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Biology subjects

Naseri, M.

Publications and source records attributed to Naseri, M..

2 recordsLinked to original sources

Targeting CPSF73, the mRNA 3' End Processing Endonuclease, Moves Cancer Cells Away from the Mesenchymal State

BackgroundMetastasis significantly contributes to cancer-related mortality and therapeutic failure. Cancer cells acquire metastatic potential by losing epithelial characteristics and gaining mesenchymal properties through the epithelial-mesenchymal transition (EMT). Differential poly(A) site (PAS) usage, known as alternative polyadenylation (APA), generates mRNA isoforms differing in coding sequence, subcellular localization, stability, or translation efficiency. In cancer, 3'UTR shortening increases expression of proto-oncogenes by escaping miRNA-mediated repression. High expression of CPSF73, which cleaves mRNA precursors at PASs, is associated with unfavorable prognoses in cancer patients. However, the role of APA in regulating EMT remains poorly understood. MethodsIn this study, to investigate the role of APA in EMT, we employed JTE-607, a small-molecule inhibitor of CPSF73 activity, to examine the impact of catalytic inhibition of CPSF73 on proliferation and EMT in MDA-MB-231, MCF7, A549, and HepG2 cancer cells. To identify differential usage of PASs, global profiling of APA changes, and differential gene expression analysis were performed in MDA-MB-231 cells. Additionally, antisense oligonucleotides were used to block the use of a specific PAS whose APA change may be a driver of EMT reversal. ResultsOur findings showed that catalytic inhibition of CPSF73 not only attenuates cancer cell proliferation but also moves the cells away from the mesenchymal state across all four cell lines tested. Global profiling of APA changes following CPSF73 inhibition revealed widespread 3'UTR lengthening and suppression of intronic PASs in MDA-MB-231 cells. APA shifts were observed in key EMT-related genes, accompanied by decreased expression of corresponding proteins across all four cell lines. We used antisense morpholino oligonucleotides to block the proximal PAS of AKT2, shifting the balance of AKT2 mRNA isoforms toward the long isoform. This shift caused EMT reversal, marked by reduced AKT2 protein expression, changes in EMT-related markers, and impaired invasion by MDA-MB-231 cells. ConclusionTogether, these findings identify APA-mediated 3UTR lengthening, with functional consequences in EMT-related genes, as a coordinated mechanism leading to an attenuated EMT phenotype, highlighting a significant connection between APA and the EMT process. Interfering with these APA changes may offer a promising therapeutic strategy to suppress metastasis, with potential efficacy across multiple pathways. Statement of SignificanceOur findings highlight APA-mediated 3 UTR lengthening as a coordinated mechanism that promotes EMT reversal and support CPSF73 inhibition or APA-targeting strategies as potential therapeutic approaches to suppress metastasis across multiple pathways.

cancer biology↗

CFIm25-Dependent Alternative Polyadenylation in AKT2 mRNA Programs Macrophage Polarization

Macrophage polarization is essential for immune responses, tissue homeostasis, and progression of many diseases. It is a tightly regulated process involving an intricate network of signaling pathways and control mechanisms at the level of transcription, alternative mRNA splicing, translation and mRNA stability. However, regulation through alternative mRNA polyadenylation (APA), remains poorly understood. This study explores the function of CFIm25, a key APA regulator, in macrophage polarization. Our findings show that CFIm25 overexpression drives M1 polarization, as evident from increased nitric oxide synthase activity, CD80 expression, and pro-inflammatory cytokine secretion, but dampens the M2 phenotype. Conversely, CFIm25 knockdown suppresses M1 traits and promotes M2 characteristics. Functionally, CFIm25 enhances phagocytosis, migration, and cancer cell inhibition. Mechanistically, CFIm25 favors proximal polyadenylation site usage of AKT2 mRNA, increasing Akt2 protein levels to support M1 polarization. Blocking this site with an antisense oligonucleotide reduces Akt2 expression and M1 traits. These findings establish CFIm25 as a crucial regulator of macrophage identity, offering insights into RNA-based immune regulation and potential therapeutic targets. In briefCFIm25 drives macrophage polarization toward the M1 phenotype through specific regulatory pathways. The presence of CFIm25 profoundly shifts surface marker expression, enhancing M1 markers while suppressing M2 signatures. This extends to biochemical properties, where CFIm25 boosts nitric oxide and pro-inflammatory cytokine production while reducing anti-inflammatory mediators. Functionally, CFIm25 enhances phagocytosis, inflammatory migration, and cancer cell killing. Mechanistically, this orchestration of the M1 polarization program involves CFIm25s regulation of AKT2 mRNA alternative polyadenylation which increases Akt2 protein expression and amplifies NF-{kappa}B pathway activation, a central driver of M1 polarization. HighlightsO_LICFIm25 overexpression enhances M1 surface markers and biochemical properties including nitric oxide production and pro-inflammatory cytokine secretion. C_LIO_LICFIm25 promotes M1 functional activities including phagocytosis, migration, and cancer-cytotoxic effects. C_LIO_LIBlocking the AKT2 proximal polyadenylation site usage causes a decrease in Akt2 protein, suppressing M1 polarization phenotypes including NOS activity and cytokine profiles. C_LIO_LIThe CFIm25-Akt2-NF-{kappa}B axis represents a novel target for macrophage polarization reprogramming. C_LI O_FIG O_LINKSMALLFIG WIDTH=196 HEIGHT=200 SRC="FIGDIR/small/660629v1_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@15e28f6org.highwire.dtl.DTLVardef@d35314org.highwire.dtl.DTLVardef@1f382feorg.highwire.dtl.DTLVardef@1d083d_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗