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Bassan, H.

Publications and source records attributed to Bassan, H..

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Cross-species analysis of GNB1 I80T encephalopathy: conserved developmental, epileptic and neuronal transcriptome signatures

GNB1 encephalopathy (GNB1E) is a rare neurodevelopmental disorder caused by mutations in GNB1 gene encoding the G protein subunit G{beta}1. Mechanisms linking these variants to neurological dysfunction remain unclear. We investigated the prevalent p.Ile80Thr (I80T) variant using combined clinical, cellular, and in vivo approaches. Longitudinal evaluation of a GNB1E patient revealed developmental delay, progressive peripheral spasticity, and epilepsy with Spike-Wave Activation in Sleep. Heterozygous knock-in Gnb1I80T/+ mice exhibited disease-relevant phenotypes, including impaired early development, mild adult motor and cognitive deficits and epileptiform cortical spike-and-wave discharges. Transcriptomic analysis identified 323 genes concordantly dysregulated in mouse cortex and cortical human neuronal cultures from patient-derived induced pluripotent cells. This gene set was enriched for ion-channel function, epilepsy-associated genes, and Gs/adenylyl cyclase signaling pathway. Our integrated analysis establishes the first cross-species model for GNB1E, suggests common neurological mechanisms and molecular pathways linked to GNB1E, and provides a framework for mechanistic and therapeutic studies. TeaserConserved human/mouse neurological and transcriptomic signatures in GNB1 encephalopathy.

physiology↗

The SCN8A p.(Gly1625Arg) variant associated with developmental and epileptic encephalopathy causes complex biophysical changes and reduced neuronal firing

BackgroundMutations in the SCN8A gene, encoding the voltage-gated sodium channel NaV1.6, lead to various neurodevelopmental disorders. The SCN8A p.(Gly1625Arg) mutation (NaV1.6G1625R) was identified in a patient diagnosed with developmental epileptic encephalopathy (DEE), presenting with moderate epilepsy and severe developmental delay. MethodsWe performed biophysical and neurophysiological characterizations of NaV1.6G1625R in Neuro-2a cells and cultured hippocampal neurons, followed by computational modeling to determine the impact of its heterozygous expression on cortical neuron function. FindingsVoltage-clamp analyses of NaV1.6G1625R demonstrated a heterogeneous mixture of gain-and loss-of-function properties, including reduced current amplitudes, a marked increase in the time constant of fast voltage-dependent inactivation and a depolarizing shift in the voltage dependence of inactivation. Recordings in transfected cultured neurons showed that these intricate biophysical properties had a minor effect on neuronal excitability when firing relayed on both endogenous and transfected NaV channels. Conversely, there was a marked reduction in the number of action potentials when firing was driven by the transfected mutant NaV1.6 channels. Computational modeling of mature cortical neurons further revealed a mild reduction in neuronal firing when mimicking the patients heterozygous NaV1.6G1625R expression. Structural modeling of NaV1.6G1625R and a double-mutant cycle analysis suggested the possible formation of pathophysiologically-relevant cation-{pi} interaction between R1625 and F1588, affecting the voltage dependence of inactivation. InterpretationOur analyses demonstrate a complex combination of gain and loss-of-function changes resulting in an overall mild reduction in neuronal firing, related to a perturbed interaction network within the voltage sensor domain. FundingISF, DFG, BMBF, The Hartwell Foundation, ICRF, ISCA Research in contextO_ST_ABSEvidence before this studyC_ST_ABSMutations in the SCN8A gene, encoding the voltage-gated sodium channel NaV1.6, result in multiple neurodevelopmental syndromes ranging from benign epilepsy to developmental delay without epilepsy or developmental epileptic encephalopathy (DEE). Recent studies established that most DEE-causing SCN8A mutations result in a gain of function effect. However, several SCN8A mutations that diverge from this pattern were described. Added value of this studyWe performed a multi-tiered study of the SCN8A p.(Gly1625Arg) variant (NaV1.6G1625R), identified in a patient with atypical DEE presentation, featuring moderate epilepsy that is well controlled by the sodium channel blocker Oxcarbazepine, along with profound stagnated developmental delay. This variant is positioned within the S4 segment of domain IV, a critical region for NaV1.6 function, where pathogenic variants were shown to cause either a loss or gain of channel function, but often with mixed biophysical alterations. Our biophysical characterization of NaV1.6G1625R in Neuro-2a cells demonstrated complex gain-and loss-of-function properties, cumulating to reduced firing in cultured hippocampal neurons and computational modeling of mature cortical neurons, demonstrating an overall loss-of-function effect. Implications of all the available evidenceOur results indicate the necessity for combined biophysical and neuronal characterization of individual SCN8A variants, especially those presenting with complex biophysical changes or atypical clinical presentation. Moreover, while sodium channel blockers are the recommended treatment for SCN8A variants associated with gain-of-function, additional considerations may be needed for DEE-causing variants that are associated with mild loss-of-function.

physiology↗