Search bioRxiv⌕ Search

Biology subjects

GASCON, E.

Publications and source records attributed to GASCON, E..

2 recordsLinked to original sources

Combination of Cas9 and adeno-associated vectors (AAVs) enables efficient in vivo knockdown of precise miRNAs in the rodent brain

Although the advent of Cas9 technology has expanded our ability to precisely edit the genome, manipulating microRNAs in vivo has been shown to be particularly challenging, especially in the brain. Here, we sought to generate novel tools aiming at targeting and efficiently downregulating defined microRNAs species in a cell-specific manner so that their function in discrete neuronal networks could be investigated. Focusing on miR-124, a microRNA highly expressed in the mammalian brain and transcribed from three independent chromosomal loci, we designed and validated different guide RNAs directed against this miRNA. In vitro, our Cas9 designs show not only a significant reduction in miR-124 levels but also a functional effect on miR-124 silencing. Similarly, when packed into AAV vectors and injected into the mouse cortex, miR-124-Cas9 vectors strongly downregulate miR-124 levels without affecting the expression of other miRNAs. In parallel, levels of endogenous miR-124 targets exhibit a significant increase supporting the release of its silencing activity. To functionally validate our tools, we provide evidences that deletion of miR-124 in the subventricular zone altered migration of newly generated neurons into the olfactory bulb. Finally, we also showed that our vectors modified the Ca2+ permeability of AMPA receptors, a robust functional output downstream of miR-124. These tools are expected to help elucidating miRNA function in complex experimental settings such as brain networks in vivo.

neuroscience↗

Biologically grounded brain-on-chip model identifies selective topographic reorganization within hyperexcitable neural networks

Connectomics has revolutionized our understanding of brain function by emphasizing the importance of neural networks and their topographical organization. Corticostriatal circuits, which play a critical role in cognition and emotion, follow a precise topographic architecture essential for integrating and processing cortical information within the basal ganglia. Disruptions to this connectivity are often implicated in neurodevelopmental and psychiatric disorders such as obsessive compulsive disorders, schizophrenia, epilepsy, and autism spectrum disorders. However, studying network disruptions in vivo presents significant challenges due to their intricate architecture and early developmental onset. To address this, we employed a brain-on-chip microfluidic platform to recreate a biologically relevant model of topographically organized corticostriatal networks. By mimicking the directional control of neuronal projections using Tesla valve-inspired microchannels, we demonstrate that genetic perturbations affecting neuronal excitability during development lead to selective alterations of local versus long-range network topology, resulting in the formation of new convergent nodes. This model offers critical insights into how early perturbations contribute to circuit-specific pathologies, providing a valuable tool for understanding neurodevelopmental disorders and advancing therapeutic strategies.

neuroscience↗