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Biology subjects

Loliashvili, E.

Publications and source records attributed to Loliashvili, E..

3 recordsLinked to original sources

Extended poly(A) tails are a shared feature of herpesvirus mRNAs

Poly(A) tails are present on most cellular and viral mRNAs, providing a platform for poly(A)-binding proteins that stimulate translation and regulate the deadenylation and stability of transcripts in the cytoplasm. Here we leverage nanopore direct RNA sequencing to analyse the distribution of poly(A) tail lengths on cellular and viral mRNAs across Herpesviridae and other DNA and RNA virus infections. We find that herpesvirus mRNA poly(A) tails are consistently longer than those on cellular and other viral transcripts, presenting a previously unrecognized yet widespread mechanism to advantage herpesviral gene expression. This contrasts with the templated poly(A) tails on coronavirus RNAs and those on cytoplasmically transcribed poxviral mRNAs, which are more similar in length to those on host mRNAs. Herpesviral noncoding RNAs display differential poly(A) tailing patterns which do not correlate with nuclear localisation while individual herpesviral mRNAs also show variation in the extent to which their poly(A) tail lengths change during the virus lifecycle, suggestive of additional uncharacterised layers of poly(A) tail length regulation. Importantly, while we detect non-adenosine nucleotides within herpesviral poly(A) tails, which are known to oppose deadenylase activity, this "mixed tailing" is not at sufficient frequency to explain the widespread extended tails of herpesvirus mRNAs.

microbiology↗

Establishing benchmarks for quantitative mapping of m6A by Nanopore Direct RNA Sequencing

Nanopore direct RNA sequencing (DRS) coupled with Dorado modification-aware basecalling enables mapping of epitranscriptomic modifications including N6-methyladenosine (m6A) at the level of individual RNAs. However, the sensitivity, specificity, and reproducibility of this method remain unclear and have only recently begun to be addressed through systematic benchmarking studies. Here, we aimed to establish a best-practice workflow for DRS-based epitranscriptomic analyses. Specifically, we evaluated multiple Dorado versions and models using RNA isolated from primary cells and unmodified in vitro transcribed RNAs. We further utilized an m6A methyltransferase inhibitor as a specificity control. We established that stringent filtering is necessary to reduce false-positive calls and found that Dorado predictions captured an increasing proportion of GLORI sites detected at high m6A/A proportions. Further, by applying DRS to human primary fibroblasts and HD10.6 neurons, we detected cell type-specific differences in the predicted m6A/A proportions at conserved sites. Our study thus presents the first systematic comparison of Dorado and GLORI from the same input RNA and expands characterization of the m6A epitranscriptome to fibroblasts and neurons.

bioinformatics↗

Defining expansions and perturbations to the RNA polymerase III transcriptome and epitranscriptome by modified direct RNA nanopore sequencing

RNA polymerase III (Pol III) transcribes cytosolic transfer RNAs (tRNAs) and other non-coding RNAs (ncRNAs) essential to cellular function. However, many aspects of Pol III transcription and processing, including RNA modifications, remain poorly understood, mainly due to a lack of available sensitive and systematic methods for their analysis. Here, we present DRAP3R (Direct Read and Analysis of Polymerase III transcribed RNAs), a modified nanopore direct RNA sequencing approach and analysis framework that enables the specific and sensitive capture of nascent Pol III transcribed RNAs. Applying DRAP3R to distinct cell types, we identify previously unconfirmed tRNA genes and other novel Pol III transcribed RNAs, thus expanding the known Pol III transcriptome. Critically, DRAP3R also enables discrimination between co- and post-transcriptional RNA modifications such as pseudouridine ({Psi}) and N6-methyladenosine (m6A) at single-nucleotide resolution across all examined transcript types and reveals differential {Psi} installation patterns across tRNA isodecoders and other ncRNAs. Finally, applying DRAP3R to epithelial cells infected with Herpes Simplex Virus Type 1 reveals an extensive remodelling of both the Pol III transcriptome and epitranscriptome. Our findings thus establish DRAP3R as a powerful tool for systematically studying Pol III transcribed RNAs and their modifications in diverse cellular contexts.

systems biology↗