bioRxiv Science⌕ Search

Biology subjects

Pichon, A.

Publications and source records attributed to Pichon, A..

2 recordsLinked to original sources

Emotional modulation of visual cortical reactivation during true and false memories

Previous research revealed that memory retrieval is associated with a reactivation of sensory cortices reflecting the content of the memory. Further, such reactivation is stronger when retrieval is cued with emotional information as compared with neutral information. However, past studies focused on correct retrieval, and it remains unknown whether a similar reactivation occurs during memory errors, and whether this is enhanced in emotional contexts. Here, we hypothesized that emotion may influence memory errors due to an increase of sensory cortical reactivation at the cost of recovering episodic details (i.e. leading to incorrect retrieval of non-specific associations shared with other cues). We compared brain activations during successful memory retrieval and memory errors in 18 healthy participants who encoded unique negative or neutral scenes paired with one of four associated faces, shared with other trials. Participants were tested the next day with a scene-cued associative retrieval test, while undergoing functional magnetic resonance imaging (fMRI). Results from a face-responsive region of interest in fusiform cortex (unlike a control place-responsive region in parahippocampal cortex) showed stronger activation for both Hits ("Old" | Target) and False Alarms ("Old" | Foil), as compared with Misses ("New" | Target) and Correct Rejections ("New" | Foil). The emotional content of scene cues did not modulate activation patterns during correct retrieval but produced specific effects on Misattribution errors (incorrect "Old" | Target, i.e., retrieval of an incorrect face cued by a previously seen scene). Specifically, Misattributions were accompanied by increased fusiform activation comparable to Hits when cued by negative scenes, but low fusiform activation similar to Misses when cued by neutral scenes. Unlike Misattributions, however, Hits cued by emotional information recruited a distinctive network previously linked to personal episodic memories, including medial prefrontal, cingulate, and hippocampal regions, together with enhanced functional coupling between the latter and fusiform cortex. No implicit effect of previous face exposure was observed in the fusiform during Misses, regardless of emotion context. Our results suggest that the reactivation of sensory areas follows subjective memory experience during retrieval, and that emotion can enhance such mechanism when the cue is recognized but detailed episodic memory mediated by fronto-hippocampal circuits is absent, leading to the retrieval of inappropriate associations and false memories.

neuroscience↗

Convergent origin and accelerated evolution of vesicle-associated RhoGAP proteins in two unrelated parasitoid wasps

Animal venoms and other protein-based secretions that perform a variety of functions, from predation to defense, are highly complex cocktails of bioactive compounds. Gene duplication, accompanied by modification of the expression and/or function of one of the duplicates under the action of positive selection, followed by further duplication to produce multigene families of toxins is a well-documented process in venomous animals. This evolutionary model has been less described in parasitoid wasps, which use maternal fluids, including venom, to protect their eggs from encapsulation by the host immune system. Here, we evidence the convergent recruitment and accelerated evolution of two multigene families of RhoGAPs presumably involved in virulence in two unrelated parasitoid wasp species, Leptopilina boulardi (Figitidae) and Venturia canescens (Icheumonidae). In both species, these RhoGAPs are associated with vesicles that act as transport systems to deliver virulence factors, but are produced in different tissues: the venom gland in Leptopilina sp. and the ovarian calyx in V. canescens. We show that the gene encoding the cellular RacGAP1 is at the origin of the virulent RhoGAP families found in Leptopilina sp. and V. canescens. We also show that both RhoGAP families have undergone evolution under positive selection and that almost all of these RhoGAPs lost their GAP activity and GTPase binding ability due to substitutions in key amino acids. These results suggest an accelerated evolution and functional diversification of these vesicle-associated RhoGAPs in the two phylogenetically distant parasitoid species. The potential new function(s) and the exact mechanism of action of these proteins in host cells remain to be elucidated.

evolutionary biology↗