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Lecante, A.

Publications and source records attributed to Lecante, A..

2 recordsLinked to original sources

Antagonistic regulation of HBZ splicing by hnRNPA1 and hnRNPH1 drives HTLV-1 leukemogenesis.

Adult T-cell leukemia/lymphoma (ATL) is a highly aggressive leukemia driven by Human T-cell Leukemia Virus type 1 (HTLV-1) and remains largely refractory to current therapies. Although hbz is the only viral transcript consistently expressed in acute ATL, the extent to which its alternative splicing shapes disease biology remains unknown. Here, we demonstrate that the splicing of hbz plays a key role in driving cancer development in ATL. Quantitative analyses in HTLV-1-infected cell lines and primary samples revealed a striking enrichment of the spliced isoform HBZ_SP1 (over 200-fold) in CD4 T cells from ATL patients, whereas the unspliced transcript (usHBZ) predominates in CD8 T cells. Despite robust transcription, the usHBZ protein was undetectable, whereas HBZ_SP1 accumulated rapidly, identifying it as the main isoform in CD4 T cells from ATL patients. Furthermore, only HBZ_SP1 drove cellular transformation and conferred marked resistance to chemotherapeutic stress. Mechanistically, we identify a splicing regulatory axis centered on hnRNPA1 and hnRNPH1. Both proteins bind hbz pre-mRNA, but exert opposing effects: hnRNPA1 represses splicing, whereas hnRNPH1 promotes production of the oncogenic HBZ_SP1 isoform. Perturbation of this balance reprograms HBZ isoform expression and alters leukemic cell fitness. Collectively, our findings establish that HBZ inhibits hnRNPA1 transcription, therefore allowing HTLV-1 to hijack host RNA splicing and to generate an oncogenic isoform that drives transformation and chemoresistance. These results uncover a previously unrecognized post-transcriptional mechanism of viral leukemogenesis and position HBZ splicing and its regulators as therapeutic targets in ATL. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=113 SRC="FIGDIR/small/739521v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1298adorg.highwire.dtl.DTLVardef@e5a7beorg.highwire.dtl.DTLVardef@167d576org.highwire.dtl.DTLVardef@1ef68f6_HPS_FORMAT_FIGEXP M_FIG C_FIG Mechanistic model of HBZ splicing regulation. This simplified graphical abstract summarizes the highlights of our study. Here, we hypothesize that in CD4+ T cells infected by HTLV-1, transcription and splicing reprogramming lead to a preferential expression of the HBZ_SP1 oncogenic isoform, specifically due to an overexpression of the splicing activator hnRNP H1and repression of hnRNP A1 by HBZ itself via C/EBP. HBZ_SP1 is consistently expressed and then drives cell transformation and chemoresistance. In contrast, in CD8+ T cells infected with HTLV-1, the HBZ-mediated downregulation of hnRNP A1 is overcome, leading to inhibition of HBZ splicing and increased expression of the less oncogenic isoform usHBZ.

molecular biology↗

Human plasma metabolic environment favours HIV replication in primary CD4 T lymphocytes

Cellular metabolism supports all viral replication steps and the metabolic state of infected cells is therefore a key factor influencing viral infections. Human Immunodeficiency virus (HIV) remains latent in resting CD4 T lymphocytes but actively replicates in activated CD4 T cells due to enhanced energy metabolism. Here, using the recently developed Human Plasma-Like Medium (HPLM) that mimics physiological plasma concentration of metabolites, we investigated how this near-physiologic environment modulates HIV-1 infection in primary CD4 T cells. Compared to the conventional culture medium (RPMI), HPLM enhanced HIV-1 infection in CD4 T cells despite similar levels of cell activation, proliferation and expression of viral receptor. In contrast with previous studies in RPMI, HPLM increased infection while decreasing energy metabolism and affecting other non-energetic metabolic pathways. Adjusting levels of several metabolites in RPMI and HPLM, we uncovered that the amino acids balance rather than the energy metabolism favoured HIV-1 replication in this system. Overall, our study used near-physiological conditions to better define metabolic dependencies of viral infections and highlights previously overlooked non-energetic metabolism pathways important for HIV-1 infection.

microbiology↗