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Biology subjects

Yang, Q.-L.

Publications and source records attributed to Yang, Q.-L..

2 recordsLinked to original sources

Innate immune sensing via the cGAS-STING pathway restricts extrachromosomal DNA-driven tumorigenesis

Extrachromosomal DNAs (ecDNAs) are circular DNA fragments frequently found in human cancers, where they amplify oncogenes, drive tumor heterogeneity, and promote therapy resistance and poor prognosis. Despite their prevalence, how ecDNAs interact with the immune system remains poorly understood. Here, we show that the cytosolic DNA sensor cGAS detects ecDNA fragments in the cytoplasm and activates the innate immune response. cGAS and STING are frequently silenced in ecDNA+ tumors through promoter hypermethylation. Restoring cGAS or STING in human and murine ecDNA+ cancer cells reactivates innate immune signaling and selectively suppresses ecDNA+ tumor growth in an immunocompetent mouse model. Using two ecDNA biogenesis models, we show that the cGAS-STING pathway restricts de novo ecDNA formation. Together, our findings identify innate immune sensing as a natural barrier to ecDNA-driven oncogenesis and establish cGAS-STING reactivation as a therapeutic strategy for ecDNA+ cancers. HighlightsO_LIThe cGAS-STING pathway is frequently silenced in ecDNA+ tumors C_LIO_LIRestoration of cGAS in ecDNA+ cells activates innate immune responses C_LIO_LIcGAS expression suppresses ecDNA+ tumor growth in vivo C_LIO_LIThe cGAS-STING pathway restricts de novo ecDNA biogenesis C_LI

cancer biology↗

ecDNA-driven oncogene super-expressors shape immunoevasive tumor microenvironment

ecDNA contributes to cancer genetic heterogeneity through random segregation during mitosis. Emerging evidence links ecDNA to immune evasion, but the mechanism remains elusive. Using genetically engineered mouse models of pancreatic ductal adenocarcinoma (PDAC), we show that Kras and Myc oncogenes are amplified either on ecDNAs or as homogeneously staining regions (HSRs) on chromosomes. ecDNA-driven tumors are more aggressive in immunocompetent mice. Single-cell transcriptomic and histological analyses reveal that ecDNA-driven tumors rapidly establish an immunoevasive tumor microenvironment (TME), marked by increased myofibroblastic cancer-associated fibroblasts (myCAFs) and reduced T cell infiltration. Mechanistically, ecDNA heterogeneity generates a subset of cancer cells with extremely high Kras expression, termed super-expressors, which secrete amphiregulin to promote myCAF expansion and suppress T cell infiltration. Clonally organized super-expressors establish an immunoevasive niche in the TME from patients with PDAC. Our findings demonstrate a causal role of ecDNA in TME remodeling, offering insights into cancer heterogeneity and immune evasion.

cancer biology↗