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Biology subjects

Bonfanti, R.

Publications and source records attributed to Bonfanti, R..

4 recordsLinked to original sources

The CRL7FBXW8 Complex Controls the Mammary Stem Cell Compartment Through Regulation of NUMB Levels

NUMB is a tumor suppressor gene that functions by inhibiting the action of the NOTCH proto-oncogene and enhancing the levels and activity of the tumor suppressor protein p53. In breast cancer (BC), NUMB loss-of-function (LOF), mediated by various molecular mechanisms, is a frequent and causal event. Herein, we establish that loss of NUMB protein, resulting from protein hyper-degradation, is the prevalent mechanism of NUMB LOF in BC. Through a RNAi-based screening, we identified the CRL7FBXW8 complex as the E3 ligase complex responsible for NUMB hyper-degradation in BC. Genetic and pharmacological inhibition of CRL7FBXW8 rescued the transformation-related phenotypes induced by NUMB LOF in BC cell lines and in patient-derived xenografts. These effects were directly dependent on the restoration of NUMB protein levels. Thus, enhanced CRL7FBXW8 activity, through its interference with the tumor suppressor activity of NUMB, is a causal alteration in BC, suggesting it as a potential therapeutic target for precision medicine.

cancer biology↗

Loss of the tumor suppressor NUMB drives aggressive bladder cancer through hyperactivation of a RhoA/ROCK/YAP signaling circuitry

Bladder cancer (BCa) is one of the most challenging and costly cancers to treat, yet little progress has been made on the development of predictive biomarkers and targeted therapies. Here, we uncover a critical function of Numb as a tumor suppressor in the bladder, identifying loss of Numb expression as a causal alteration in BCa that underlies biological aggressiveness and disease progression. Through retrospective cohort studies, we established that a Numb-deficient tumor status correlates with worse overall survival in post-cystectomy muscle-invasive bladder cancer (MIBC) patients and increased risk of MIBC progression in non-muscle-invasive bladder cancer (NMIBC) patients. The prognostic value of Numb loss can be attributed to its crucial role as a determinant of aggressive bladder tumorigenesis, as demonstrated in mouse and human models. Targeted Numb ablation in the basal layer of the urothelium was alone sufficient to trigger spontaneous bladder tumorigenesis and drive progression from preneoplastic to preinvasive and, ultimately, overtly invasive tumors. Additionally, Numb ablation sensitized the urothelium to other oncogenic insults, accelerating tumor onset and progression. Using 3D-Matrigel organoid cultures to recapitulate bladder tumorigenesis in vitro, we found that Numb loss heightens the proliferative and invasive potential of both mouse and human BCa cells. Integrative transcriptomic and functional analyses revealed that downregulation of the canonical Hippo pathway, resulting in enhanced YAP transcriptional activity, underlies the biological aggressiveness of Numb-deficient BCa. These molecular events are dependent on the activation of RhoA/ROCK signaling subsequent to Numb loss. Thus, a dysfunctional Numb-RhoA/ROCK-Hippo/YAP regulatory network is at play in aggressive Numb-deficient BCa and represents a therapeutic vulnerability. A 27-gene prognostic signature capable of identifying high-risk Numb-deficient patients could provide the basis of a clinical tool to stratify patients for innovative RhoA/ROCK/YAP targeted therapies. One Sentence SummaryNumb loss-directed hyperactivation of RhoA/ROCK/YAP underlies aggressive bladder cancer biology.

cancer biology↗

Liraglutide treatment reverses unconventional cellular defects in induced pluripotent stem cell-derived β cells harboring a partially functional WFS1 variant

Aims/hypothesisWolfram Syndrome 1 (WS1) is a rare genetic disorder characterized by very heterogeneous clinical manifestations caused by variants of the WFS1 gene, which encodes for the Endoplasmic Reticulum (ER) protein Wolframin, involved in cellular stress response, Ca2+ handling and autophagy. Given the central role of Wolframin, elucidating the impact of WFS1 variants on cell functions is crucial to provide an association with clinical phenotypes. Therefore, as the understanding of patient-specific defects may also help to develop targeted therapeutic approaches, here we aimed at elucidating the impact on {beta} cell function of the c.316-1G>A mutation harboring the partially functional Wolframin that we have previously characterized, and the molecular changes following treatment with the glucagon-like peptide 1 receptor (GLP-1R) agonist liraglutide. MethodsWe previously generated patient-derived iPSCs (WFS1) and isogenic line in which the c.316-1G>A mutation was genetically corrected (WFS1wt/757A>T), thus performed molecular analysis, including single cell RNAseq (scRNAseq), and functional studies on iPSC-derived {beta} cell (iBeta). Calcium flux imaging and dynamic perifusion assays were used to test glucose responsiveness of iBeta. Treatment with liraglutide was performed to investigate effects on glucose-stimulated insulin secretion (GSIS), unfolded protein response (UPR), autophagy and apoptosis. ResultsWe found that both WFS1 and WFS1wt/757A>T iBeta efficiently differentiated in vitro into pancreatic lineage, but WFS1 showed less mature endocrine phenotype, reduced glucose responsiveness and impaired insulin secretion compared to WFS1wt/757A>T counterpart. The Ca2+ dynamics were altered in WFS1 iBeta as Ca2+ oscillations after glucose challenge were not synchronized mainly due to the CACNA1D and SNAP25 downmodulation. Reduced insulin secretion was correlated with a decrease in PC1/3 levels and overall increase of RGS4 expression in WFS1 iBeta, whereas secretory defects correlated with accelerated autophagic flux. While the functional residual Wolframin in WFS1 iBeta controlled short-term ER stress, prolonged insults or inflammation highlighted ineffective UPR that make the cells unable to escape apoptosis. Interestingly, treatment with liraglutide restored the Ca2+ fluxes and secretory impairments, increasing glucose responsiveness and insulin release of WFS1 iBeta, while protecting these cells from cellular stress and inflammation-induced apoptosis. Conclusion/interpretationOur data highlighted alterations of key cellular pathways involved in WS1 {beta} cell maturation and GSIS and how the pharmacological targeting of the GLP-1/GLP-1R axis was able to restore the physiologic phenotype. This study points out the need to understand the patient-specific molecular determinants associated with WFS1 variants, to design effective therapies to treat the disease.

cell biology↗

A WFS1 variant disrupting acceptor splice site uncovers the impact of alternative splicing on ER-stress independent β cell apoptosis in a patient with Wolfram syndrome.

Aims/hypothesisWolfram Syndrome 1 (WS1) is an inherited condition mainly manifesting in childhood-onset diabetes mellitus and progressive optic nerve atrophy. The causative gene, WFS1, encodes for Wolframin, a master regulator of several cellular responses, whose mutations associate with clinical variability. Indeed, nonsense/frameshift variants correlate with more severe symptoms than missense/in-frame ones. As achieving a genotype-phenotype correlation is crucial to deal with disease outcome, works investigating the impact of transcriptional and translational landscapes stemming from such mutations are needed. Therefore, we sought to elucidate the molecular determinants behind the pathophysiological alterations in a WS1 patient carrying compound heterozygous mutations in WFS1 gene: c.316-1G>A, affecting the acceptor splice site (ASS) upstream exon 4, and c.757A>T, introducing a premature termination codon (PTC) in exon 7. MethodsBioinformatic analysis was carried out to infer the alternative splicing events occurring after disruption of ASS, followed by RNAseq and PCR to validate the transcriptional landscape. Patient-derived induced Pluripotent Stem Cells (iPSCs) were used as an in vitro model of WS1 and to investigate the WFS1 alternative splicing isoforms into pancreatic {beta} cells. CRISPR/Cas9 technology was employed to correct ASS mutation and generate a syngeneic control for the ER-stress induction and immunotoxicity assays. ResultsWe showed that patient-derived iPSCs retained the ability to differentiate into pancreatic {beta} cells. We demonstrated that the allele carrying the ASS mutation c.316-1G>A originates two PTC-containing alternative splicing transcripts (c.316del and c.316-460del), and two ORF-conserving mRNAs (c.271-513del and c.316-456del) leading to N-terminally truncated polypeptides. By retaining the C-terminal domain, these isoforms sustained the endoplasmic reticulum (ER)-stress response in {beta} cells. Otherwise, PTC-carrying transcripts were regulated by the nonsense mediated decay (NMD) in basal conditions. Exposure to cell stress inducers and pro-inflammatory cytokines affected the NMD-related gene SMG7 expression levels (>2 fold decrease; p<0.001) without eliciting a robust unfolded protein response in WFS1 {beta} cells, thus resulting in a dramatic accumulation of the PTC-containing isoforms c.316del (>100-fold increase over basal; p<0.001) and c.316-460del (>20-fold increase over basal; p<0.001) and predisposing affected {beta} cells to undergo apoptosis. Cas9-mediated recovery of ASS retrieved the canonical transcriptional landscape, rescuing the normal phenotype in patient-derived {beta} cells. Conclusions/interpretationThis study represents a new model to study Wolframin, highlighting how each single mutation of WFS1 gene can determine dramatically different functional outcomes. Our data point to increased vulnerability of WFS1 {beta} cells to stress and inflammation, and we postulate that this is triggered by escaping NMD and accumulation of mutated transcripts and truncated proteins. These findings pave the way for further studies on the molecular basis of genotype-phenotype relationship in WS1, to uncover the key determinants that might be targeted to ameliorate the clinical outcome of patients affected by this rare disease.

genetics↗