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Gain-of-function CRISPR screens identify tumor-promoting genes conferring melanoma cell plasticity and therapy-resistance

Arthur Gautron, Laura Bachelot, Anaïs M. Quéméner, Sébastien Corre, Marc Aubry, View ORCID ProfileFlorian Rambow, Anaïs Paris, Nina Tardif, Héloïse M. Leclair, View ORCID ProfileCédric Coulouarn, View ORCID ProfileJean-Christophe Marine, View ORCID ProfileMarie-Dominique Galibert, View ORCID ProfileDavid Gilot
doi: https://doi.org/10.1101/2020.07.08.193102
Arthur Gautron
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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Laura Bachelot
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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Anaïs M. Quéméner
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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Sébastien Corre
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
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Marc Aubry
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
3Univ Rennes, Plateforme GEH, CNRS, Inserm, BIOSIT - UMS 3480, US_S 018, F-35000, Rennes, France
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Florian Rambow
4Department of Oncology, KU Leuven, 3000 Leuven, Belgium
5VIB Center for Cancer Biology, VIB, 3000 Leuven, Belgium
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  • ORCID record for Florian Rambow
Anaïs Paris
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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Nina Tardif
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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Héloïse M. Leclair
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
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Cédric Coulouarn
6Univ Rennes, INSERM INRA UMR 1241, Nutrition Métabolismes Cancer, Rennes France
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  • ORCID record for Cédric Coulouarn
Jean-Christophe Marine
4Department of Oncology, KU Leuven, 3000 Leuven, Belgium
5VIB Center for Cancer Biology, VIB, 3000 Leuven, Belgium
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Marie-Dominique Galibert
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
7CHU Rennes, Service de Génétique Moléculaire et Génomique Médicale, Rennes, France
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  • For correspondence: david.gilot@univ-rennes1.fr mgaliber@univ-rennes1.fr
David Gilot
1Univ Rennes, CNRS, IGDR (Institut de génétique et développement de Rennes)-UMR 6290, F-35000, Rennes, France
2ARC Labellised team
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  • ORCID record for David Gilot
  • For correspondence: david.gilot@univ-rennes1.fr mgaliber@univ-rennes1.fr
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ABSTRACT

Most genetic alterations that drive melanoma development and resistance to targeted therapy have been uncovered. In contrast, and despite their increasingly recognized contribution, little is known about the non-genetic mechanisms that drive these processes. Here, we performed in vivo gain-of-function CRISPR screens and identified SMAD3, BIRC3 and SLC9A5 as key actors of BRAFi-resistance and these genes promote the tumor growth capability of persister cells. We show that their expression levels increase during acquisition of BRAFi-resistance, and remain high in persister cells and during relapse. The upregulation of the SMAD3 transcriptional activity (SMAD3-signature) promotes a mesenchymal-like phenotype and BRAFi-resistance by acting as an upstream transcriptional regulator of potent BRAFi-resistance genes such as EGFR and AXL. This SMAD3-signature predicts resistance to both current melanoma therapies in different cohorts. Critically, chemical inhibition of SMAD3 may constitute amenable target for melanoma since it efficiently abrogates persister cells survival. Interestingly, decrease of SMAD3 activity can also be reached by inhibiting the aryl hydrocarbon receptor (AhR), another druggable transcription factor governing SMAD3 expression level. Our work expands our understanding of the biology of persister cells and highlight novel drug vulnerabilities that can be exploited to develop long-lasting antimelanoma therapies.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • ↵8 Lead Contact.

  • The authors declare no potential conflicts of interest.

  • Financial support: Fondation ARC pour la Recherche ; Ligue Nationale Contre le Cancer (LNCC); Départements du Grand-Ouest; Région Bretagne; University of Rennes 1; CNRS; SFR Biosit, Association Vaincre le Cancer.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. All rights reserved. No reuse allowed without permission.
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Posted July 09, 2020.
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Gain-of-function CRISPR screens identify tumor-promoting genes conferring melanoma cell plasticity and therapy-resistance
Arthur Gautron, Laura Bachelot, Anaïs M. Quéméner, Sébastien Corre, Marc Aubry, Florian Rambow, Anaïs Paris, Nina Tardif, Héloïse M. Leclair, Cédric Coulouarn, Jean-Christophe Marine, Marie-Dominique Galibert, David Gilot
bioRxiv 2020.07.08.193102; doi: https://doi.org/10.1101/2020.07.08.193102
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Gain-of-function CRISPR screens identify tumor-promoting genes conferring melanoma cell plasticity and therapy-resistance
Arthur Gautron, Laura Bachelot, Anaïs M. Quéméner, Sébastien Corre, Marc Aubry, Florian Rambow, Anaïs Paris, Nina Tardif, Héloïse M. Leclair, Cédric Coulouarn, Jean-Christophe Marine, Marie-Dominique Galibert, David Gilot
bioRxiv 2020.07.08.193102; doi: https://doi.org/10.1101/2020.07.08.193102

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