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1.
Genes (Basel) ; 15(4)2024 Apr 18.
Article in English | MEDLINE | ID: mdl-38674442

ABSTRACT

(1) Background: Cockayne syndrome (CS) is an ultra-rare multisystem disorder, classically subdivided into three forms and characterized by a clinical spectrum without a clear genotype-phenotype correlation for both the two causative genes ERCC6 (CS type B) and ERCC8 (CS type A). We assessed this, presenting a series of patients with genetically confirmed CSB. (2) Materials and Methods: We retrospectively collected demographic, clinical, genetic, neuroimaging, and serum neurofilament light-chain (sNFL) data about CSB patients; diagnostic and severity scores were also determined. (3) Results: Data of eight ERCC6/CSB patients are presented. Four patients had CS I, three patients CS II, and one patient CS III. Various degrees of ataxia and spasticity were cardinal neurologic features, with variably combined systemic characteristics. Mean age at diagnosis was lower in the type II form, in which classic CS signs were more evident. Interestingly, sNFL determination appeared to reflect clinical classification. Two novel premature stop codon and one novel missense variants were identified. All CS I subjects harbored the p.Arg735Ter variant; the milder CS III subject carried the p.Leu764Ser missense change. (4) Conclusion: Our work confirms clinical variability also in the ERCC6/CSB type, where manifestations may range from severe involvement with prenatal or neonatal onset to normal psychomotor development followed by progressive ataxia. We propose, for the first time in CS, sNFL as a useful peripheral biomarker, with increased levels compared to currently available reference values and with the potential ability to reflect disease severity.


Subject(s)
Cockayne Syndrome , DNA Helicases , DNA Repair Enzymes , Poly-ADP-Ribose Binding Proteins , Transcription Factors , Humans , Cockayne Syndrome/genetics , Cockayne Syndrome/pathology , Cockayne Syndrome/diagnosis , Poly-ADP-Ribose Binding Proteins/genetics , DNA Repair Enzymes/genetics , Female , Male , DNA Helicases/genetics , Child , Child, Preschool , Adolescent , Retrospective Studies , Adult , Infant , Genetic Association Studies , Young Adult
2.
Front Pediatr ; 10: 901338, 2022.
Article in English | MEDLINE | ID: mdl-36210928

ABSTRACT

Congenital hyperinsulinism comprises a group of diseases characterized by a persistent hyperinsulinemic hypoglycemia, due to mutation in the genes involved in the regulation of insulin secretion. The severity and the duration of hypoglycemic episodes, primarily in the neonatal period, can lead to neurological impairment. Detecting blood sugar is relatively simple but, unfortunately, symptoms associated with hypoglycemia may be non-specific. Research in this field has led to novel insight in diagnosis, monitoring and treatment, leading to a better neurological outcome. Given the increased availability of continuous glucose monitoring systems that allow glucose level recognition in a minimally invasive way, monitoring the glycemic trend becomes easier and there are more possibilities of a better follow-up of patients. We aim to provide an overview of new available technologies and new discoveries and their potential impact on clinical practice, convinced that only with a better awareness of the disease and available tools we can have a better impact on CHI diagnosis, prevention and clinical sequelae.

3.
Cell Death Differ ; 26(11): 2464-2478, 2019 Nov.
Article in English | MEDLINE | ID: mdl-30858606

ABSTRACT

Mutations in TBC1D24 are described in patients with a spectrum of neurological diseases, including mild and severe epilepsies and complex syndromic phenotypes such as Deafness, Onycodystrophy, Osteodystrophy, Mental Retardation and Seizure (DOORS) syndrome. The product of TBC1D24 is a multifunctional protein involved in neuronal development, regulation of synaptic vesicle trafficking, and protection from oxidative stress. Although pathogenic mutations in TBC1D24 span the entire coding sequence, no clear genotype/phenotype correlations have emerged. However most patients bearing predicted loss of function mutations exhibit a severe neurodevelopmental disorder. Aim of the study is to investigate the impact of TBC1D24 knockdown during the first stages of neuronal differentiation when axonal specification and outgrowth take place. In rat cortical primary neurons silenced for TBC1D24, we found defects in axonal specification, the maturation of axonal initial segment and action potential firing. The axonal phenotype was accompanied by an impairment of endocytosis at the growth cone and an altered activation of the TBC1D24 molecular partner ADP ribosylation factor 6. Accordingly, acute knockdown of TBC1D24 in cerebrocortical neurons in vivo analogously impairs callosal projections. The axonal defect was also investigated in human induced pluripotent stem cell-derived neurons from patients carrying TBC1D24 mutations. Reprogrammed neurons from a patient with severe developmental encephalopathy show significant axon formation defect that were absent from reprogrammed neurons of a patient with mild early onset epilepsy. Our data reveal that alterations of membrane trafficking at the growth cone induced by TBC1D24 loss of function cause axonal and excitability defects. The axonal phenotype correlates with the disease severity and highlight an important role for TBC1D24 in connectivity during brain development.


Subject(s)
Axonal Transport/physiology , Axons/metabolism , GTPase-Activating Proteins/metabolism , Neuronal Outgrowth/physiology , Neurons/metabolism , ADP-Ribosylation Factor 6 , ADP-Ribosylation Factors/metabolism , Animals , GTPase-Activating Proteins/genetics , Humans , Induced Pluripotent Stem Cells/metabolism , Nervous System Diseases/genetics , Neurogenesis/physiology , Oxidative Stress/physiology , Protein Domains/genetics , Rats , Rats, Wistar
4.
Brain ; 141(4): 1000-1016, 2018 04 01.
Article in English | MEDLINE | ID: mdl-29554219

ABSTRACT

See Lerche (doi:10.1093/brain/awy073) for a scientific commentary on this article.Proline-rich transmembrane protein 2 (PRRT2) is the causative gene for a heterogeneous group of familial paroxysmal neurological disorders that include seizures with onset in the first year of life (benign familial infantile seizures), paroxysmal kinesigenic dyskinesia or a combination of both. Most of the PRRT2 mutations are loss-of-function leading to haploinsufficiency and 80% of the patients carry the same frameshift mutation (c.649dupC; p.Arg217Profs*8), which leads to a premature stop codon. To model the disease and dissect the physiological role of PRRT2, we studied the phenotype of neurons differentiated from induced pluripotent stem cells from previously described heterozygous and homozygous siblings carrying the c.649dupC mutation. Single-cell patch-clamp experiments on induced pluripotent stem cell-derived neurons from homozygous patients showed increased Na+ currents that were fully rescued by expression of wild-type PRRT2. Closely similar electrophysiological features were observed in primary neurons obtained from the recently characterized PRRT2 knockout mouse. This phenotype was associated with an increased length of the axon initial segment and with markedly augmented spontaneous and evoked firing and bursting activities evaluated, at the network level, by multi-electrode array electrophysiology. Using HEK-293 cells stably expressing Nav channel subtypes, we demonstrated that the expression of PRRT2 decreases the membrane exposure and Na+ current of Nav1.2/Nav1.6, but not Nav1.1, channels. Moreover, PRRT2 directly interacted with Nav1.2/Nav1.6 channels and induced a negative shift in the voltage-dependence of inactivation and a slow-down in the recovery from inactivation. In addition, by co-immunoprecipitation assays, we showed that the PRRT2-Nav interaction also occurs in brain tissue. The study demonstrates that the lack of PRRT2 leads to a hyperactivity of voltage-dependent Na+ channels in homozygous PRRT2 knockout human and mouse neurons and that, in addition to the reported synaptic functions, PRRT2 is an important negative modulator of Nav1.2 and Nav1.6 channels. Given the predominant paroxysmal character of PRRT2-linked diseases, the disturbance in cellular excitability by lack of negative modulation of Na+ channels appears as the key pathogenetic mechanism.


Subject(s)
Gene Expression Regulation/genetics , Membrane Proteins/metabolism , Mutation/genetics , NAV1.2 Voltage-Gated Sodium Channel/metabolism , NAV1.6 Voltage-Gated Sodium Channel/metabolism , Nerve Tissue Proteins/metabolism , Neurons/physiology , Animals , Axon Initial Segment/physiology , Cell Differentiation , Cerebral Cortex/cytology , Consanguinity , Fibroblasts/pathology , HEK293 Cells , Humans , Induced Pluripotent Stem Cells , Membrane Potentials/genetics , Membrane Proteins/genetics , Mice , Mice, Inbred C57BL , Mice, Knockout , NAV1.6 Voltage-Gated Sodium Channel/genetics , Nanog Homeobox Protein/genetics , Nanog Homeobox Protein/metabolism , Nerve Tissue Proteins/genetics , Nervous System Diseases/genetics , Nervous System Diseases/pathology , Neurons/cytology , PAX6 Transcription Factor/genetics , PAX6 Transcription Factor/metabolism , SOXB1 Transcription Factors/genetics , SOXB1 Transcription Factors/metabolism , Siblings
5.
Epilepsy Behav ; 51: 53-6, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26262932

ABSTRACT

Chromodomain helicase DNA-binding protein 2 (CHD2) gene mutations have been reported in patients with myoclonic-atonic epilepsy (MAE), as well as in patients with Lennox-Gastaut, Dravet, and Jeavons syndromes and other epileptic encephalopathies featuring generalized epilepsy and intellectual disability. The aim of this study was to assess the impact of CHD2 mutations in a series of patients with MAE. Twenty patients affected by MAE were included in the study. We analyzed antecedents, age at onset, seizure semiology and frequency, EEG, treatment, and neuropsychological outcome. We sequenced the CHD2 gene with Sanger technology. We identified a CHD2 frameshift mutation in one patient (c.4256del19). He was a 17-year-old boy with no familial history for epilepsy and normal development before epilepsy onset. Epilepsy onset was at 3years and 5months: he presented with myoclonic-atonic seizures, head drops, myoclonic jerks, and absences. Interictal EEGs revealed slow background activity associated with generalized epileptiform abnormalities and photoparoxysmal response. His seizures were highly responsive to valproic acid, and an attempt to withdraw it led to seizure recurrence. Neuropsychological evaluation revealed moderate intellectual disability. Chromodomain-helicase-DNA-binding protein 2 is not the major gene associated with MAE. Conversely, CHD2 could be responsible for a proper phenotype characterized by infantile-onset generalized epilepsy, intellectual disability, and photosensitivity, which might overlap with MAE, Lennox-Gastaut, Dravet, and Jeavons syndromes.


Subject(s)
DNA-Binding Proteins/genetics , Epilepsies, Myoclonic/genetics , Epilepsy, Generalized/genetics , Child, Preschool , Electroencephalography , Epilepsy/genetics , Female , Humans , Male , Mutation , Phenotype
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