Literature DB >> 22796458

Targeting BRAFV600E in an inducible murine model of melanoma.

Anna I Hooijkaas1, Jules Gadiot, Martin van der Valk, Wolter J Mooi, Christian U Blank.   

Abstract

The MAP kinase and PI3 kinase pathways have been identified as the most common pathways that mediate oncogenic transformation in melanoma, and the majority of compounds developed for melanoma treatment target one or the other of these pathways. In addition to such targeted therapies, immunotherapeutic approaches have shown promising results. A combination of these two treatment modalities could potentially result in further improvement of treatment outcome. To preclinically identify efficient treatment combinations and to optimize therapy protocols in terms of sequence and timing, mouse models will be required. We have crossed and characterized the Tyr::CreER(T2);PTEN(F-/-);BRAF(F-V600E/+) inducible melanoma model on a C57BL/6J background. Tumors from this model harbor the BRAF(V600E) mutation and are PTEN-deficient, making them highly suitable for the testing of targeted therapies. Furthermore, we crossed the model onto this specific background for use in immunotherapy studies, because most experiments in this field have been performed in C57BL/6J mice. Selective inhibition of BRAF(V600E) by PLX4720 treatment of melanoma-bearing mice resulted in a strong decrease of tumor outgrowth. Furthermore, the inducible melanomas had immune cell infiltrates similar to those found in human melanoma, and tumor-infiltrating lymphocytes could be cultured from these tumors. Our data indicate that the C57BL/6J Tyr::CreER(T2);PTEN(F-/-);BRAF(F-V600E/+) melanoma model could be used as a standard model in which targeted and immunotherapy combinations can be tested in a high-throughput manner.
Copyright © 2012 American Society for Investigative Pathology. Published by Elsevier Inc. All rights reserved.

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Year:  2012        PMID: 22796458     DOI: 10.1016/j.ajpath.2012.06.002

Source DB:  PubMed          Journal:  Am J Pathol        ISSN: 0002-9440            Impact factor:   4.307


  31 in total

1.  Analysis of B-Raf[Formula: see text] inhibitors using 2D and 3D-QSAR, molecular docking and pharmacophore studies.

Authors:  Reza Aalizadeh; Eslam Pourbasheer; Mohammad Reza Ganjali
Journal:  Mol Divers       Date:  2015-08-15       Impact factor: 2.943

2.  Differences in tumor initiation and progression of melanoma in the BrafCA ;Tyr-CreERT2;Ptenf/f model between male and female mice.

Authors:  Yougang Zhai; Adil J Haresi; Lee Huang; Deborah Lang
Journal:  Pigment Cell Melanoma Res       Date:  2019-09-10       Impact factor: 4.693

3.  Fluorine-19 Cellular MRI Detection of In Vivo Dendritic Cell Migration and Subsequent Induction of Tumor Antigen-Specific Immunotherapeutic Response.

Authors:  Corby Fink; Michael Smith; Jeffrey M Gaudet; Ashley Makela; Paula J Foster; Gregory A Dekaban
Journal:  Mol Imaging Biol       Date:  2020-06       Impact factor: 3.488

4.  Myeloid IKKβ promotes antitumor immunity by modulating CCL11 and the innate immune response.

Authors:  Jinming Yang; Oriana E Hawkins; Whitney Barham; Pavlo Gilchuk; Mark Boothby; Gregory D Ayers; Sebastian Joyce; Michael Karin; Fiona E Yull; Ann Richmond
Journal:  Cancer Res       Date:  2014-10-21       Impact factor: 12.701

5.  Exogenous IL-33 Restores Dendritic Cell Activation and Maturation in Established Cancer.

Authors:  Donye Dominguez; Cong Ye; Zhe Geng; Siqi Chen; Jie Fan; Lei Qin; Alan Long; Long Wang; Zhuoli Zhang; Yi Zhang; Deyu Fang; Timothy M Kuzel; Bin Zhang
Journal:  J Immunol       Date:  2016-12-23       Impact factor: 5.422

6.  A systems biology approach to personalizing therapeutic combinations.

Authors:  Lawrence N Kwong; Timothy P Heffernan; Lynda Chin
Journal:  Cancer Discov       Date:  2013-12       Impact factor: 39.397

7.  Inhibiting the MNK1/2-eIF4E axis impairs melanoma phenotype switching and potentiates antitumor immune responses.

Authors:  Fan Huang; Christophe Gonçalves; Margarita Bartish; Joelle Rémy-Sarrazin; Mark E Issa; Brendan Cordeiro; Qianyu Guo; Audrey Emond; Mikhael Attias; William Yang; Dany Plourde; Jie Su; Marina Godoy Gimeno; Yao Zhan; Alba Galán; Tomasz Rzymski; Milena Mazan; Magdalena Masiejczyk; Jacek Faber; Elie Khoury; Alexandre Benoit; Natascha Gagnon; David Dankort; Fabrice Journe; Ghanem E Ghanem; Connie M Krawczyk; H Uri Saragovi; Ciriaco A Piccirillo; Nahum Sonenberg; Ivan Topisirovic; Christopher E Rudd; Wilson H Miller; Sonia V Del Rincón
Journal:  J Clin Invest       Date:  2021-04-15       Impact factor: 14.808

8.  Host immunity contributes to the anti-melanoma activity of BRAF inhibitors.

Authors:  Deborah A Knight; Shin Foong Ngiow; Ming Li; Tiffany Parmenter; Stephen Mok; Ashley Cass; Nicole M Haynes; Kathryn Kinross; Hideo Yagita; Richard C Koya; Thomas G Graeber; Antoni Ribas; Grant A McArthur; Mark J Smyth
Journal:  J Clin Invest       Date:  2013-02-01       Impact factor: 14.808

9.  Multiple murine BRaf(V600E) melanoma cell lines with sensitivity to PLX4032.

Authors:  Molly H Jenkins; Shannon M Steinberg; Matthew P Alexander; Jan L Fisher; Marc S Ernstoff; Mary Jo Turk; David W Mullins; Constance E Brinckerhoff
Journal:  Pigment Cell Melanoma Res       Date:  2014-03-06       Impact factor: 4.693

10.  EPAC-RAP1 Axis-Mediated Switch in the Response of Primary and Metastatic Melanoma to Cyclic AMP.

Authors:  Carlos I Rodríguez; Edgardo Castro-Pérez; Kirthana Prabhakar; Laura Block; B Jack Longley; Jaclyn A Wisinski; Michelle E Kimple; Vijayasaradhi Setaluri
Journal:  Mol Cancer Res       Date:  2017-08-29       Impact factor: 5.852

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