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Durant, S.

Publications and source records attributed to Durant, S..

2 recordsLinked to original sources

Functional classification of GNAI1 disorder variants in C. elegans uncovers conserved and cell-specific mechanisms of dysfunction

Heterotrimeric G proteins transduce signals from G protein coupled receptors, which mediate key aspects of neuronal development and function. Mutations in the GNAI1 gene, which encodes Gi1, cause a disorder characterized by developmental delay, intellectual disability, hypotonia, and epilepsy. However, the mechanistic basis for this disorder remains unknown. Here, we show that GNAI1 is required for ciliogenesis in human cells and use C. elegans as a whole-organism model to determine the functional impact of seven GNAI1-disorder patient variants. Using CRISPR-Cas9 editing in combination with robust cellular (cilia morphology) and behavioral (chemotaxis) assays, we find that T48I, K272R, A328P, and V334E orthologous variants impact both cilia assembly and function in AWC neurons, M88V and I321T have no impact on either phenotype, and D175V exerts neuron-specific effects on cilia-dependent sensory behaviors. Finally, we validate in human ciliated cell lines that D173V, K270R, and A326P GNAI1 variants disrupt ciliary localization of the encoded human Gi1 proteins similarly to their corresponding orthologous substitutions in the C. elegans ODR-3 (D175V, K272R, and A328P). Overall, our findings determine the in vivo effects of orthologous GNAI1 variants and contribute to mechanistic understanding of GNAI1 disorder pathogenesis as well as neuron-specific roles of ODR-3 in sensory biology. ARTICLE SUMMARYG subunits of heterotrimeric G proteins transduce signaling from G protein coupled receptors and play important roles in cell communication and complex behaviors. Mutations in the GNAI1 gene, which encodes Gi1 protein, have been recently linked to a neurodevelopmental disorder; however, it remains unknown how GNAI1 patient mutations disrupt neuronal development or function to manifest in disease. We demonstrate that GNAI1 is required for ciliogenesis and use C. elegans as a whole-animal model in combination with human cells to identify cell-specific and conserved mechanisms of G dysfunction.

developmental biology↗

When the head does not know what the eyes do: Head and eye movement planning differ in access to information during visual search

To characterize the process of visual search, reaction time is measured relative to stimulus onset, when the whole search field is presented in view simultaneously. Salient objects are found faster, suggesting that they are detected using peripheral vision (rather than each object being fixated in turn). This work investigated how objects are detected in the periphery when onset in the visual field is due to head movement. Is the process of target detection similarly affected by salience? We test this in 360 degree view with free head and eye movement, using a virtual reality headset with eye tracking. We presented letters and Gabor patches as stimuli in separate experiments. Four clusters were arranged horizontally such that two clusters were visible at onset either side of a fixation cross (near location) while the other two entered the field of view (FoV) when the participant made an appropriate head movement (far location). In both experiments we varied whether the target was less or more salient. We found an interesting discrepancy in that across both tasks and locations the first eye movement to land near a cluster was closer to the salient target, even though salience did not lead to a faster head movement towards a cluster at the far locations. We also found that the planning of head movement changed the landing of gaze position to be targeted more towards the centres of the clusters at the far locations, leading to more accurate initial gaze positions relative to target, regardless of salience. This suggests that the spatial information available for targeting of eye movements within a given FoV is not always available for the planning of head movements and how a target appears in view affects gaze targeting accuracy.

neuroscience↗