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Paradisi, A.

Publications and source records attributed to Paradisi, A..

2 recordsLinked to original sources

Oncogenic mutations convert MET from a pro-apoptotic tumor suppressor to an oncogenic driver

Dependence receptors can exert both oncogenic and tumor-suppressive activities. In cancers, downregulation of dependence receptors or overexpression of their ligands are well-established mechanisms that drive tumor progression. However, direct genetic alterations abolishing the pro-apoptotic function of dependence receptors have not been documented so far. MET, a receptor tyrosine kinase classically viewed as an oncogene, has also been proposed to act as a dependence receptor through its caspase-mediated cleavage, but whether this property impacts tumorigenesis remained unknown. In [~]3% of lung adenocarcinomas, MET mutations leading to exon 14 skipping (METex14Del) remove both the caspase site and the adjacent CBL-binding motif, thereby preventing generation of the pro-apoptotic p40MET fragment. METex14Del promotes sustained signaling, enhanced invasion, apoptosis resistance, and tumor growth in HGF-humanized mice. Genome editing revealed that combined --but not individual-- mutations of the caspase and CBL sites phenocopy METex14Del. Moreover, inducible re-expression of p40MET in METex14Del-expressing cells restored apoptosis and suppressed tumor formation. Altogether, our findings identify MET exon 14 skipping as the first oncogenic mutation that drives tumorigenesis by abolishing the tumor-suppressive pro-apoptotic function of a dependence receptor, thereby redefining the oncogenic potential of MET.

cancer biology↗

Netrin-1 regulates colorectal cancer stem cell self-renewal via a TFF3 dependent paracrine survival mechanism

BackgroundMetastatic colorectal cancer (mCRC) is associated with high recurrence rates and resistance to conventional treatments, largely driven by cancer stem cells (CSCs) that contribute to tumor progression and therapeutic evasion. This study aims to investigate the role of netrin-1 and its dependence receptor UNC5B in regulating CSC self-renewal in mCRC and explore their potential as therapeutic targets. MethodsWe used patient-derived liver metastasis organoids (PDOs) to examine the effects of netrin-1 on CSC self-renewal. The role of UNC5B was evaluated by silencing its expression using CRISPR and assessing the impact on CSC apoptosis in response to an anti-netrin-1 blocking antibody (NP137) using extreme limiting dilution assays (ELDAs). Single-cell RNA sequencing was employed to explore the molecular mechanisms behind netrin-1/UNC5B regulation of CSC fate. Clinical data from a patient with mCRC were used to validate the findings. ResultsNetrin-1 promoted CSC self-renewal by inhibiting apoptosis, a process reversed by NP137. UNC5B was identified as the primary receptor mediating this effect, as its silencing eliminated Netrin-1-induced self-renewal. Trefoil Factor 3 (TFF3), secreted by UNC5B-expressing cells, plays a key role in netrin-1-induced CSC self-renewal. Clinical trial data from a patient with mCRC showed a reduction in TFF3 and stemness genes expression after treatment with NP137. Furthermore, combining NP137 with FOLFOX chemotherapy enhanced cell death and inhibited tumor growth in PDO xenograft models. ConclusionThis study identifies the netrin-1/UNC5B/TFF3 axis as a critical regulator of CSC self-renewal in mCRC and suggests that targeting this pathway with NP137, in combination with chemotherapy, could provide a promising therapeutic approach for mCRC patients.

cancer biology↗