Transcriptional intermediary factor 1 gamma-based multitarget gene therapeutic strategy for triple-negative breast cancer

Abstract Triple-negative breast cancer (TNBC) is an aggressive subtype lacking effective targeted therapies. A multitarget gene therapy was developed and validated to overcome molecular heterogeneity and compensatory survival signaling in TNBC. A codon-optimized human transcriptional intermediary factor 1 gamma (opti-hTIF1γ) gene therapy was evaluated in ex vivo–cultured patient biopsy tissues and in orthotopic and mammary intraductal mouse models, and the underlying mechanisms were investigated using pathway and immune-functional analyses. Ex vivo findings were further validated using patient-derived cells and complementary mechanistic studies, including ubiquitination assays, chromatin immunoprecipitation, and functional macrophage coculture analyses, to define the molecular basis of TIF1γ-mediated antitumor activity. Transduction of opti-hTIF1γ to ex vivo-cultured biopsy tissues from TNBC patients suppressed epithelial-to-mesenchymal transition and proliferation while inducing apoptosis. In orthotopic and mammary intraductal mouse models, opti-hTIF1γ effectively suppressed tumor growth and lung metastasis. Mechanistically, opti-hTIF1γ inhibits β-catenin via ubiquitination-dependent degradation and inhibits the SMAD-dependent TGFβ pathway by binding to SMAD2/3. In parallel, it suppresses the SMAD-independent TGFβ pathway via ubiquitination and caspase-3-associated degradation of STAT3, leading to the inhibition of TAK1. Furthermore, opti-hTIF1γ downregulates STAT3-dependent immune modulators such as CD47 and CXCL5 in TNBC, enhancing macrophage phagocytosis. These findings position opti-hTIF1γ as a promising multitarget gene therapeutic strategy for TNBC through concurrent suppression of tumorigenic signaling and reprogramming of the immune landscape.

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Publication Details

Journal
Signal Transduction and Targeted Therapy
Published
2026-09-28
DOI
https://doi.org/10.1038/s41392-026-02977-x
Primary Topic
Cancer Research and Treatments
Type
article
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article

Transcriptional intermediary factor 1 gamma-based multitarget gene therapeutic strategy for triple-negative breast cancer

Eugene Yun, Hyomin Park, 김영민, Han‐Byoel Lee et al.
Signal Transduction and Targeted Therapy
Cancer Research and Treatments
article

Transcriptional intermediary factor 1 gamma-based multitarget gene therapeutic strategy for triple-negative breast cancer

Eugene Yun, Hyomin Park, 김영민, Han‐Byoel Lee, Hyo‐Soo Kim, Dodam Moon, Hyunji Yun, Eun Ju Lee, Tae Yoon Kim, Hong-Kyu Kim, Areum Cha, Nam-Joon Cho, Jaewon Lee, Dae-Won Lee, Seock-Ah Im, Changhee Park
article en

Abstract

Abstract Triple-negative breast cancer (TNBC) is an aggressive subtype lacking effective targeted therapies. A multitarget gene therapy was developed and validated to overcome molecular heterogeneity and compensatory survival signaling in TNBC. A codon-optimized human transcriptional intermediary factor 1 gamma (opti-hTIF1γ) gene therapy was evaluated in ex vivo–cultured patient biopsy tissues and in orthotopic and mammary intraductal mouse models, and the underlying mechanisms were investigated using pathway and immune-functional analyses. Ex vivo findings were further validated using patient-derived cells and complementary mechanistic studies, including ubiquitination assays, chromatin immunoprecipitation, and functional macrophage coculture analyses, to define the molecular basis of TIF1γ-mediated antitumor activity. Transduction of opti-hTIF1γ to ex vivo-cultured biopsy tissues from TNBC patients suppressed epithelial-to-mesenchymal transition and proliferation while inducing apoptosis. In orthotopic and mammary intraductal mouse models, opti-hTIF1γ effectively suppressed tumor growth and lung metastasis. Mechanistically, opti-hTIF1γ inhibits β-catenin via ubiquitination-dependent degradation and inhibits the SMAD-dependent TGFβ pathway by binding to SMAD2/3. In parallel, it suppresses the SMAD-independent TGFβ pathway via ubiquitination and caspase-3-associated degradation of STAT3, leading to the inhibition of TAK1. Furthermore, opti-hTIF1γ downregulates STAT3-dependent immune modulators such as CD47 and CXCL5 in TNBC, enhancing macrophage phagocytosis. These findings position opti-hTIF1γ as a promising multitarget gene therapeutic strategy for TNBC through concurrent suppression of tumorigenic signaling and reprogramming of the immune landscape.

Signal Transduction and Targeted TherapyVol. 11(1)
Good health and well-being
Openalex Percentile: Top 17%
Cancer Research and Treatments
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