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RIG-I-dependent tumor-intrinsic type I interferon signaling restricts growth in breast cancer 3D culture
Abstract:
Discovery of key growth drivers that can be targeted for therapy is a central goal in cancer research. While high-throughput CRISPR screens have revolutionized our ability to identify gene dependencies in cancer, most large-scale screens are conducted in two-dimensional (2D) culture systems that fail to recapitulate tumor organization and behavior. To uncover architecture-dependent vulnerabilities in breast cancer, we performed parallel CRISPR interference (CRISPRi) screens in 2D and three-dimensional (3D) cultures of MCF7 cells, an estrogen receptor-positive (ER+) breast cancer model representative of a high risk of relapse, luminal subtype. Knockdown of IFNAR2 and TYK2 conferred a growth advantage in 3D cultures, implicating type I interferon signaling as a tumor-intrinsic suppressor of proliferation in 3D spheroids. Transcriptomic and functional analyses demonstrated that type I IFN signaling is endogenously activated in 3D spheroids via RIG-I-mediated sensing of cytosolic double-stranded RNA, leading to TBK1 activation and induction of interferon-stimulated genes (ISGs). This tumor-intrinsic IFN response slowed proliferation in 3D culture, independent of exogenous stimuli or the presence of immune cells. Analysis of bulk, single-cell, and spatial transcriptomic datasets from breast cancer patients revealed that a subset of tumors exhibit elevated IFN signaling in cancer cells, including in immune-depleted tumor cores, consistent with a tumor-intrinsic IFN signature. Our findings uncover an IFN-mediated growth-suppressive program shaped by 3D tumor architecture, and contribute towards a better understanding of the role of tumor-intrinsic IFN activity.
Insights
Type I interferon signaling acts as an intrinsic suppressor of breast cancer cell proliferation in 3D cultures. This discovery highlights architecture-dependent vulnerabilities and potential therapeutic targets in estrogen receptor-positive (ER+) breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genomics
Background:
- Identifying therapeutic targets is crucial for cancer research.
- High-throughput CRISPR screens are powerful for gene dependency discovery.
- Traditional 2D cell cultures do not fully represent tumor complexity.
Purpose of the Study:
- To identify breast cancer vulnerabilities dependent on tumor architecture.
- To compare CRISPR screens in 2D versus 3D culture systems.
- To investigate the role of type I interferon signaling in breast cancer growth.
Main Methods:
- Parallel CRISPR interference (CRISPRi) screens in 2D and 3D MCF7 cell cultures.
- Analysis of gene knockdown effects on cell proliferation.
- Transcriptomic and functional analyses of identified pathways.
- Examination of patient tumor datasets (bulk, single-cell, spatial transcriptomics).
Main Results:
- Knockdown of IFNAR2 and TYK2 genes promoted growth in 3D cultures.
- Type I interferon signaling was identified as an intrinsic suppressor of proliferation in 3D spheroids.
- Endogenous type I interferon activation in 3D spheroids involves RIG-I and TBK1, inducing interferon-stimulated genes (ISGs).
- A subset of human breast tumors shows elevated intrinsic type I interferon signaling.
Conclusions:
- 3D tumor architecture shapes an intrinsic, IFN-mediated growth-suppressive program.
- Type I interferon signaling represents a tumor-intrinsic vulnerability.
- Findings contribute to understanding the role of intrinsic interferon activity in breast cancer.
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