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Pilanc-Kudlek, P.

Publications and source records attributed to Pilanc-Kudlek, P..

2 recordsLinked to original sources

TIAR-dependent coordination of alternative splicing and lipid peroxidation is required for CML cell resistance to imatinib in the bone marrow stroma

Chronic myeloid leukemia (CML) is treated with Abl1 tyrosine kinase inhibitors (TKIs). Quiescent cancer cells residing in the bone marrow (BM) can survive the treatment and cause CML relapse. We previously found that a subset of alternative splicing (AS) changes detected in CML cells surviving months of therapy are initiated within hours of treatment onset. Here, we investigated how AS in CML cells is modulated by the human BM microenvironment. By incorporating humanized BM niche models in vivo, we uncovered stroma-induced transcriptome adaptation that influences transcriptional regulation, transmembrane transport, lipid metabolism, the tricarboxylic acid cycle, and respiratory electron transport. We identified RNA-binding protein TIAR (T-cell intracellular antigen-related protein) as a key mediator of CML survival under TKI imatinib treatment. Our data show TIAR-dependent coordination of RNA processing with the metabolic program induced by stromal interaction. Quantitative nascent proteome analysis revealed that TIAR silencing affects the synthesis of metabolic enzymes and proteins involved in imatinib-induced erythroid differentiation. Besides, TIAR knockdown increased lipid peroxidation in untreated cells and decreased reduction potential in cells upon imatinib treatment. Taken together, TIAR deficiency reduces CML survival, possibly by inducing ferroptosis. These findings identify TIAR-dependent RNA processing within the BM niche as a previously unrecognized mechanism of CML therapy resistance and a potential therapeutic vulnerability.

cancer biology↗

Integrin blocking peptide reverses immunosuppression in experimental gliomas and improves anti-PD-1 therapy outcome

Immune checkpoint inhibitors (ICI) presented clinical benefits in many cancer patients but invariably fail in glioblastoma (GBM), the most common and deadly primary brain tumor. Lack of ICI efficacy in GBM is attributed to the accumulation of immunosuppressive myeloid cells that create the "cold" tumor microenvironment (TME) impeding infiltration and activation of effector T cells. We developed a designer RGD peptide that hindered glioma-instigated, integrin-mediated pro-tumoral reprogramming of myeloid cells and blocked microglia-dependent invasion of human and mouse glioma cells in co-cultures in vitro. Intratumorally-delivered RGD alone did not reduce glioma growth in syngeneic mice but prevented the emergence of immunosuppressive myeloid cells and led to peritumoral blood vessels normalization. Furthermore, combining RGD with immunotherapy using PD-1 blockade reduced tumor growth, led to upsurge of proliferating, interferon-{gamma} producing CD8+T cells and depleted regulatory T cells. Transcriptomic profiles of myeloid cells were altered by the combined treatment, consistently with the restored "hot" inflammatory TME and boosted immunotherapy responses. RGD modified the phenotypes of myeloid cells in human gliomas in nude mice. Thus, combining the integrin blockade with ICI reinvigorates antitumor immunity and paves the way to improve immunotherapy outcomes in GBM.

cancer biology↗