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Strong, M. J.

Publications and source records attributed to Strong, M. J..

4 recordsLinked to original sources

3' UTR variants of ALS-linked RNAs modify subcellular and cellular phenotypes

While most human genes express mRNA 3untranslated region (3UTR) variants of different lengths, their impact on cell physiology and disease remains largely unknown. Here, we studied 3UTR length heterogeneity in amyotrophic lateral sclerosis (ALS) and determined that three ALS-linked transcripts exhibit lengthening of their 3UTRs in patient samples. We investigated phenotypical effects in a neuronal cell line expressing these 3UTRs and observed that expression of these unique 3UTRs induces morphological changes at different levels. Among the most expressed 3UTRs variants in ALS, NEFH 3UTR-Long induces the formation of nuclear RNA clusters and SOD1 3UTR-Long diminishes filopodia in the plasma membrane. SQSTM1 3UTR-Long did not show major changes in nuclear RNA clusters or filopodia. This is the first report that suggests that 3UTRs may function independent of the coding region and modify the phenotype of a cell, further expanding the impact of alterations in mRNA biogenesis in ALS.

molecular biology↗

Neuroligin 3 highlights sexually dimorphic circuitry in Drosophila social spacing

In Drosophila melanogaster, the autism-related Neuroligin 3 (Nlg3) protein is a postsynaptic membrane protein important for synapse development and regulation, which plays a role in social spacing behaviour. Here, we report the localization of Nlg3 to the calyx of the mushroom bodies (MB), optic lobes (OL), and protocerebral bridge (PB). Using RNA interference, nlg3 knockdown in each of these structures recapitulated the effect of knocking down it in all nlg-3 neurons. Hyperactivation and silencing of these neurons in the MB, but not the PB, controls social space in males and females, while hyperactivating and silencing of all nlg3-expressing neurons, including within the MB, PB, and OL, regulates male and female social space. Knocking down neurotransmitter biosynthesis enzymes, which decreases the amount of neurotransmitter release, showed that reducing acetylcholine release from the MB decreased female social space, whereas knocking down any dopamine receptor in the MB increased male social space. Lastly, to investigate the sexually dimorphic effects on social spacing previously seen in nlg3 mutants, we examined a subset of sexually dimorphic fruitless-expressing (fru)P1 neurons known to regulate sexually dimorphic behaviours. Hyperactivation of those fruP1 neurons decreased social space in both sexes, while silencing those fruP1 neurons specifically increased male social space without affecting females. Our findings highlight a sex-specific social space neural circuitry that includes the OL, MB, and fruP1 neurons, while uncovering the underlying basis of some of the sex differences in this behaviour. Article SummaryIn vinegar flies (Drosophila melanogaster), the autism-related Neuroligin 3 protein (Nlg3) controls neuronal development and regulation but also affects fly social behaviour. Nlg3 is localized to the mushroom bodies (MB), protocerebral bridge, and the optic lobes. We show that those structures are important in determining social space in a sex dependant manner. In addition, reducing acetylcholine release from the MB affects female social space, while reducing dopamine receptors of the MB only affect male behaviour. Finally, the fruitless sexually dimorphic neurons control social behavior differently in males and females.

animal behavior and cognition↗

Axon guidance genes are regulated by TDP-43 and RGNEF through the rate of long-intron processing.

Rho guanine nucleotide exchange factor (RGNEF) is a guanine nucleotide exchange factor (GEF) mainly involved in regulating the activity of Rho-family GTPases. Previous work has shown that RGNEF inclusions in the spinal motor neurons of ALS patients co-localise with TDP-43, the major RNA binding protein aggregating in the brain and spinal cord of ALS patients. To further characterise their relationship, we have compared the transcriptomic profiles of neuronal-like cells depleted of TDP-43 and RGNEF and show that these two factors predominantly act in an antagonistic manner when regulating the expression of axon guidance genes. From a mechanistic point of view, our experiments show that the effect of these factors on the processivity of long introns can explain their mode of action. Our findings highlight that neurodegenerative processes at the RNA level can often represent the result of combinatorial interactions between different RNA binding factors, leading to a better understanding of pathogenic mechanisms occurring in patients where more than one specific protein may be aggregating in their neurons.

neuroscience↗

Mitigation of TDP-43-induced toxic phenotype by expression of RGNEF N-terminal fragment in ALS models

Aggregation of the RNA-binding protein (RBP) TDP-43 is a hallmark of TDP-proteinopathies including amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Since TDP-43 aggregation and dysregulation are causative of neuronal death, there is a special interest in targeting this protein as a therapeutic approach. Previously, we found that TDP-43 extensively co-aggregated with the dual function protein (GEF (guanine exchange factor) and RBP) rho guanine nucleotide exchange factor (RGNEF) in ALS patients. Here, we show that a N-terminal fragment of RGNEF (NF242) interacts directly with the RNA recognition motifs (RRM) of TDP-43 competing with RNA, and that the IPT/TIG domain of NF242 is essential for this interaction. Genetical expression of NF242 in a fruit fly ALS model overexpressing TDP-43 suppressed the neuropathological phenotype increasing lifespan, abolishing motor defects, and preventing neurodegeneration. Intracerebroventricular injections of AAV9/NF242 in a severe TDP-43 murine model (rNLS8) improved lifespan and motor phenotype, and decreased neuroinflammation markers. Our results demonstrate an innovative way to target TDP-43 proteinopathies using a protein fragment with affinity for TDP-43, suggesting a promising therapeutic strategy for TDP-43 proteinopathies such as ALS and FTD.

neuroscience↗