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Hughes, C. J.

Publications and source records attributed to Hughes, C. J..

3 recordsLinked to original sources

Genetic and Pharmacologic Targeting of Eya3 in Macrophages Drives Anti-Tumor Immunity in Triple-Negative Breast Cancer

Triple negative breast cancer (TNBC) is an aggressive form of breast cancer that remains difficult to treat despite its relatively high immunogenicity, as tumors frequently evade immune destruction through poorly understood mechanisms. Here, we discover a previously unrecognized role for Eya3 within macrophages in the tumor immune microenvironment, where its expression is elevated. Using macrophage Eya3 knockdown and conditional knockout models, we show that Eya3 depletion induces coordinated transcriptional and functional changes in macrophages, enhancing migration, antigen processing, and inflammatory signaling associated with anti-tumor immunity. Strikingly, macrophage-targeted deletion of Eya3 reprograms the immune response in TNBC, increasing CD8+ T cell infiltration, suppressing primary tumor growth, and prolonging survival. Pharmacologic inhibition of Eya3 tyrosine phosphatase activity with a novel allosteric inhibitor, LG1-34, mirrors this effect, dramatically reducing primary TNBC growth through immune-mediated mechanisms that likely act both though targeting tumor and immune cells. These findings identify Eya3 as a macrophage-intrinsic checkpoint on anti-tumor immunity, identifying a new potential vulnerability in TNBC. Significance StatementTargeting Eya3 tyrosine phosphatase activity in tumor-associated macrophages reprograms the TNBC immune microenvironment and restores anti-tumor immunity, identifying a new potential therapeutic vulnerability in a cancer that has limited treatment targeted options.

cancer biology↗

Engineering Extracellular Vesicle Production through Magnetic Ion Channel Activation for Bone Regeneration

Bone disorders represent a significant global health challenge. Extracellular vesicles (EVs) are emerging as a promising nanotherapeutic approach for bone regeneration, addressing the translation barriers associated with cell-based therapies. Despite their immense potential, the clinical application of EVs is limited by low production yields and inconsistent quality. Magnetic Ion Channel Activation (MICA) utilises remote magnetic fields to stimulate mechano-sensitive ion channels through magnetic nanoparticles (MNPs). This study explores the potential of utilising MICA to enhance the production yield and therapeutic efficacy of EVs for bone regeneration. The findings demonstrate that MICA significantly increased the production yield of EVs from MC3T3 pre-osteoblasts compared to magnetic stimulation or TREK1 functionalised graphene oxide-MNP particles alone. The obtained EVs exhibited typical size distribution, morphology, and EV protein expression consistent with nano-sized vesicles. Furthermore, MICA/TREK EVs treatment considerably enhanced human bone marrow-derived mesenchymal stem cells osteogenic differentiation and mineralisation compared to EVs derived from MICA, TREK, or untreated groups. Proteomics analysis revealed the enrichment of proteins involved in mechanotransduction and osteogenic differentiation within MICA/TREK EVs. In summary, these findings highlight the substantial potential of MICA as a platform to enhance the scalable production and therapeutic application of pro-regenerative EVs for bone augmentation strategies.

bioengineering↗

An EYA3/NF-κB/CCL2 signaling axis suppresses cytotoxic NK cells in the pre-metastatic niche to promote triple negative breast cancer metastasis

Patients with Triple Negative Breast Cancer (TNBC) exhibit high rates of metastases and poor prognoses. The Eyes absent (EYA) family of proteins are developmental transcriptional cofactors/phosphatases that are re-expressed and/or upregulated in numerous cancers. Herein, we demonstrate that EYA3 correlates with decreased survival in breast cancer, and that it strongly, and specifically, regulates metastasis via a novel mechanism that involves NF-kB signaling and an altered innate immune profile at the pre-metastatic niche (PMN). Remarkably, restoration of NF-kB signaling downstream of Eya3 knockdown (KD) restores metastasis without restoring primary tumor growth, isolating EYA3/NF-kB effects to the metastatic site. We show that secreted CCL2, regulated downstream of EYA3/NF-kB, specifically decreases cytotoxic NK cells in the PMN and that re-expression of Ccl2 in Eya3-KD cells is sufficient to rescue activation/levels of cytotoxic NK cells in vitro and at the PMN, where EYA3-mediated decreases in cytotoxic NK cells are required for metastatic outgrowth. Importantly, analysis of public breast cancer datasets uncovers a significant correlation of EYA3 with NF-kB/CCL2, underscoring the relevance of EYA3/NF-kB/CCL2 to human disease. Our findings suggest that inhibition of EYA3 could be a powerful means to re-activate the innate immune response at the PMN, inhibiting TNBC metastasis. SignificanceEYA3 promotes metastasis of TNBC cells by promoting NF-kB-mediated CCL2 expression and inhibiting cytotoxic NK cells at the pre-metastatic niche, highlighting a potential therapeutic target in this subset of breast cancer.

cancer biology↗