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Jonsson, J.

Publications and source records attributed to Jonsson, J..

3 recordsLinked to original sources

An epitranscriptomic map of RNA modifications on integrated HPV18 expressed from HeLa cells

Human papillomavirus (HPV)-driven cancers remain a major global health burden, and understanding how post-transcriptional regulation shapes viral gene expression may inform new therapeutic strategies. Here, we reanalysed independently generated public HeLa datasets to identify candidate RNA modification sites on integrated HPV18 transcripts expressed from the HeLa genome. Using Oxford Nanopore direct RNA sequencing of native RNAs and in vitro transcribed controls, together with GLORI, eTAM-seq and staged 4sU-GLORI datasets, we identified a set of candidate m6A sites on HPV18 early transcripts. m6A levels at a subset of these sites were reduced following perturbation of the m6A pathway, most clearly after METTL3 inhibition, WTAP knockdown or FTO overexpression. We further show that the E6*I-proximal m6A site at position 224 is enriched on unspliced transcripts in direct RNA sequencing, eTAM-seq and staged 4sU-GLORI data. In contrast, we find no convincing evidence for m5C or pseudouridine within the HPV18 regions covered by these datasets. Together, our analyses provide a candidate map of RNA modifications on HeLa-expressed HPV18 early transcripts.

genomics↗

Characterization and description of Clostridium filamentum ETTB, a novel gut bacterium with TLR5 modulating properties

The Clostridium genus is highly heterogeneous, encompassing numerous species and strains, many of which remain to be isolated and characterized to better understand their relationship to host physiology. This study aimed to isolate and characterize novel bacterial species within the Clostridium genus and explore their potential links to host health. Under microaerophilic conditions, we isolated and characterized three bacterial isolates belonging to a new anaerobic Clostridium species, designating Clostridium sp. DSM 115107 (Clostridium filamentum ETTB3) as the type strain. C. filamentum ETTB isolates are rod- to filament-shaped, Gram-positive bacteria and exhibit poor growth when cultured on rich media such as LYBHI. Genome sequencing and phylogenetic analysis revealed that C. filamentum ETTB belongs to the Clostridium genus and clusters closely with Clostridium saudiense JCC. Interestingly, C. filamentum ETTB has a significantly smaller genome compared to C. saudiense JCC containing a reduced repertoire of genes involved in carbohydrate degradation and amino acid synthesis and a larger number of genes related to cell motility, including an additional copy of the fliC gene. Unlike C. saudiense, C. filamentum ETTB adopted a filamentous morphology when in contact with Caco-2 cells and stimulate the TLR5 pathway in Caco-2 cells. Metagenomics analysis revealed that C. filamentum ETTB is present in both industrialized and non-industrialized populations, although the relative abundance varying considerably between and within individuals. Our study identifies a novel bacterial strain adapted for the human gut that has the potential to influence host immune response by activating TLR5 pathway.

microbiology↗

Efficient image analysis for large-scale next generation histopathology using pAPRica

The large size of imaging datasets generated by next-generation histology methods limits the adoption of those approaches in research and the clinic. We propose pAPRica (pipelines for Adaptive Particle Representation image compositing and analysis), a framework based on the Adaptive Particle Representation (APR) to enable efficient analysis of large microscopy datasets, scalable up to petascale on a regular workstation. pAPRica includes stitching, merging, segmentation, registration, and mapping to an atlas as well as visualization of the large 3D image data, achieving 100+ fold speedup in computation and commensurate data-size reduction.

bioinformatics↗