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Alonso-Calvino, E.

Publications and source records attributed to Alonso-Calvino, E..

2 recordsLinked to original sources

Deficient Memory, Long-Term Potentiation and Hippocampal Synaptic Plasticity in Galectin-4-KO Mice.

BACKGROUNDBrain function is influenced by the gut through the microbiota-gut-brain axis. Non-physiological microbiota-depletion or induced gut infection in animal models, have been instrumental to link intestinal alterations to cognitive and mood dysfunctions. However, the effects of specific, controlled, physiologically relevant shifts in commensal microbiota composition on brain function remain poorly understood. METHODSMice deficient in galectin-4 (Lgals4-KO) were used in this study. Gut microbiota was analysed by 16S-rRNA sequencing. Cognitive and mood status were evaluated with specific behavioral tests. Long-term potentiation (LTP) was tested ex vivo and in vivo by electrophysiological methods and in vitro by immunofluorescence and western blot. RNA-sequencing was used for transcriptomic analyses. Golgi-Cox staining and transmission electron microscopy were used for quantitative and morphological assessments of dendritic spines and synapses. RESULTSLgals4-KO mice present an altered intestinal commensal microbiota in the absence of pathogens, deficient memory formation, and impaired hippocampal LTP in vivo and ex vivo. Furthermore, Lgals4-KO neurons show a reduced activation of AMPA receptors and of CaMKII upon chemically induced LTP in vitro. These mice also display significantly lower dendritic spine density and shorter spine length in hippocampal dendrites, as well as an increased area of the postsynaptic densities CONCLUSIONSOur results define a new role for galectin-4 in the modulation of commensal bacteria. We also show that the absence of galectin-4 induces changes in gut microbial composition, along with synaptic alterations and memory impairment, supporting our hypothesis that variations in endogenous microbiota may cause or contribute to relevant neurological pathologies.

neuroscience↗

Cortical layer-specific modulation of neuronal activity after sensory deprivation due to spinal cord injury

Cortical areas have the capacity of large-scale reorganization following sensory deprivation. However, it remains unclear whether this phenomenon is a unique process that homogenously affects an entire deprived cortical region or it is suitable to changes depending on neuronal networks across distinct cortical layers. Here, we studied how local circuitries within each layer of the deprived cortex set the basis for neuroplastic changes after immediate sensory deprivation due to thoracic spinal cord injury (SCI) in anaesthetised rats. In vivo electrophysiological recordings from deprived hindlimb somatosensory cortex showed that SCI induces layer-specific changes mediating evoked and spontaneous activity. In supragranular layers 2/3, sensory deprivation increased gamma oscillations and the ability of these neurons to initiate up-states during spontaneous activity, suggesting altered corticocortical network and/or intrinsic properties that may serve to maintain the excitability of the cortical column after deprivation. On the other hand, sensory deprivation enhanced infragranular layers ability to integrate evoked-sensory inputs leading to increased and faster neuronal responses. Delayed evoked-responses onset were also observed in layers 5/6, suggesting alterations in thalamocortical connectivity. Altogether, our data indicate that SCI immediately modifies local circuitries within the deprived cortex allowing supragranular layers to better integrate spontaneous corticocortical information, and thus modifying column excitability, and infragranular layers to better integrate evoked-sensory inputs to preserve subcortical outputs. These layer-specific neuronal changes may guide the long-term alterations in neuronal excitability and plasticity associated to the rearrangements of somatosensory networks and the appearance of central sensory pathologies usually associated with spinal cord injury.

neuroscience↗