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Biology subjects

Pahor, N.

Publications and source records attributed to Pahor, N..

2 recordsLinked to original sources

Eliminating Aggressive Cancers via PROTAC-like Inducers of Ferroptosis

Aggressive and therapy-resistant cancers present a significant challenge to treatment and are associated with poor patients survival. Identifying molecular pathways and compounds that target these pathways is critical for improving patient outcomes. RNF4, an E3-ubiquitin ligase, is pivotal in oncoprotein stabilization and DNA repair, enhancing cancer cell survival driving tumorigenesis. Elevated RNF4 levels are associated with poor prognosis in cancer patients. Here, we describe the development of R4VPs, proteolysis-targeted chimeras-like (PROTACs-like). R4VPs promote RNF4 degradation and reduce the levels of its stabilized oncoproteins. Notably, R4VPs induce ferroptotic cell death selectively in cancer cells, sparing non-tumorigenic and primary cells. Surprisingly, R4VPs-induced ferroptosis is independent of RNF4 but preferentially targets tumor-driving mutations, particularly those in the EGFR pathway, while not affecting PI3K-transformed cells. R4VPs effectively induce cell death in therapy-resistant melanoma and sarcomas including patient-derived sarcoma tumor cells. Our findings highlight the potential of ferroptosis inducers such as R4VPs as a therapeutic strategy for therapy resistance, aggressive, and hard-to-treat cancers. TeaserR4VPs induce ferroptotic death of melanoma and sarcoma cells including patient-derived tumor cells sparing non-transomed cells.

cancer biology↗

Stabilisation of β-Catenin-WNT signalling by USP10 in APC-truncated colorectal cancer drives cancer stemness and enables super-competitor signalling

The contribution of deubiquitylating enzymes to {beta}-Catenin stabilisation in intestinal stem cells and colorectal cancer (CRC) is poorly understood. Here, we report the deubiquitylase USP10 as an APC-truncation- specific enhancer of {beta}-Catenin stability, potentiating WNT signalling in CRC and cancer stem cells. Mechanistically, interaction studies in various CRC cell lines and in vitro binding studies, together with computational modelling, revealed that USP10 binding to {beta}-Catenin is mediated via the unstructured N-terminus of USP10 and requires the absence of full-length APC. Notably, loss of USP10 in CRISPR engineered intestinal organoids reduces tumorigenic properties of CRC and blocks the super competitor-signalling of APC-mutated CRC. Furthermore, reduction of USP10 induces the expression of differentiation genes, and opposes the APC-truncated phenotype in an intestinal hyperplasia model of D.melanogaster. Taken together, our findings reveal USP10s role in intestinal tumourigenesis by stabilising {beta}-Catenin, leading to aberrant WNT signalling, enhancing cancer cell stemness and implicate the DUB USP10 as a cancer specific therapeutic vulnerability in Apc truncated CRC.

cancer biology↗