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Bradford, A.

Publications and source records attributed to Bradford, A..

2 recordsLinked to original sources

Cacna1b alternative splicing is linked to associative learning

Voltage-gated CaV2.2 channels are essential for neurotransmitter release throughout the nervous system including areas related to learning and memory like the hippocampus. Previous results have shown that CaV2.2 channels are involved in cognitive processes. However, a link between alternative splicing of the Cacna1b (gene that encodes for CaV2.2) pre-mRNA and cognitive processes has not been described. The Cacna1b pre-mRNA undergoes extensive cell-specific alternative splicing. In this body of work, we focus on the cassette exon 18a. Alternative splicing of exon 18a generates two splice variants, +18a-Cacna1b and {Delta}18a-Cacna1b. Exon 18a encodes a 21-amino acid sequence within the SYNaptic PRotein INTeraction (synprint) site. Splice variants containing exon 18a (+18a-CaV2.2) show reduced cumulative inactivation and increased Ca{superscript 2} current density compared to splice variants lacking exon 18a ({Delta}18a-CaV2.2), suggesting functional specialization. We previously showed that +18a-Cacna1b splice variants are enriched in cholecystokinin-expressing interneurons (CCK+INs). This neuronal type is strongly implicated in associative learning. Therefore, we tested whether alternative splicing of exon 18a contributes to associative learning. To test this hypothesis, we used genetically engineered mice that constitutively express either +18a-Cacna1b (+18a) or {Delta}18a-Cacna1b ({Delta}18a). We first validated that restricted splicing of exon 18a did not alter downstream alternative or constitutive spliced exons in the Cacna1b pre-mRNA, nor total CaV2.2 protein levels. We then performed a comprehensive behavioral analysis that included assessment of associate learning. We found that in the trace fear conditioning task, +18a mice exhibited less freezing during the trace interval in both the acquisition and memory phases compared to WT mice. Whereas {Delta}18a mice showed enhanced freezing during the same intervals relative to WT mice. These bidirectional phenotypes reveal that exon 18a shapes aversive associative learning. Furthermore, exon 18a splicing did not influence spatial working memory, spatial navigation under stress, nociceptive responses in basal and inflammatory conditions, overall locomotion or exploratory behavior. These results suggest that the behavioral impact of exon 18a splicing is highly selective. Together, our findings identify alternative splicing of exon 18a as a molecular contributor to associative learning.

neuroscience↗

G-quadruplexes represent promising new targets to overcome multidrug-resistant fungal infections

The growing emergence of antifungal resistance has prompted the identification of novel antifungal targets. G-quadruplexes (G4s), four-stranded secondary structures that form in DNA and RNA, have arisen as a drug target to treat bacterial, viral, and parasitic infections. Here, we provide the first demonstration that G4s form in fungi and represent a promising new target for antifungal development. We found that PhenDC3 and pyridostatin (PDS), ligands that bind to and stabilise G4s, potently inhibited the metabolism of fungal pathogens in different ways. These pathogens included the pan azole-resistant Aspergillus fumigatus isolate TR34/L98H and Candida auris. Notably, PhenDC3 could synergise with amphotericin B, was protective in an in vivo model of fungal infection, and was well-tolerated by human cells. However, continuous exposure to PhenDC3 resulted in some cross-resistance to current antifungals and this needs to be explored further. PhenDC3 could also increase the number of RNA G4s in live A. fumigatus. Further, we demonstrated the structural flexibility of DNA sequences found in cyp51A and cyp51B, with these sequences capable of forming duplexes, hairpins, G4s and i-motifs. Finally, PhenDC3, but not PDS, caused duplex DNA structures in cyp51A to transition into antiparallel G4 structures potentially associated with PhenDC3s increased antifungal potency. Taken together, G4s represent an exciting antifungal target, but a more detailed understanding of their biological roles is essential.

microbiology↗