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Patino-Mercau, J. R.

Publications and source records attributed to Patino-Mercau, J. R..

2 recordsLinked to original sources

Myc inhibition triggers GM-CSF-driven regression of pancreatic tumours

The complex aetiology of pancreatic ductal adenocarcinoma (PDAC), together with its desmoplastic and hypoxic microenvironment, hinders effective treatment and contributes to its rapid lethality1. Using a reversibly switchable genetic mouse model that closely recapitulates human PDAC phenotype progression, we previously showed that selective deactivation of oncogenic Myc in PDAC epithelial cells triggers rapid disassembly of advanced PDACs2, both tumor cells and their associated immune microenvironment. Here, leveraging spatiotemporal genomics and multiplex immune profiling we determine the mechanism underpinning this regression programme and identify granulocyte-macrophage colony-stimulating factor (GM-CSF) as its key instructive cytokine, transiently released by pancreatic ductal epithelial cells rapidly following Myc inactivation, that initiates tumour regression. We further demonstrate that type 1 conventional dendritic cells (cDC1s) act as critical effectors in Myc-OFF GM-CSF-driven tumour regression. Both antibody-mediated blockade of GM-CSF and genetic ablation of cDC1s via Batf3 knockout bone marrow transplantation prevent PDAC regression. Conversely, transient systemic administration of recombinant GM-CSF to PDAC-bearing mice promotes rapid cDC1 infiltration and induces marked tumour regression in the sustained presence of Myc activity. Together, these findings reveal that PDAC regression induced by Myc de-activation is mediated by a latent morphogenic programme that is initiated by transient release of GM-CSF from tumour cells. This regression programme is rapid, tissue-specific, involves both neoplastic cells and attendant desmoplastic stroma, is reliant on innate immunity and provides a novel framework for therapeutic intervention in PDAC.

cancer biology↗

Small activating RNA AW1-51 (CEBPA-51) elicits targeted DNA demethylation to promote gene activation

Small activating RNAs are short double-stranded RNAs designed to upregulate transcription of target genes. By this virtue, they can be used to restore expression of genes frequently silenced in cancer. AW1-51 (also referred to as CEBPA-51), the first small activating RNA therapeutic to enter clinical evaluation, has demonstrated biological activity and safety in Phase II trials for hepatocellular carcinoma, both as monotherapy and in combination with sorafenib, and in Phase 1a/1b in combination with pembrolizumab for patients with advanced solid tumors. It targets the master regulator CCAAT enhancer-binding protein alpha, abnormally silenced by DNA methylation in a wide range of hematological and non-hematological malignancies. However, the molecular events enabling this mechanism are only partially elucidated. In this study, we uncovered the molecular basis for AW1-51-induced transcriptional reactivation of CCAAT enhancer-binding protein alpha demonstrating that by directly promoting DNA demethylation of its promoter restores its expression, protein synthesis, and consequently cell differentiation. These findings unveil AW1-51 as a prototype for RNA-based precision medicine enabling conditional expression of CCAAT enhancer-binding protein alpha in diseases characterized by aberrant gene silencing and extending its potential therapeutic impact beyond cancer.

molecular biology↗