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Published on: March 1, 2019
LINE-1 Retrotransposon Protein ORF1p Forms Condensates That Drive cGAS-Induced Immune Evasion in Lung Squamous Cell
Biyuan Xing1,2, Jialing Liu1,2, Yongjie Xie3
1Cancer Molecular Diagnostics Core, Tianjin Medical University Cancer Institute and Hospital, National Clinical Research Center for Caner, State Key Laboratory of Druggability Evaluation and Systematic Translational Medicine, Tianjin's Clinical Research Center for Cancer, Tianjin, China.
Abstract:
Lung squamous cell carcinoma (LUSC) is a lethal malignancy with limited treatment options, driven by an immunosuppressive tumor microenvironment (TME) and a paucity of actionable targets. Pathogenic LINE-1 (pL1HS) retrotransposons promote LUSC progression by fostering immune evasion. Elucidation of the mechanistic link between retrotransposon activity and TME reprogramming could help identify strategies to stimulate antitumor immunity. In this study, we conducted integrated multiomics analyses, including bulk and single-cell RNA sequencing combined with proteomics, that revealed hyperactivated cGAS-STING signaling and a myeloid-derived suppressor cell (MDSC)-rich TME in pL1HS+ LUSC. Mechanistically, LINE-1 open reading frame 1 protein (L1-ORF1p) underwent liquid-liquid phase separation (LLPS) via its intrinsically disordered region, forming cytosolic condensates that scaffolded pL1HS nucleic acid, HMGN2, and cGAS into a ternary complex. This complex sustained chronic noncanonical NF-κB signaling-dependent cGAS-STING activation, which in turn drove immune suppression via MDSC recruitment and activation. The coiled-coil domain of L1-ORF1p stabilized these condensates by binding HMGN2, perpetuating this immunosuppressive cascade. Dual targeting of pL1HS and cGAS restored antitumor immunity and suppressed tumor growth in preclinical models. Together, this work reveals a therapeutically actionable LLPS-driven axis that can be targeted with a combinatorial strategy to overcome immune evasion in LUSC, thereby addressing a critical unmet clinical need.
Significance:
Pathogenic LINE-1 retrotransposon-derived L1-ORF1p forms condensates to scaffold cGAS-HMGN2 complexes that activate cGAS-STING and drive immunosuppression in lung squamous cell carcinoma, which can be overcome by combined targeting of LINE-1 and cGAS.
Insights
Pathogenic LINE-1 retrotransposons drive lung cancer immune evasion by activating cGAS-STING signaling. Targeting this pathway with LINE-1 and cGAS inhibitors restores anti-tumor immunity and suppresses tumor growth.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Lung squamous cell carcinoma (LUSC) is a deadly cancer with few treatments, often due to an immunosuppressive tumor microenvironment (TME).
- Pathogenic LINE-1 (pL1HS) retrotransposons contribute to LUSC by promoting immune evasion.
Purpose of the Study:
- To elucidate the mechanism linking retrotransposon activity to TME reprogramming in LUSC.
- To identify strategies for stimulating anti-tumor immunity by understanding this link.
Main Methods:
- Integrated multi-omics analyses: bulk and single-cell RNA-sequencing, and proteomics.
- Investigation of LINE-1 open reading frame 1 protein (L1-ORF1p) interactions and signaling pathways.
- Preclinical models to test dual targeting strategies.
Main Results:
- pL1HS+ LUSC exhibits hyperactivated cGAS-STING signaling and an MDSC-rich TME.
- L1-ORF1p forms cytosolic condensates via liquid-liquid phase separation (LLPS), scaffolding nucleic acids, HMGN2, and cGAS.
- This complex drives chronic cGAS-STING activation, leading to immune suppression via MDSCs.
- Dual targeting of pL1HS and cGAS restored anti-tumor immunity and suppressed tumor growth.
Conclusions:
- A therapeutically actionable axis driven by LLPS connects retrotransposon activity to immune suppression in LUSC.
- Combinatorial targeting of pL1HS and cGAS offers a strategy to overcome immune evasion in LUSC.
- This approach addresses a critical unmet need in LUSC treatment.
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