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Roda, M.

Publications and source records attributed to Roda, M..

2 recordsLinked to original sources

DDX5 and DDX17 RNA helicases regulate hepatitis B virus RNA splicing

Chronic HBV infection remains a major health burden worldwide and is the main driver of severe liver diseases. Liver pathogenesis is associated with the increased proportion of HBV spliced variants that encode viral proteins involved in liver disease progression. However, how HBV RNA splicing is regulated is poorly understood. Here, we focused on DDX5 and DDX17 RNA helicases, known to regulate HBV RNA metabolism and alternative splicing of host genes. By performing 5RACE-PCR combined with single molecule sequencing, we demonstrated that silencing both proteins increased the usage of a specific splicing donor site and the expression of the derived HBV spliced variants. Polysome fractionation highlighted the ability of these RNA species to encode new viral proteins potentially contributing to liver pathogenesis. Overall, our data established DDX5 and DDX17 helicases as master regulators of HBV RNA metabolism, by fine-tuning viral splicing, which is linked to HBV-induced liver pathogenesis and disease progression.

molecular biology↗

Helicases DDX5 and DDX17 promote Hepatitis B Virus transcription termination heterogeneity in infected human hepatocytes

Background & AimsTranscription termination fine tunes gene expression and contributes to specify the function of RNAs in eukaryotic cells. Transcription termination of hepatitis B virus (HBV) is subjected to the recognition of the canonical polyadenylation signal (cPAS) common to all viral transcripts. The regulation of the usage of this cPAS and its impact on viral gene expression and replication is currently unknown. Approach & ResultsTo unravel the regulation of HBV transcript termination, we implemented a 3 RACE-PCR assay coupled to single molecule sequencing both in in vitro infected hepatocytes and in chronically infected patients. The detection of a previously unidentified transcriptional readthrough indicated that the cPAS was not systematically recognized during HBV replication in vitro and in vivo. Gene expression downregulation experiments demonstrated a role for the RNA helicases DDX5 and DDX17 in promoting viral transcriptional readthrough, which was, in turn, associated to HBV RNA destabilization and decreased HBx protein expression. RNA and chromatin immunoprecipitation, together with mutation of cPAS sequence suggested a direct role of DDX5 and DDX17 in functionally linking cPAS recognition to transcriptional readthrough, HBV RNA stability and replication. ConclusionsOur findings identify DDX5 and DDX17 as crucial determinants for HBV transcriptional fidelity and as host restriction factors for HBV replication.

molecular biology↗