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Cresto, N.

Publications and source records attributed to Cresto, N..

2 recordsLinked to original sources

Long-lasting astrocyte remodeling in Dravet Syndrome Scn1a+/- mouse model.

BackgroundDravet syndrome (DS) is a prototypical developmental and epileptic encephalopathy caused by SCN1A gene mutations leading to NaV1.1 loss of function. The latter causes early-onset drug-resistant seizures and enduring cognitive and behavioral deficits. In this pathological context, the implication of astrocytes remains insufficiently explored. MethodsUsing a heterozygous Scn1a knock-out (Scn1a/-) mouse model that recapitulates the DS-human phenotype, we examine astrocyte remodeling at landmark disease stages, as defined by video-EEG and behavioral read-outs. ResultsFrom initial disease aggravation (PN20-35) to long-term stabilization (up to PN90), Scn1a/- mice showed increased hippocampal and cortical GFAP transcript and protein levels, compared to age-matched control littermates and to an earlier presymptomatic (<PN20) time point. During the aggravation phase in Scn1a/- mice, astrocyte branching, revealed by GFAP histological analysis and by intracellular delivery of Alexa Fluor 488 in hippocampal slices was increased but not sustained long-term. These disease-stage-dependent astrocyte modifications were not associated with macroscopic hippocampal sclerosis or cortical atrophy. To further study astrocyte remodeling during disease progression, we used biocytin diffusion following single-astrocyte loading to reveal an expanded astrocyte-astrocyte network in Scn1a/- mice long-term, along with increased Cx30 and Cx43 protein levels. An ethidium bromide uptake assay indicated impaired astrocytic hemichannel function in Scn1a/- mice long-term. Regionally, these long-term cellular and network astrocyte modifications coincided with augmented post-tetanic synaptic potentiation. DiscussionIn DS, astrocytes undergo a long-lasting network remodeling. We discuss how this astrocyte remodeling may be related to seizures as well as synaptic and cognitive deficits.

neuroscience↗

Astroglial deficiency for oligophrenin-1 contributes to intellectual disability

Neurodevelopmental disorders, including X-linked intellectual disability, autism spectrum disorder or schizophrenia, can result from the mutation of oligophrenin-1 (Ophn1), encoding a Rho-GTPase-activating protein. Ophn1 regulates synaptic development and function, in part via cytoskeleton reorganization, and is expressed in both neurons and astrocytes. Despite the crucial role of astrocytes in synapse function, altered in neurodevelopmental disorders, and their Ophn1 expression, the specific impact of astroglial Ophn1 deficiency on synaptic transmission and behavior remains unknown. Here, we show that Ophn1 deficiency postnatally in hippocampal astrocytes impairs synaptic transmission, short-term plasticity and spatial working memory in adults. This involves an adenosine A1 receptor-dependent presynaptic mechanism associated with astroglial morphological rearrangements resulting in increased astroglial synapse coverage. The structural, functional and behavioral alterations induced by astroglial Ophn1 deficiency are rescued in adults by pharmacological inhibition of the RhoA/ROCK pathway. Our findings uncover an important role for astroglial Ophn1 deficiency in synaptic and behavioral dysfunctions, pointing to a novel cellular therapeutic target for neurodevelopmental disorders.

neuroscience↗