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Arcalis, E.

Publications and source records attributed to Arcalis, E..

3 recordsLinked to original sources

Native extracellular vesicles display surface bound RNAs that are co-delivered to cells

Extracellular vesicles (EVs) can transport functional RNA between cells and therefore hold great potential for diagnostics and RNA-based therapeutics. Classically, RNA is believed to be encapsulated in the EV lumen. However, it has recently been demonstrated that cells present RNA on their surface. This RNA was found to be glycosylated, and although glycosylated tRNA was also found in EVs, its exact location remained elusive. Here, we demonstrate the presence of RNA on the surface of mesenchymal stem cell (MSC) derived EVs. By combining single-vesicle measurements with direct and selective visualization of RNA, we introduce surface RNA (surfRNA) as a new inherent component of EVs. RNA sequencing supports the surface localization of this RNA and further identifies tRNA fragments as primary constituent of surfRNA. Importantly, surfRNA is co-delivered to target cells together with EVs, suggesting a yet unrecognized uptake route of extracellular RNA. A deeper understanding of the surface-associated RNA may have significant implications for EV biogenesis, targeting, and downstream functional effects. We further envision that these findings are transferable to other nanoparticles and will thereby advance the field of therapeutic RNA delivery.

molecular biology↗

Immortalization of mesenchymal stromal cells by hTERT does not affect the functional properties of secreted extracellular vesicles

Mesenchymal stromal cell-derived extracellular vesicles (MSC-EVs) have emerged as promising and safe therapeutic agents, however, donor heterogeneities, limited replicative life span and changes in the cellular phenotype throughout in vitro cultivation remain major hurdles for scalable EV production. For these reasons, this study aims to investigate the use of hTERT immortalized ( telomerized) MSCs as a potential source for efficient, standardized, reliable MSC-EVs production by comparing parental primary to their telomerized MSC counterparts. We observed that hTERT expression does not affect cell morphology or cellular doubling time, while ensuring unlimited, stable in vitro propagation. In addition, telomerized WJ-MSCs maintained the canonical expression profile of surface markers and the tri-lineage differentiation potential of their primary counterparts. In terms of EV characteristics, the immortalization by hTERT expression did not affect size, number, cargo composition or biological activity regarding anti-inflammatory, anti-fibrotic and wound healing properties in vitro. In summary, the use of hTERT to immortalize MSCs leads to the creation of cell lines that continuously produce MSC-EVs without altering any key functionalities of the cells or resulting EVs. This suggests that telomerization of human cells from single donors is a promising strategy for generating cell factories that can produce EVs in standardized conditions and at scale and with standardization.

cell biology↗

Core Tri-fucosylation of Nematode N-glycans Requires Golgi α-mannosidase III Activity that Impacts Animal Growth and Behaviours

Many nematodes possess N-glycans with complex core chitobiose modifications, which is a feature observed in various free-living and parasitic nematodes but is absent in mammals. Using Caenorhabditis elegans as a model to study N-glycan biosynthesis, we demonstrated that the core N-acetylglucosamine (GlcNAc) residues can be modified by three fucosyltransferases in the Golgi, namely FUT-1, FUT-6 and FUT-8. While the asparagine-linked GlcNAc is modified with a 1,3- and 1,6-linked fucose by FUT-1 and FUT-8 respectively, the distal GlcNAc residue is 1,3-fucosylated solely by FUT-6. Interestingly, FUT-6 can only fucosylate N-glycan structures lacking the 1,6-mannose upper arm, indicating that a specific -mannosidase is required to generate substrates for subsequent FUT-6 activity. By analysing the N-glycomes of aman-3 mutants (tm5400 and a CRISPR/Cas9 knockout, hex-2;hex-3;aman-3) using offline HPLC-MALDI-TOF MS/MS, we observed that the absence of the aman-3 gene abolishes 1,3-fucosylation of the distal GlcNAc of N-glycans, which suggests that AMAN-3 is the relevant mannosidase on whose action FUT-6 depends. To further investigate it, we recombinantly expressed AMAN-3 in insect cells and characterised its enzymatic activity in vitro. In contrast to the classical Golgi -mannosidase II (AMAN-2), AMAN-3 displayed a cobalt-dependent 1,6-mannosidase activity towards N-glycans. Using AMAN-3 and other recombinant C. elegans glycoenzymes, we remodelled a fluorescein conjugated-Man5GlcNAc2 structure; we were able to mimic N-glycan biosynthesis in the Golgi and generate a tri-fucosylated glycan in vitro. We performed confocal microscopy studies using a knock-in strain (aman-3::eGFP) and could show the Golgi localisation of AMAN-3. In addition, using a high-content computer-assisted C. elegans analysis platform, we observed that AMAN-3 deficient worms display significant developmental delays, morphological and behavioural alterations in comparison to the wild type. Therefore, our data suggested that AMAN-3 participates in nematode N-glycan biosynthesis in the Golgi and generates substrates for FUT-6; thereby, this enzyme is essential for the formation of the unusual tri-fucosylated chitobiose cores of nematode N-glycans, which may play important roles in nematode development and behaviour. BackgroundTri-fucosylation of N-glycan core is a conserved feature seen in the N-glycomes of several nematode species. However, beyond the three core fucosyltransferases, we know very little about the biosynthesis and biological function of these core modifications. ResultsComparative glycomics data revealed that aman-3 mutants possess underfucosylated N-glycomes. Biochemical characterisation of AMAN-3 clarified its optimal reaction conditions and substrate specificity and, we demonstrated a Golgi localisation. Thereafter in vitro reconstruction of biosynthesis of a core tri-fucosylated N-glycan was achieved using 8 recombinant C. elegans glycoenzymes. Notably, aman-3 deficient worms exhibited significant developmental and behavioural changes. ConclusionAMAN-3 is a Golgi -mannosidase required for core fucosylation of the distal N-acetylglucosamine of N-glycoproteins. SignificanceThis study elucidates the key role of a novel Golgi -mannosidase in the biosynthesis of the unusual N-glycans of C. elegans and related nematodes, thereby setting the stage for new approaches to study the roles of glycan in the biology and immunology of nematode glycoproteins.

biochemistry↗