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Thompson, E. H.

Publications and source records attributed to Thompson, E. H..

2 recordsLinked to original sources

Deciphering the Role of Aggrecan in Parvalbumin Interneurons: Unexpected Outcomes from a Conditional ACAN Knockout That Eliminates WFA+ Perineuronal Nets

The transition from juvenile to adult is accompanied by the maturation of inhibitory parvalbumin-positive (PV+) neurons and reduced plasticity. This transition involves the formation of perineuronal nets (PNNs), a dense configuration of the extracellular matrix that predominantly envelops parvalbumin-positive (PV+) neurons. Aggrecan, a proteoglycan encoded by the ACAN gene, has been shown to have a key role in the PNNs as knock-out of ACAN in the adult brain reactivates juvenile plasticity, but the contribution of different cell populations is unknown Here, we establish and characterize a mouse model in which ACAN is selectively knocked out (KO) in PV+ neurons (ACANflx/PVcre). Moreover, we develop a viral tool to perform similar cell-type directed KO in adult mice. Both models are compared with the traditional method of PNN removal, namely enzymatic degradation of PNNs with Chondroitinase ABC (chABC). We show that PV+ neurons in adult ACANflx/PVcre mice do not produce PNNs that are labeled by Wisteria floribunda agglutinin (WFA), the most commonly used PNN marker. Surprisingly, electrophysiological properties of PV+ interneurons in the visual cortex (V1) and ocular dominance plasticity of adult ACANflx/PVcre mice were similar to controls. In contrast, AAV-mediated ACAN knockout in adult mice increased ocular dominance plasticity. Moreover, in vivo chABC treatment of KO mice resulted in reduced firing rate of PV+ cells and increased frequency of spontaneous excitatory postsynaptic currents (sEPSC), a phenotype associated with chABC treatment of WT animals. This suggests compensatory mechanisms in the germline KO. Indeed, qPCR of bulk tissue indicates that other PNN components are expressed at higher levels in the KO animals. Finally, we perform memory-and behavioral testing to see if the lack of ACAN from PV+ neurons throughout development affected stereotypic behaviors and memory processing. ACANflx/PVcre mice have learning and memory abilities similar to controls, but use bold search strategies during navigation in the Morris water maze. The low level of anxiety-related behavior is confirmed in an open field and zero maze, where they spent nearly twice the time in open areas.

neuroscience↗

Understanding off-target growth defects introduced to influenza A virus by synonymous recoding

CpG dinucleotides are under-represented in the genomes of most RNA viruses. Synonymously increasing CpG content of a range of RNA viruses reliably causes replication defects due to the recognition of CpG motifs in RNA by cellular Zinc-finger Antiviral Protein (ZAP). Prior to the discovery of ZAP as a CpG sensor, we described an engineered influenza A virus (IAV) enriched for CpGs in segment 5 that displays the expected replication defects. However, we report here that this CpG-high ( CpGH) mutant is not attenuated by ZAP. To understand this, we sought to uncover the alternative attenuation mechanism(s). IAV segment 5 encodes NP, a component of the viral RNA replication complex. Unexpectedly, while CpG enrichment resulted in depleted segment 5 transcript and NP protein abundance, this did not impair viral polymerase activity. A pair of nucleotide changes, introduced as compensatory changes to maintain base frequencies, were instead found to be responsible for the replication defect. These mutations resulted in the encoding of a stretch of eight consecutive adenosines (8A), a phenomenon not seen in natural IAV isolates. Sequencing experiments revealed evidence of viral polymerase slippage at this site, resulting in the production of aberrant peptides and type I interferon induction. When the nucleotides in either of these two positions were restored to wildtype sequence, no viral attenuation was seen, despite the 86 extra CpGs encoded by this virus. Conversely, when these two adenosines were introduced into wildtype virus (thereby introducing the 8A tract), viral attenuation, polymerase slippage, aberrant peptide production and type I interferon induction were apparent. That a single nucleotide change can offset the growth defects in a virus designed to have a formidable barrier to wild-type reversion highlights the importance of understanding the processes underlying viral attenuation. The lessons from this study will inform improved recoding designs in the future.

microbiology↗