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Biology subjects

Uranga, S.

Publications and source records attributed to Uranga, S..

2 recordsLinked to original sources

BCG-induced reprogramming of monocyte/macrophage populations enhances lung antitumor immunity in mice

The tumor microenvironment (TME) significantly influences antitumor immunity, with monocytes and macrophages playing pivotal roles both in pro- and anti-tumoral functions. Tumor-associated macrophages (TAMs) often adopt immunosuppressive phenotypes that promote tumor progression by inhibiting cytotoxic T and NK cells. This study investigates the antitumor mechanisms of intravenous (IV) Bacillus Calmette-Guerin (BCG) in a B16-F10 lung melanoma mouse model, focusing on its impact on monocyte/macrophage populations. Single-cell RNA sequencing revealed that IV BCG reprograms tumor-associated monocyte-derived macrophages (mo-macs), shifting them from immunosuppressive to pro-inflammatory phenotypes enriched in interferon-response signatures. BCG treatment increased the recruitment of classical (Mon Iigp1) and non-classical (Mon Fcgr4) monocytes, which exhibited enhanced antigen presentation and pro-inflammatory cytokine production, while reducing immunosuppressive subsets prevalent in untreated controls. These BCG-induced mo-macs established robust interactions with NK and T cells, promoting their activation and enhancing cytotoxic function, as validated by functional assays. Notably, transfer of BCG reprogrammed bone marrow progenitors into naive recipients elicited a sustained generation of immunostimulatory mo-macs that enhanced NK and T cell responses upon tumor challenge, These findings highlight IV BCGs potential as a cancer immunotherapy that targets the myeloid compartment to foster a pro-inflammatory TME, offering durable antitumor immunity by engaging both innate and adaptive immune responses.

immunology↗

NK cells mediate preventive efficacy of intravenous BCG against lung metastasis in mice

Lung metastases frequently arise from primary tumors, including bladder cancer, and represent a critical negative prognostic factor. Natural Killer (NK) cells have shown to play a vital role in controlling metastasis. Consequently, tumor cells have evolved specific mechanisms to evade NK cell-mediated immune surveillance, promoting metastasis and resistance to immunotherapy. In this study, we investigated the prophylactic and therapeutic potential of intravenous Bacillus Calmette-Guerin (BCG) in preventing lung metastases from bladder cancer cells using a murine model. We demonstrated that prophylactic BCG administration significantly reduced tumor burden and prolonged survival, largely through NK cell activation. However, BCG treatment was ineffective when administered over established tumors, likely due to tumor-driven immune evasion mechanisms. Our results revealed the contribution of interferon-gamma (IFN-{gamma}) to tumor resistance. Tumor cells exposed to IFN-{gamma} upregulated were more resistant to BCG in vivo, which correlated with the overexpression of immune checkpoint molecules, whereas disruption of the IFN-{gamma} signaling pathway in tumor cells partially restored the therapeutic efficacy of BCG. Our findings highlight the importance of understanding tumor immune escape mechanisms and suggest that BCG could be a promising treatment for preventing lung metastases in bladder cancer.

immunology↗