Abstract Esophageal adenocarcinoma (EAC) is an aggressive disease characterized by chromosomal instability (CIN), whereby cells continuously acquire chromosomal abnormalities that promote therapeutic resistance, immune evasion and metastasis. CIN in cancers also fuels the misplacement of genomic DNA in the form of structural abnormalities of the nucleus, such as micronuclei (MN), that lead to chronic activation of the cytosolic DNA sensing cGAS-STING pathway. However, how chronic cGAS-STING pathway activation is tolerated and shapes the tumor landscape of CINhigh EAC cancers is poorly understood. Using publicly available RNA-seq and genome sequencing data of EAC tumours and esophageal cancer cell lines as well as a panel of EAC cell lines, we demonstrate that the core cGAS-STING pathway machinery is rarely inactivated in EAC despite high levels of baseline CIN and aneuploidy. Through transcriptomic profiling of an isogenic EAC precursor cell line model of variable CIN and cGASKO/WT EAC cell lines we show that both chronic and transient CIN-driven cGAS-STING activation converge on the expression of CXCR1/2 ligands and other pro-inflammatory cytokines and chemokines rather than typical anti-tumor type I interferon signalling in EAC cells. Indeed, a novel transcriptional signature of cGAS+ micronuclear burden-correlated genes correlates with orthogonal measures of CIN in EAC tumours and esophagogastric cancer cell lines and is associated with an enrichment in myeloid-derived cells as well as poor prognosis. Correspondingly, using multiplexed immunofluorescence (IF) we find that a high preponderance of cGAS+MN and STING expression in human EAC samples is associated with decreased tumor purity, increased myeloid cell and macrophage infiltration, and increased peripheral blood neutrophil counts, indicative of tumor-promoting myeloid inflammation. Ongoing multiplexed IF and single-nuclei RNAseq analysis of cGAS+MNhigh and cGAS+MNlow EAC tumors will further help characterise the components that comprise the CIN EAC tumor microenvironment (TME) and the CIN- and cGAS-STING-dependent cell-cell interactions that govern it. Taken together, our findings provide an explanation for the observed maintenance of cGAS and STING in EAC and identify disruption of cGAS-STING-dependent myeloid cell inflammation and recruitment as a potential therapeutic target for CINhigh EAC. Citation Format: Bruno Beernaert, Erkin Erdal, Rose Clark, Tong Liu, Ester M. Hammond, Eileen E. Parkes. cGAS-STING drives myeloid inflammation in chromosomally unstable esophageal cancer [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2024; Part 1 (Regular Abstracts); 2024 Apr 5-10; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2024;84(6_Suppl):Abstract nr 2704.
Interactions between cells and the extracellular matrix, mediated by integrin adhesion complexes, play key roles in fundamental cellular processes, including the sensing and transduction of mechanical cues. Here, we investigate systems-level changes in the integrin adhesome in patient-derived cutaneous squamous cell carcinoma cells and identify the actin regulatory protein Mena as a key node in the adhesion complex network. Mena is connected within a subnetwork of actin-binding proteins to the LINC complex component nesprin-2, with which it interacts and co-localises at the nuclear envelope. Moreover, Mena potentiates the interactions of nesprin-2 with the actin cytoskeleton and the nuclear lamina. CRISPR-mediated Mena depletion causes altered nuclear morphology, reduces tyrosine phosphorylation of the nuclear membrane protein emerin and downregulates expression of the immunomodulatory gene PTX3 via the recruitment of its enhancer to the nuclear periphery. We uncover an unexpected role for Mena at the nuclear membrane, where it controls nuclear architecture, chromatin repositioning and gene expression. Our findings identify an adhesion protein that regulates gene transcription via direct signalling across the nuclear envelope.
Chromosomal instability (CIN) is a hallmark of cancer that drives tumour evolution. It is now recognised that CIN in cancer leads to the constitutive production of misplaced DNA in the form of micronuclei and chromatin bridges. These structures are detected by the nucleic acid sensor cGAS, leading to the production of the second messenger 2'3'- cGAMP and activation of the critical hub of innate immune signalling STING. Activation of this immune pathway should instigate the influx and activation of immune cells, resulting in the eradication of cancer cells. That this does not universally occur in the context of CIN remains an unanswered paradox in cancer. Instead, CIN-high cancers are notably adept at immune evasion and are highly metastatic with typically poor outcomes. In this review, we discuss the diverse facets of the cGAS-STING signalling pathway, including emerging roles in homeostatic processes and their intersection with genome stability regulation, its role as a driver of chronic pro-tumour inflammation, and crosstalk with the tumour microenvironment, which may collectively underlie its apparent maintenance in cancers. A better understanding of the mechanisms whereby this immune surveillance pathway is commandeered by chromosomally unstable cancers is critical to the identifi-cation of new vulnerabilities for therapeutic exploitation.
Carcinogen-induced lung cancer in A/J mice is an established model of tumor initiation and development. The impact of radiation, immune response, and STING pathway activation on tumor development in this model is not well understood. In this study, we examined the effect of radiation and the STING agonist, DMXAA (Vadimezan), on the development of urethane-induced lung cancer. A/J mice were treated with urethane (i.p.) to induce the development of lung tumors. Three days after urethane treatment, mice received 13 Gy thorax radiation treatment (RT)/mock RT, DMXAA (20 mg/kg i.p.)/vehicle, or a combination treatment (n = 5). Mice were euthanized after 6 hours to 7 days after treatment to assess early events in the lung with RNA-sequencing and flow cytometry, or 5 months after treatment to assess tumor growth and long-term changes to the immune microenvironment with multiplex immunofluorescence. Mice treated with urethane followed by RT had fewer lung surface tumors (p < 0.01) and reduced tumor area (p = 0.0732) compared to their mock RT controls. In parallel, mice that received urethane pre-treatment and RT had high numbers of tertiary lymphoid structures (TLSs; these contained T-cells, B-cells, MHCII+ APCs and CXCL13) compared to the mock RT control mice (p < 0.001). Analysis of immune cell contents of the TLS revealed a notable increase in CD4, CD8 and regulatory T-cells in the RT condition (with urethane pretreatment). Important early events in the lung following RT of urethane pre-treated mice included a transient increase in type I and type II interferons, CD4 and CD8 T-cell infiltration (p < 0.001) and a strong downregulation of cell cycle events. In contrast to these findings, DMXAA treatment after urethane resulted in fewer tumors (p < 0.05), but larger tumors compared to the vehicle-treated group. An increase in immune cells was observed in the lung, however, without clear structures that resembled TLSs. Early events following DMXAA treatment with urethane pre-treatment included dampened levels of type I IFN and TNF-α in circulation and a decrease in T-cell infiltration into the lungs. Interestingly, RT and DMXAA combination treatment (with urethane pre-treatment) drove a synergistic anti-tumor effect, further reducing tumor numbers compared to the RT or DMXAA controls 5 months after treatment. RT and STING agonist treatment of pre-neoplastic lesions have differential impacts on tumor growth in the A/J mouse model, and work synergistically when combined. The different outcomes of RT and DMXAA on tumor growth may be driven by their distinctive mechanism of action on immune responses and capacities to form TLSs. These findings may have future implications for strategies for the early treatment of lung and other cancers, and they suggest that immune responses, including modulation of the STING pathway, may be an important aspect of early tumor development that could be targeted therapeutically. Citation Format: Kay Shigemori, Yanyan Jiang, Bruno Beernaert, Anderson J. Ryan, Eileen E. Parkes. Radiation and STING activation limit tumor development and modulate the immune environment via distinct mechanisms [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2023; Part 1 (Regular and Invited Abstracts); 2023 Apr 14-19; Orlando, FL. Philadelphia (PA): AACR; Cancer Res 2023;83(7_Suppl):Abstract nr 6406.
Interactions between cells and the extracellular matrix, mediated by integrin adhesion complexes (IACs), play key roles in cancer progression and metastasis. We investigated systems-level changes in the integrin adhesome during metastatic progression of a patient-derived cutaneous squamous cell carcinoma (cSCC), and found that the actin regulatory protein Mena is enriched in IACs in metastatic cSCC cells. Mena is connected within a subnetwork of actin-binding proteins to the LINC complex component nesprin-2, with which it interacts and co-localises at the nuclear envelope of metastatic cells. Moreover, Mena potentiates the interactions of nesprin-2 with the actin cytoskeleton and the nuclear lamina. CRISPR-mediated Mena depletion causes altered nuclear morphology, reduces tyrosine phosphorylation of the nuclear membrane protein emerin and downregulates expression of the immunomodulatory gene PTX3 via the recruitment of its enhancer to the nuclear periphery. We have uncovered an unexpected novel role for Mena at the nuclear membrane, where it controls the LINC complex, nuclear architecture, chromatin repositioning and cancer gene expression. This is the first description of an adhesion protein regulating gene transcription via direct signalling across the nuclear envelope.Abstract Figure