondimu, Assefa Bob, Daniel Weiss, Michael Sliwinski, Konrad Villar, Joaquín Notario, Vicente Sutherland, Margaret Colberg-Poley, Anamaris M. Ladisch, Stephan Oncogene Article Biologically active membrane gangliosides, expressed and released by many human tumors, are hypothesized to significantly impact tumor progression. Lack of a model of complete and specific tumor ganglioside depletion in vivo, however, has hampered elucidation of their role. Here we report the creation of a novel, stable, genetically induced tumor cell system resulting in specific and complete blockade of ganglioside synthesis. Wild type (WT) and GM3 synthase/GM2 synthase double knockout (DKO) murine embryonic fibroblasts were transformed using amphotropic retrovirus-transduced oncogenes (pBABE-c-Myc(T58A)+H-Ras(G12V)). The transformed cells, WT(t) and DKO(t) respectively, evidenced comparable integrated copy numbers and oncogene expression. Ganglioside synthesis was completely blocked in the DKO(t) cells, importantly without triggering an alternate pathway of ganglioside synthesis. Ganglioside depletion (to <0.5 nmol/10(7) cells from 9-11 nmol/10(7) WT(t) or untransfected normal fibroblasts) did not adversely affect cell proliferation kinetics but did reduce cell migration on fibronectin-coated wells, consistent with our previous observations in ganglioside-depleted normal human fibroblasts. Strikingly, despite similar oncogene expression and growth kinetics, DKO(t) cells evidenced significantly impaired tumor growth in syngeneic immunocompetent mice, underscoring the pivotal role of tumor cell gangliosides and providing an ideal system for probing their mechanisms of action in vivo. 2010-03-22 2010-06-03 /pmc/articles/PMC2880627/ /pubmed/20305696 http://dx.doi.org/10.1038/onc.2010.85 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Liu, Yihui
Yan, Su
Wondimu, Assefa
Bob, Daniel
Weiss, Michael
Sliwinski, Konrad
Villar, Joaquín
Notario, Vicente
Sutherland, Margaret
Colberg-Poley, Anamaris M.
Ladisch, Stephan
Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title_full Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title_fullStr Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title_full_unstemmed Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title_short Ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
title_sort ganglioside synthase knockout in oncogene-transformed fibroblasts depletes gangliosides and impairs tumor growth
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2880627/
https://www.ncbi.nlm.nih.gov/pubmed/20305696
http://dx.doi.org/10.1038/onc.2010.85
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