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Biology subjects

O'Sullivan, R.

Publications and source records attributed to O'Sullivan, R..

2 recordsLinked to original sources

Ephrin inhibition disrupts stromal-cancer crosstalk and reduces metastasis in pancreatic cancer

Cancer associated fibroblasts (CAFs) are critical drivers of disease progression and metastasis within the pancreatic tumour microenvironment. Using a 3D spheroid model of CAF-led invasion, we identified complementary expression of ephrin family receptors (EPHB2) and ligands (EPHRINB2) between cancer cells and CAFs, implicating this bidirectional signalling family in tumour progression. Through pancreatic stellate cell-derived CAFs isolated from genetically modified mouse models, where EphrinB was either lacking or modified by a gain-of-function mutation, we identified both forward and reverse signalling to be required for invasion. In a syngeneic murine orthotopic model of pancreatic cancer, we show that first-in-class tetramerisation inhibitors of Eph/Ephrin interactions can reduce local invasion in primary tumours, and significantly decrease metastatic tumour spread across multiple organ sites. Our data highlight Ephrin signalling as a critical nexus for CAF-cancer crosstalk and establish a foundation for the clinical development of targeted EPH-EPHRIN inhibitors to counter metastatic invasion.

cancer biology↗

SIGNAL-seq: Multimodal Single-cell Inter- and Intra-cellular Signalling Analysis

We present SIGNAL-seq (Split-pool Indexing siG-Nalling AnaLysis by sequencing): a multiplexed splitpool combinatorial barcoding method that simultaneously measures RNA and post-translational modifications (PTMs) in fixed single cells from 3D models. SIGNAL-seq PTM measurements are equivalent to mass cytometry and RNA gene detection is analogous to split-pool barcoding scRNA-seq. By measuring both mRNA ligand-receptor pairs and PTMs in single cells, SIGNAL-seq can simultaneously uncover inter- and intra-cellular regulation of tumour microenvironment plasticity.

cancer biology↗