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Danielsen, M. B.

Publications and source records attributed to Danielsen, M. B..

2 recordsLinked to original sources

Structure-guided antisense-oligonucleotides selectively modulate frameshifting of a human gene

Programmed -1 ribosomal frameshifting (-1 PRF) is a conserved translational recoding mechanism that expands proteomic diversity and regulates gene expression through RNA structural elements, most notably stimulatory pseudoknots. This mechanism is common in viruses, where it is used to control stoichiometry of viral protein products generated by the host cell to direct viral replication. Despite its biological importance, strategies to selectively modulate frameshifting remain limited. The mammalian retrotransposon-derived gene PEG10 also relies on -1 PRF to produce a fusion protein, gag-pol, which is necessary for reproduction but has also been implicated in neurological diseases. Here, we establish an antisense oligonucleotide (ASO) targeting an RNA structural element as an effective approach to tune PEG10 frameshifting. Using structure prediction, systematic antisense tiling across the PEG10 pseudoknot, and multiple model systems, we identify a discrete functional hotspot within the lower RNA stem that governs frameshift efficiency. ASOs targeting this region selectively suppress gag-pol production with minimal impact on gag, thereby shifting the ratio of protein products in a dose-dependent manner. Mechanistic dissection using RNase H-active and -inactive ASO designs, pre-annealed duplexes, and fluorescence-based subcellular localization supports a predominantly nuclear mode of action in which ASOs engage nascent PEG10 transcripts and bias pseudoknot folding away from the frameshift-competent conformation. Functional effects are conserved between human cell lines and murine models, including neurons, highlighting the generality of this strategy. Together, our results define RNA structural dynamics as a druggable layer of translational regulation and establish antisense modulation of pseudoknot folding as a way to control endogenous frameshifting. This work provides a conceptual and practical framework for targeting recoding-dependent gene products such as PEG10 in disease and suggests broader applicability of structure-directed ASOs to viral and cellular frameshifting elements.

biochemistry↗

Naked antisense oligonucleotides remain endolysosomally sequestered despite induced membrane damage

Antisense oligonucleotides (ASOs) enter cells efficiently, but the compartment from which productive escape occurs remains uncertain. We used live-cell microscopy, ratiometric pH measurements and 3D focused ion beam scanning electron microscopy (FIB-SEM) in U2OS cells to track a Malat1-targeting ASO from uptake to delivery. The ASO entered by endocytosis and accumulated in late endosomes, endolysosomes and lysosomes, where it induced luminal neutralization without galectin-3 recruitment or limiting-membrane rupture. Under conditions that reduced Malat1-RNA by >90%, quantitative imaging showed that less than 4% of internalized ASOs reached the nucleus. L-leucyl-L-leucine methyl ester (LLOMe)-induced membrane damage released co-internalized dextran but not ASOs, showing that ASOs remain sequestered even in damaged late endocytic compartments. In apilimod-expanded organelles, ASOs concentrated at limiting membranes and intraluminal foci with constrained motion, consistent with association with membrane and luminal structures. Although G3BP1/2 has been proposed to plug damaged endocytic membranes, we detected no recruitment of G3BP1 to endosomes or lysosomes; loss of G3BP1 and G3BP2 increased functional delivery modestly. We therefore propose that productive escape occurs earlier in endocytosis, most likely in early or recycling endosomes, where ASOs would still be unbound within the lumen and where membrane fusion and fission could generate perforations permitting release.

cell biology↗