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PCBP1 binding to single-stranded poly-cytosine motifs enhances cGAS sensing and impairs breast cancer development.

Communications biology 2026 Vol.9(1) p. 179

Fréreux C, Karam JAQ, Howley BV, Granger B, Chakraborty P, Vaena S, Romeo M, Dalton AC, Mohanty BK, Mehrotra S, Howe PH

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The cGAS-STING pathway plays a central role in controlling tumor progression through nucleic acid sensing and type I Interferon production.

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BibTeX ↓ RIS ↓
APA Fréreux C, Karam JAQ, et al. (2026). PCBP1 binding to single-stranded poly-cytosine motifs enhances cGAS sensing and impairs breast cancer development.. Communications biology, 9(1), 179. https://doi.org/10.1038/s42003-025-09456-z
MLA Fréreux C, et al.. "PCBP1 binding to single-stranded poly-cytosine motifs enhances cGAS sensing and impairs breast cancer development.." Communications biology, vol. 9, no. 1, 2026, pp. 179.
PMID 41501525

Abstract

The cGAS-STING pathway plays a central role in controlling tumor progression through nucleic acid sensing and type I Interferon production. Here, we identify Poly(rC) Binding Protein 1 as a tumor suppressor that amplifies cGAS-STING signaling in breast cancer. Using patient datasets and a transgenic mouse model with conditional PCBP1 knockout in mammary epithelial cells, we show that PCBP1 expression correlates with improved survival, reduced tumor burden, increased type I Interferon and Interferon Stimulated Gene expression, and elevated cytotoxic T cell infiltration. Mechanistically, PCBP1 binds cytosine-rich single-stranded motifs via its KH domains and increases cGAS affinity to these nucleic acids. Mutation of PCBP1's conserved GXXG loops impairs nucleic acid binding and cGAS activation. Although cGAS is a double-stranded DNA sensor with no intrinsic sequence specificity, we uncover that the single-stranded nucleic-acid binding protein PCBP1 enhances cGAS sensing by engaging sequence-specific motifs, acting as a nucleic acid co-sensor that impairs tumorigenesis.

MeSH Terms

Humans; Breast Neoplasms; Female; Animals; Nucleotidyltransferases; RNA-Binding Proteins; Mice; Heterogeneous-Nuclear Ribonucleoproteins; Signal Transduction; DNA, Single-Stranded; Mice, Transgenic; DNA-Binding Proteins; Cell Line, Tumor; Gene Expression Regulation, Neoplastic; Cyclic Guanosine Monophosphate-Adenosine Monophosphate Synthase