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Sztainberg, Y.

Publications and source records attributed to Sztainberg, Y..

2 recordsLinked to original sources

The prevalent NR2E3 c.932G>A mutation induces aberrant splicing that can be rescued using splice-shifting antisense oligonucleotides

Mutations in NR2E3 have been implicated in several progressive retinal disease phenotypes such as enhanced S-cone syndrome, Goldmann-Favre syndrome and retinitis pigmentosa. One of the most frequent mutations in NR2E3 is c.932G>A (p.R311Q), where pathogenicity is thought to stem from the resulting amino acid substitution. However, multiple studies that evaluated the effect of this substitution on the protein, did not elucidate the molecular basis underlying the pathogenicity. Primed by bioinformatic analyses, we hypothesized and experimentally validated that the NR2E3 c.932G>A mutation leads to aberrant splicing which results in a short, non-functional protein isoform. Using cell models expressing WT and mutant constructs of the full NR2E3 sequence (including exonic and intronic regions), we observed that the mutated transcript exhibits a high level (75%) of aberrant splicing through gain of a novel splice acceptor site within exon 6. This mis-splicing results in the in-frame loss of 186 base pairs that code for a portion of the protein ligand binding domain. We further designed and evaluated splice-shifting antisense oligonucleotides (ASOs), that circumvented the aberrant splicing. The best performing ASO successfully restored 70% of the total NR2E3 full-length isoform levels and demonstrated rescue of nuclear localization and rhodopsin transcriptional activation. This study demonstrates the importance of understanding splicing consequences of pathogenic mutations, allowing the design and development of ASO-based therapies. Our findings set the stage for the potential treatment of NR2E3-related retinal degeneration caused by the c.932G>A mutation using splice-shifting ASOs.

genomics↗

Group social dynamics in a semi-natural setup reveal an adaptive value for aggression in male mice

BackgroundMaladaptive aggression in humans is associated with several psychiatric conditions and lacks effective treatment. Nevertheless, aggression constitutes an essential behavior throughout the animal kingdom as long as it is tightly regulated. Studying how social dominance hierarchies (SDH) regulate aggression and access to resources in an enriched environment (EE) can narrow the translational gap between aggression in animal models and humans normal and pathological behavior. MethodsThe social box (SB) is a semi-natural setup for automatic and prolonged monitoring of mouse group dynamics. We utilized the SB to decipher complex tradeoffs between aggression, social avoidance, resource allocation, and dominance in two mouse models of increased aggression: (i) a model of early exposure to EE and (ii) a model of oxytocin receptor deficiency (OxtR-/-). While EE increases aggression as an adaptive response to external stimuli, hyper-aggression in OxtR-/- mice is accompanied by marked abnormalities in social behavior. ResultsEE groups exhibited significant social avoidance, and an increased proportion of their encounters developed into aggressive interactions, resulting in lower levels of exploratory activity and overall aggression. The hierarchy in EE was more stable than in control groups, and dominance was correlated with access to resources. In OxtR-/- groups, mice engaged in excessive social encounters and aggressive chasing, accompanied by increased overall activity. In OxtR-/- groups, dominance hierarchies existed but were not correlated with access to resources. ConclusionMeasuring aggression and social dominance hierarchies in a semi-natural setup reveals the adaptive value of aggression in EE and OxtR-/- mice, respectively. This approach can enhance translational research of pathological aggression.

neuroscience↗