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Marchiotto, F.

Publications and source records attributed to Marchiotto, F..

2 recordsLinked to original sources

Oligodendroglial deletion of the microcephaly gene Cit-k disrupts cortical connectivity and cognitive function

Neurodevelopmental disorders (NDDs) are increasingly recognized as disorders of brain connectivity and circuit dysfunction. Growing evidence suggests that glial cell and myelin abnormalities may actively contribute to these alterations. Yet, they have been often considered secondary consequences of impaired neuronal development rather than primary drivers of circuit dysfunction. Primary autosomal recessive microcephaly type 17 (MCPH17) is a severe NDD caused by mutations in the CIT gene, encoding Citron kinase (CIT-K). The disease is associated with cognitive and motor deficits, epilepsy susceptibility, and marked hypomyelination in both patients and mouse models, suggesting a contribution of oligodendroglial dysfunction to disease pathophysiology. Here, we investigated the specific role of oligodendroglial Cit-k loss using Sox10Cre;Cit-kfl/fl mice, in which Cit-k is selectively deleted in oligodendrocyte-lineage cells. Mutant mice displayed impaired forebrain myelination at juvenile stages and persistent cortical hypomyelination in adulthood. Despite preserved gross motor function, adult mutants showed deficits in fine motor control, working and recognition memory, and auditory fear memory. These impairments were associated with altered cortico-cortical and cortico-hippocampal functional connectivity. Moreover, consistent with the clinical MCPH17 phenotype, mutant mice exhibited increased susceptibility to kainate-induced seizures. Together, our findings show that oligodendroglial Cit-k loss and the resulting hypomyelination are sufficient to produce long-lasting neurological and behavioral impairments independently of primary neuronal defects. These results identify oligodendrocytes as active contributors to MCPH17 and support a broader role for myelin abnormalities in NDDs. HighlightsO_LICit-k deletion in oligodendroglia disrupts forebrain myelination C_LIO_LICortical hypomyelination persists in adult mutant mice C_LIO_LIMutant mice show deficits in motor control and memory C_LIO_LICortico-cortical and cortico-hippocampal connectivity are altered C_LIO_LIligodendrocytes contribute to microcephaly-associated dysfunctions C_LI

neuroscience↗

Transcranial direct current stimulation (tDCS) promotes myelin repair and plasticity in the mouse motor cortex

Cortical myelin loss and oligodendroglial dysfunction, hallmarks of numerous neurodegenerative and psychiatric disorders, compromise executive, sensory, and cognitive functions by altering circuit activity and integrity. Promoting cortical myelin repair therefore represents a critical therapeutic goal. In this frame, modulation of neuronal activity through non-invasive brain stimulation may represent a promising non-pharmacological approach to support remyelination. To address this issue, we investigated the effects of anodal transcranial direct current stimulation (A-tDCS) in a mouse model of unilateral myelin injury in the motor cortex. A-tDCS was delivered over the contralateral uninjured cortex during a bilateral motor task (locomotion), to enhance the physiological activity of interhemispheric M1-M1 projections and indirectly stimulate the lesioned cortex. When applied during the late phase of demyelination and the onset of repair, A-tDCS accelerated remyelination and increased oligodendroglial survival and maturation in the lesioned cortex, compared with unstimulated controls. Increased myelin was also detected in the directly stimulated uninjured cortex despite unchanged oligodendroglial cell numbers, suggesting de novo myelin formation or remodeling of existing internodes. These structural changes were accompanied by preservation of interhemispheric M1-M1 functional connectivity upon injury. Collectively, our findings demonstrate that A-tDCS promotes cortical myelin repair in vivo, supporting its therapeutic potential for disorders characterized by myelin damage. Notably, the observed effects of tDCS on myelin plasticity in the uninjured cortex - reported here for the first time - reveal a previously unrecognized mechanism underlying tDCS-mediated neuromodulation. HighlightsO_LIAnodal tDCS (A-tDCS) promotes remyelination in the mouse motor cortex (M1) and restores M1-M1 synchrony after demyelinating injury C_LIO_LIA-tDCS enhances oligodendroglial survival and maturation in the injured motor cortex C_LIO_LIA-tDCS induces myelin plasticity in the uninjured cortex C_LI

neuroscience↗