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Chromosome 9p21.3 Coordinates Cell Intrinsic and Extrinsic Tumor Suppression

Lowe, S.; Barriga, F. M.; Tsanov, K. M.; Ho, Y. J.; Sohail, N.; Zhang, A.; Baslan, T.; Wuest, A. N.; Del Priore, I.; Meskauskaite, B.; Livshits, G.; Alonso-Curbelo, D.; Simon, J.; Chaves-Perez, A.; Bar-Sagi, D.; Iacobuzio-Donahue, C. A.; Notta, F.; Chaligne, R.; Sharma, R.; Pe'er, D.

2022-08-23 cancer biology
10.1101/2022.08.22.504793 bioRxiv
Show abstract

Somatic chromosomal deletions are prevalent in cancer, yet their functional contributions remain ill-defined. Among the most prominent of these events are deletions of chromosome 9p21.3, which disable a cell intrinsic barrier to tumorigenesis by eliminating the CDKN2A/B tumor suppressor genes. However, half of 9p21.3 deletions encompass a cluster of 16 type I interferons (IFNs) whose co-deletions have not been functionally characterized. To dissect how 9p21.3 and other genomic deletions impact cancer, we developed MACHETE (Molecular Alteration of Chromosomes with Engineered Tandem Elements), a genome engineering strategy that enables flexible modeling of megabase-sized deletions. Generation of 9p21.3-syntenic deletions in a mouse model of pancreatic cancer revealed that concomitant loss of Cdkn2a/b and the IFN cluster led to immune evasion and metastasis compared to Cdkn2a/b-only deletions. Mechanistically, IFN co-deletion disrupted type I IFN signaling, altered antigen-presenting cells, and facilitated escape from CD8+ T cell surveillance in a cell extrinsic manner requiring loss of interferon epsilon (Ifne). Our results establish co-deletions of the IFN cluster as a pervasive route to tumor immune evasion and metastasis, revealing how deletions can disable physically linked cell intrinsic and extrinsic tumor suppression. Our study establishes a framework to dissect the functions of genomic deletions in cancer and beyond.

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