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EYMIN, B.

Publications and source records attributed to EYMIN, B..

2 recordsLinked to original sources

The SF3B1 inhibitor pladienolide B massively inhibits DNA damage signaling and repair and counteracts resistance to platinum salts in Non-Small Cell Lung Cancer

BackgroundLung cancer, including Non-Small Cell Lung Carcinoma (NSCLC), is the leading cause of cancer mortality worldwide. Platinum salts are the gold standard chemotherapy for NSCLC but many patients develop resistance leading to disease progression. Identifying new therapeutic strategies to counteract resistance is crucial. Pharmacological compounds targeting core components of the spliceosome machinery have emerged as promising anti-cancer agents. However, their mechanisms of action remain to be elucidated in NSCLC. MethodsVarious NSCLC cell lines were used in 2D and 3D cultures or clonogenic assays. NSCLC Patient-Derived Xenografts were also used. SF3B1 was silenced by siRNA. Flow cytometry was performed to analyze cell cycle distribution and apoptosis. Western-blot, immunofluorescence, SIRF analysis and DNA repair assays were done to assess globally the DNA damage response. RNA-Seq, RT-qPCR and RT-PCR studies were performed to identify gene and splicing events impacted by SF3B1 inhibition. Publicly available transcriptomic and proteomic data were analyzed. ResultsSF3B1 is a core component of the spliceosome machinery. We show that NSCLC cells with acquired resistance to platinum salts are vulnerable to pladienolide B, a SF3B1 inhibitor, or SF3B1 knock-down. Importantly, pladienolide B also slows down tumor growth of NSCLC Patient-Derived Xenografts (PDXs) poorly responsive to platinum salts. Mechanistically, we show that pladienolide B leads to genomic instability and apoptosis, that correlate with early transcription-dependent replication stress and DNA-PKcs activation, followed by the shutdown of ATR/DNA-PKcs-dependent signaling. In addition, pladienolide B profoundly regulates the expression and/or splicing, particularly exon skipping, of numerous genes involved in DNA repair, leading to decreased repair capacities of DNA double strand breaks. Although exon skipping events are mostly transient, skipping of exon 8 of MLH3, a gene involved in mismatch DNA repair, persisted along time. Finally, we show that pladienolide B counteracts resistance to platinum salts in NSCLC cells as well as PDXs, which correlates with enhanced MLH3 exon 8 skipping and decrease of ATR, DNA-PKCs and MLH3 protein levels. ConclusionsAs a whole, our data highlight the targeting of SF3B1 as a potential therapeutic strategy, alone or in combination, in NSCLC patients who escape platinum salts-based chemotherapy.

cancer biology↗

Intronic polyadenylation isoforms in the 5' part of genes constitute a source of microproteins and are involved in cell response to cisplatin

Transcript isoforms generated by intronic polyadenylation (IPA) are widely regulated in various biological processes and often encode protein isoforms. Microproteins are small proteins translated from small open reading frames (sORFs) in noncoding RNAs and mRNAs, but their production by IPA isoforms is unknown. Using 3-seq and long-read RNA-seq analyses in lung cancer cells, we show that cisplatin, a DNA-crosslinking anticancer agent, upregulates IPA isoforms relative to full-length mRNAs in long genes. A subset of cisplatin-regulated IPA isoforms are poorly associated with heavy polysomes and terminate upstream of the annotated translation initiation codon of genes. Such IPA isoforms in the PHF20 and PRKAR1B genes are associated with light polysomes, contain Ribo-Seq-supported sORFs in an alternative last exon within the annotated 5UTR part of genes, and are translated into microproteins. For PRKAR1B, the microprotein was detected by Western blot and immunofluorescence after transfection of a tagged isoform; and siRNA depletion of the endogenous IPA isoform, CRISPR deletion of the IPA site, or CRISPR mutation of the sORF initiation codon led to increased cell survival to cisplatin. Based on Ribo-Seq and mass-spectrometry data sets, we identified 156 genes producing both a canonical protein-coding mRNA and a microprotein-coding 5UTR-located IPA isoform (coined miP-5UTR-IPA isoform) regulated by cisplatin. Finally, the regulation of (miP-5UTR-)IPA versus full-length isoforms by cisplatin involved an inhibition of transcription processivity in a FANCD2 and senataxin-dependent manner. Altogether, these findings reveal the novel paradigm of miP-5UTR-IPA genes and their role in cancer cell response to a genotoxic agent. HIGHLIGHTS- Cisplatin increases intronic-polyadenylation versus full-length transcript isoforms in long genes through a FANCD2 and senataxin-dependent decrease of transcription processivity - A subset of cisplatin-regulated intronic-polyadenylation isoforms terminate in the annotated 5UTR part of genes and encode microproteins, thus we coined them miP-5UTR-IPA isoforms - The miP-5UTR-IPA isoform of PRKAR1B impacts cisplatin sensitivity and its effect is mediated by its small ORF - We identify 156 genes producing both a canonical protein-coding mRNA and a microprotein-coding miP-5UTR-IPA transcript

molecular biology↗