Human aneuploid cells depend on the RAF/MEK/ERK pathway for overcoming increased DNA damage

被引:6
|
作者
Johanna Zerbib [1 ]
Marica Rosaria Ippolito [2 ]
Yonatan Eliezer [1 ]
Giuseppina De Feudis [2 ]
Eli Reuveni [1 ]
Anouk Savir Kadmon [1 ]
Sara Martin [2 ]
Sonia Viganò [2 ]
Gil Leor [1 ]
James Berstler [3 ]
Julia Muenzner [4 ]
Michael Mülleder [5 ]
Emma M. Campagnolo [6 ]
Eldad D. Shulman [6 ]
Tiangen Chang [6 ]
Carmela Rubolino [7 ]
Kathrin Laue [1 ]
Yael Cohen-Sharir [1 ]
Simone Scorzoni [2 ]
Silvia Taglietti [2 ]
Alice Ratti [2 ]
Chani Stossel [8 ]
Talia Golan [9 ]
Francesco Nicassio [8 ]
Eytan Ruppin [9 ]
Markus Ralser [7 ]
Francisca Vazquez [6 ]
Uri Ben-David [4 ]
Stefano Santaguida [10 ]
机构
[1] Tel Aviv University,Department of Human Molecular Genetics and Biochemistry, Faculty of Medicine
[2] European Institute of Oncology IRCCS,Department of Experimental Oncology at IEO
[3] Broad Institute of MIT and Harvard,Charité Universitätsmedizin Berlin
[4] Department of Biochemistry,Charité Universitätsmedizin Berlin
[5] Core Facility High-Throughput Mass Spectrometry,Cancer Data Science Laboratory, Center for Cancer Research
[6] National Cancer Institute,Center for Genomic Science of IIT@SEMM
[7] National Institutes of Health,Oncology Institute
[8] Fondazione Instituto Italiano di Technologia,Faculty of Medicine
[9] Sheba Medical Center,Nuffield Department of Medicine
[10] Tel Aviv University,Department of Oncology and Hemato
[11] University of Oxford,Oncology
[12] Max Planck Institute for Molecular Genetics,undefined
[13] University of Milan,undefined
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D O I
10.1038/s41467-024-52176-x
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摘要
Aneuploidy is a hallmark of human cancer, yet the molecular mechanisms to cope with aneuploidy-induced cellular stresses remain largely unknown. Here, we induce chromosome mis-segregation in non-transformed RPE1-hTERT cells and derive multiple stable clones with various degrees of aneuploidy. We perform a systematic genomic, transcriptomic and proteomic profiling of 6 isogenic clones, using whole-exome DNA, mRNA and miRNA sequencing, as well as proteomics. Concomitantly, we functionally interrogate their cellular vulnerabilities, using genome-wide CRISPR/Cas9 and large-scale drug screens. Aneuploid clones activate the DNA damage response and are more resistant to further DNA damage induction. Aneuploid cells also exhibit elevated RAF/MEK/ERK pathway activity and are more sensitive to clinically-relevant drugs targeting this pathway, and in particular to CRAF inhibition. Importantly, CRAF and MEK inhibition sensitize aneuploid cells to DNA damage-inducing chemotherapies and to PARP inhibitors. We validate these results in human cancer cell lines. Moreover, resistance of cancer patients to olaparib is associated with high levels of RAF/MEK/ERK signaling, specifically in highly-aneuploid tumors. Overall, our study provides a comprehensive resource for genetically-matched karyotypically-stable cells of various aneuploidy states, and reveals a therapeutically-relevant cellular dependency of aneuploid cells.
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