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Biology subjects

Clavero, P.

Publications and source records attributed to Clavero, P..

2 recordsLinked to original sources

C1q from C1q+ tumor-associated myeloid cells promotes resistance to T-cell engagers and CAR T-cells and is induced by LIF and glucocorticoids

Immunotherapies, particularly T-cell engagers (TCEs) and CAR T-cells, have shown limited efficacy in solid tumors, partly due to an immunosuppressive tumor microenvironment (TME). However, the molecular mechanisms by which the TME impairs immunotherapy remain poorly understood. Here, we found that C1q generated by C1q tumor-associated myeloid cells (TAMs) plays a fundamental role in shaping the immunosuppressive TME in glioblastoma (GBM), one of the most aggressive tumors. C1q suppressed T-cell activation and impaired the activity of T-cell engagers (TCEs) and CAR T-cells. Genetic ablation of C1qa improved anti-tumor responses to TCEs and CAR T-cells. We used innovative patient-derived tumor tissue cultures (PDTTCs), which preserve an intact TME, from 19 GBM patients and identified the LIF cytokine as the main inducer of C1q. Moreover, we discovered that glucocorticoids cooperate with LIF to induce C1q. The identified C1q TAM signature overlapped with an anti-LIF gene signature, was associated with poor prognosis, and was enriched in mesenchymal GBMs with NF1 mutations. The blockade of LIF using an anti-LIF neutralizing antibody decreased the presence of C1q+ TAMs, and we found that the regulation of C1q by anti-LIF is conserved between human and mouse. Using the C1qa-/- GBM mouse model, we showed that C1q mediates the anti-tumor immune response induced by LIF blockade. Our findings identify C1q TAMs as key immunosuppressive players in GBM, impairing CAR T-cells and TCE activity, and position them as therapeutic targets to improve immunotherapy responses in this devastating disease.

cancer biology↗

In vivo CRISPR-based screen identifies ZC3H12C as a mediator of CAR-T cell dysfunction in solid tumors

CAR-T cell therapy has shown limited efficacy in solid tumors, largely due to T cell dysfunction driven by chronic antigen exposure. To uncover mediators of this dysfunction, we developed an in vivo screening platform using an ovarian xenograft tumor model in which CD28-based CAR-T cells undergo exhaustion leading to tumor escape. Transcriptomic profiling of tumor-infiltrating CAR-T cells at different stages revealed dynamic upregulation of exhaustion-associated genes. We used this data to design a focused CRISPR/Cas9 library and performed an in vivo screen. We identified 14 significantly enriched candidate genes, among which ZC3H12C emerged as the top hit. Single-cell RNA and ATAC-seq confirmed ZC3H12C expression in CAR-T cells undergoing early exhaustion in vivo. ZC3H12C disruption enhanced CAR-T cell persistence and antitumor efficacy while reducing exhaustion, across both CD28- and 4-1BB-based CARs targeting distinct antigens. These results highlight ZC3H12C as a promising target to improve CAR-T therapy in solid tumors.

immunology↗