Search bioRxiv⌕ Search

Biology subjects

Walshe-Roussel, B.

Publications and source records attributed to Walshe-Roussel, B..

2 recordsLinked to original sources

Recovery from social isolation requires dopamine in males, but not the autism-related gene nlg3 in either sex

Social isolation causes profound changes in social behaviour in a variety of species including humans, monkeys, mice, bees, and vinegar flies. However, the genetic and molecular mechanisms modulating behavioural responses to both social isolation and social recovery remain to be elucidated. In this study, we quantified the behavioural response of vinegar flies to social isolation through the use of two distinct protocols, one involving flies social space preference and the other assessing flies sociability, defined as their spontaneous tendencies to form groups. We found that social isolation increased social space and reduced sociability. These effects of social isolation, however, were reversible and could be reduced after 3 days of group housing. Flies with a loss of function of neuroligin3 (ortholog of autism-related neuroligin genes) with known increased social space in a socially enriched environment, were still able to recover from social isolation. Using a UAS-TH-RNAi driven in all neurons, we show that dopamine is important for a response to social isolation and recovery in males but not in females. Furthermore, only in males, dopamine levels are reduced after isolation and are not recovered after group housing. Finally, in socially enriched flies with a loss of function of neuroligin3, dopamine levels are reduced in males, but not in females. We propose a model to explain how dopamine and neuroligin3 are involved in the behavioural response to social isolation and its recovery in a dynamic and sex-specific manner.

neuroscience↗

Multiple indole glucosinolates and myrosinases defend Arabidopsis against Tetranychus urticae herbivory

Arabidopsis defenses against herbivores are regulated by the jasmonate hormonal signaling pathway, which leads to the production of a plethora of defense compounds, including tryptophan-derived metabolites produced through CYP79B2/CYP79B3. Jasmonate signaling and CYP79B2/CYP79B3 limit Arabidopsis infestation by the generalist herbivore two-spotted spider mite, Tetranychus urticae. However, the phytochemicals responsible for Arabidopsis protection against T. urticae are unknown. Here, using Arabidopsis mutants that disrupt metabolic pathways downstream of CYP79B2/CYP79B3, and synthetic indole glucosinolates, we identified phytochemicals involved in the defense against T. urticae. We show that Trp-derived metabolites depending on CYP71A12 and CYP71A13 are not affecting mite herbivory. Instead, the supplementation of cyp79b2 cyp79b3 mutant leaves with the 3-indolylmethyl glucosinolate and its derived metabolites demonstrated that the indole glucosinolate pathway is sufficient to assure CYP79B2/CYP79B3-mediated defenses against T. urticae. We demonstrate that three indole glucosinolates can limit T. urticae herbivory, but that they have to be processed by the myrosinases to hinder T. urticae oviposition. Finally, the supplementation of the mutant myc2 myc3 myc4 with indole glucosinolates indicated that the transcription factors MYC2/MYC3/MYC4 induce additional indole glucosinolate-independent defenses that control T. urticae herbivory. Together, these results reveal the complexity of Arabidopsis defenses against T. urticae that rely on multiple indole glucosinolates, specific myrosinases, and additional MYC2/MYC3/MYC4-dependent defenses. One sentence summaryThree indole glucosinolates and the myrosinases TGG1/TGG2 help protect Arabidopsis thaliana against the herbivory of the two-spotted spider mite Tetranychus urticae.

plant biology↗