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Nazio, F.

Publications and source records attributed to Nazio, F..

3 recordsLinked to original sources

Organelle proteomics reveals novel metabolic vulnerabilities in FLT3-ITD cells

In acute myeloid leukemia (AML), the insertion site of internal tandem duplications (ITDs) within the FLT3 gene critically determines the sensitivity to tyrosine kinase inhibitors (TKIs). Despite recent advances, patients harboring ITDs in the tyrosine kinase domain (TKD) still lack effective therapeutic options. To elucidate the molecular basis underlying the differential TKI sensitivity of FLT3-ITD cells, we integrated high-resolution mass spectrometry-based (phospho)proteomics with subcellular fractionation. Our analysis revealed that midostaurin induces the subcellular redistribution of approximately 2500 proteins involved in crucial biological processes, including cell cycle control, autophagy, and metabolism. Functional analyses further demonstrated that the ITD insertion site determines the autophagy response to midostaurin and modulates mitochondrial metabolism, influencing organelle architecture and ATP production, even at steady state. Importantly, by integrating subcellular proteomic dataset with functional metabolic assays, we uncovered a lipid-dependent vulnerability of FLT3-ITD cells: lipid restriction enhances FLT3 trafficking to the plasma membrane, and markedly reduces cell viability, restoring midostaurin sensitivity of resistant FLT3-ITD cells. Together, our findings reveal that the FLT3-ITD insertion site orchestrates a coordinated remodeling of subcellular protein organization, autophagy, and metabolism, and identify lipid-mediated control of FLT3 compartmentalization as a therapeutically actionable mechanism to overcome TKI resistance in FLT3-ITD AML.

cancer biology↗

HnRNP C binding to inverted Alu elements protects the transcriptome from pre-mRNA circularization

Back-splicing is a non-canonical splicing event that drives the biogenesis of circular RNAs (circRNAs). Although the molecular mechanisms underlying circRNA biogenesis have been partially elucidated, how this process is globally regulated in tumors, has not been fully investigated. Herein, we uncover a hnRNP C-dependent mechanism that represses a broad repertoire of circRNAs in Group 3 medulloblastoma (MB). HnRNP C binds Alu elements and prevents the circularization of pre-mRNA transcripts. Expression of hnRNP C modulates the balance between linear and circular splicing and guarantees efficient expression of genes that sustain the oncogenic phenotype of Group 3 MB cells. Remarkably, in the absence of hnRNP C, the introns flanking the circularizing exons generate cytoplasmic dsRNAs through base-pairing of inverted Alu elements and trigger an interferon-induced antiviral response. These findings unveil the role of hnRNP C as guardian of transcriptome integrity by repressing circRNA biogenesis. Lastly, targeting hnRNP C in Group 3 MB may trigger an inflammatory immune response, thereby boosting cancer surveillance.

cancer biology↗

Ubiquitin-dependent degradation of p21Waf1/Cip1 is mediated by AMBRA1 to limit DNA replication stress

The cell cycle is a fundamental process that orchestrates the events that lead to cell replication and division. AMBRA1 is a scaffold factor that interacts with the E3 ubiquitin ligase CRL4-DDB1 complex to regulate the stability of cyclin D-type proteins, key regulators of the G1/S phase transition. However, how cells complete S-phase and coordinate the speed of DNA synthesis is still to be fully elucidated. Here we demonstrate that AMBRA1 affects the turnover of p21Waf1/Cip1 and p27Kip1, by coupling the CRL4-DDB1 complex directly to these proteins. In the absence of AMBRA1, the increased stability of p21Waf1/Cip1, rather than p27Kip1, resulted in the accumulation of replication stress by leaving under-replicated DNA during the S phase. We also found that AMBRA1-depleted cells with consequent high p21Waf1/Cip1 are sensitive to the inhibition of lagging-strand DNA synthesis. Of clinical relevance, low levels of AMBRA1 in Sonic-Hedgehog medulloblastoma correlate with a worse prognosis, suggesting that AMBRA1 expression levels could be an informative criterion for patient stratification and treatment.

molecular biology↗