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Tarhini, S.

Publications and source records attributed to Tarhini, S..

2 recordsLinked to original sources

Virus-against-virus dominant-negative interference strategy targeting a viral CC chemokine prevents cytomegalovirus-related neurodevelopmental pathogenesis

BackgroundCongenital cytomegalovirus (CMV) infections are one leading cause of human neurodevelopmental disorders. Increasing evidence for the pathogenic involvement of brain immune alterations was obtained in the recent years. Host and virus-encoded chemokines might play important roles in CMV-related neuropathogenesis by regulating leukocyte trafficking and microglia recruitment in the CMV-infected brains, and by interfering with key neurodevelopmental steps. In a rat model of CMV infection of the fetal brain in utero that leads to detrimental neurologic and other severe phenotypes postnatally, we reported on the early alteration of microglia and on the infiltration of the infected brains by lymphoid and myeloid cells. Particularly, expression of the r129 gene encoding the viral chemokine RCK3 was detected as early as 24h post-infection; together with the previously reported chemotaxis properties exerted by RCK3 on lymphocytes and on macrophages in vitro, this suggested that RCK3 might be involved in the brain immune cell alterations seen in the CMV-infected developing brains, and in the related neuropathogenesis. MethodsInfection of the rat fetal brain was done by intracerebroventricular injections in utero of either rat CMV encoding wild-type (wt) RCK3 (RCMV-wt), or a mutant CMV counterpart encoding RCK3 with a deletion in its chemokine domain (RCMV-r129{Delta}NT). As RCMV-r129{Delta}NT had shown dominant-negative effects on the chemotaxis properties of RCK3 in vitro, simultaneous and successive co-infection rescue assays were also performed. The detrimental postnatal phenotypes in vivo and the epileptiform activity ex vivo usually detected after infection of the rat developing brain with RCMV-wt were monitored in the RCMV-r129{Delta}NT condition and in co-infection assays. ResultsIn sharp contrast with RCMV-wt whose infection of the fetal brain led to decreased postnatal survival, impaired sensorimotor development, hindlimb hyperextension and epileptic seizures in neonatal pups, RCMV-r129{Delta}NT infection was not associated with any severe postnatal phenotype in vivo. Consistently, the epileptiform activity recorded in most neocortical slices from RCMV-wt-infected pups was not detected in any slice from RCMV-r129{Delta}NT-infected pups. Simultaneous co-infection assays led to dramatic prevention against the postnatal phenotypes in vivo and the altered network activity ex vivo, revealing a dose-dependent rescuing effect exerted by RCMV-r129{Delta}NT on RCMV-wt. Importantly, successful rescue was also obtained when the mutant RCMV-r129{Delta}NT was inoculated in the fetal brains either before or after infection with RCMV-wt. SignificanceOur data demonstrate the crucial neuropathogenic role of RCK3 CMV chemokine in vivo. The dramatic success and apparent safety of the dominant-negative RCK3 rescue assays in vivo provide a proof-of-principle for the beneficial use of a virus-against-virus approach against CMV-related pathogenesis.

neuroscience↗

Pathogenic MTOR somatic variant causing focal cortical dysplasia drives hyperexcitability via overactivation of neuronal GluN2C NMDA receptors

ObjectiveGenetic variations in proteins of the mechanistic target of rapamycin (mTOR) pathway cause a spectrum of neurodevelopmental disorders often associated with brain malformations and with intractable epilepsy. The mTORopathies are characterized by hyperactive mTOR pathway and comprise tuberous sclerosis complex (TSC) and focal cortical dysplasia (FCD) type II. How hyperactive mTOR translates into abnormal neuronal activity and hypersynchronous network remains to be better understood. Previously, the role of upregulated GluN2C-containing glutamate- gated NMDA receptors (NMDARs) has been demonstrated for germline defects in the TSC genes. Here, we questioned whether this mechanism would expand to other mTORopathies in the different context of a somatic genetic variation of the MTOR protein recurrently found in FCD type II. MethodsWe used a rat model of FCD created by in utero electroporation of neural progenitors of dorsal telencephalon with expression vectors encoding either the wild-type or the pathogenic MTOR variant (p.S2215F). In this mosaic configuration, patch-clamp whole-cell recordings of the electroporated, spiny stellate neurons and extracellular recordings of the electroporated areas were performed in neocortical slices. Selective inhibitors were used to target mTOR activity and GluN2C- mediated currents. ResultsNeurons expressing the mutant protein displayed an excessive activation of GluN2C NMDAR-mediated spontaneous excitatory post-synaptic currents. GluN2C-dependent increase in spontaneous spiking activity was detected in the area of electroporated neurons in the mutant condition and was restricted to a critical time-window between postnatal days P9 and P20. SignificanceSomatic MTOR pathogenic variant recurrently found in FCD type II resulted in overactivation of GluN2C-mediated NMDARs in neocortices of rat pups. The related and time- restricted hyperexcitability was sensitive to subunit GluN2C-specific blockade. Our study suggests that GluN2C-related pathomechanisms might be shared in common by mTOR pathway-related cortical dysplasia. Key pointsO_LIExcessive activation of GluN2C NMDAR-mediated currents in spiny stellate neurons expressing FCD-causing MTOR somatic variation C_LIO_LIGluN2C-dependent increase in spontaneous spiking activity in rat somatosensory cortex containing mutant MTOR-expressing neurons C_LIO_LIGluN2C-dependent excessive network activity is time-restricted to a critical period between P9 and P20 C_LI

neuroscience↗