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Keywords = cerebellar vermis hypoplasia

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5 pages, 173 KB  
Case Report
New-Onset Type 1 Diabetes in a Child with Joubert Syndrome: A Rare Endocrine Complication
by Yutaka Furuta, Erica T. Nelson, Rory J. Tinker and Angela R. Grochowsky
Reports 2025, 8(2), 57; https://doi.org/10.3390/reports8020057 - 27 Apr 2025
Viewed by 1921
Abstract
Background and Clinical Significance: Joubert syndrome (OMIM #213300) is a rare predominantly autosomal recessive inherited condition characterized by the classic cerebellar vermis hypoplasia and brainstem anomalies (also known as the “molar tooth sign”), hypotonia, and developmental delays. Joubert syndrome is a ciliopathy that [...] Read more.
Background and Clinical Significance: Joubert syndrome (OMIM #213300) is a rare predominantly autosomal recessive inherited condition characterized by the classic cerebellar vermis hypoplasia and brainstem anomalies (also known as the “molar tooth sign”), hypotonia, and developmental delays. Joubert syndrome is a ciliopathy that affects multiple systems including the central nervous system, eyes, kidneys, liver, respiratory, musculoskeletal system, cardiovascular system, and endocrine system. Endocrine abnormalities are not uncommon in Joubert syndrome, such as growth hormone deficiency, thyroid hormone deficiency, central diabetes insipidus, hypopituitarism, micropenis, and obesity. However, a new-onset type 1 diabetes in childhood is not common in Joubert syndrome. Case Presentation: Herein, we report a case of a 7-year-old male with a history of Joubert syndrome presenting with polydipsia, polyuria, weight loss, and hyperglycemia who was diagnosed with type 1 diabetes. Conclusions: While diabetes has been reported as a rare complication in Joubert syndrome, this is the first case report of Joubert syndrome to accentuate new-onset type 1 diabetes as an endocrine complication. Full article
34 pages, 3157 KB  
Systematic Review
Characteristics of Developmental and Epileptic Encephalopathy Associated with PACS2 p.Glu209Lys Pathogenic Variant—Our Experience and Systematic Review of the Literature
by Adina Stoian, Zoltan Bajko, Rodica Bălașa, Sebastian Andone, Mircea Stoian, Ioana Ormenișan, Carmen Muntean and Claudia Bănescu
Biomolecules 2024, 14(3), 270; https://doi.org/10.3390/biom14030270 - 23 Feb 2024
Cited by 1 | Viewed by 6631
Abstract
Background: Developmental and epileptic encephalopathies (DEE) encompass a group of rare diseases with hereditary and genetic causes as well as acquired causes such as brain injuries or metabolic abnormalities. The phosphofurin acidic cluster sorting protein 2 (PACS2) is a multifunctional protein with nuclear [...] Read more.
Background: Developmental and epileptic encephalopathies (DEE) encompass a group of rare diseases with hereditary and genetic causes as well as acquired causes such as brain injuries or metabolic abnormalities. The phosphofurin acidic cluster sorting protein 2 (PACS2) is a multifunctional protein with nuclear gene expression. The first cases of the recurrent c.625G>A pathogenic variant of PACS2 gene were reported in 2018 by Olson et al. Since then, several case reports and case series have been published. Methods: We performed a systematic review of the PUBMED and SCOPUS databases using Preferred Reporting Items for Systematic Review and Meta-Analyses (PRISMA) guidelines. Our search parameters included DEE66 with a pathogenic PACS2 gene p.Glu209Lys mutation published cases to which we added our own clinical experience regarding this pathology. Results: A total of 11 articles and 29 patients were included in this review, to which we added our own experience for a total of 30 patients. There was not a significant difference between sexes regarding the incidence of this pathology (M/F: 16/14). The most common neurological and psychiatric symptoms presented by the patients were: early onset epileptic seizures, delayed global development (including motor and speech delays), behavioral disturbances, limited intellectual capacity, nystagmus, hypotonia, and a wide-based gait. Facial dysmorphism and other organs’ involvement were also frequently reported. Brain MRIs evidenced anomalies of the posterior cerebellar fossa, foliar distortion of the cerebellum, vermis hypoplasia, white matter reduction, and lateral ventricles enlargement. Genetic testing is more frequent in children. Only 4 cases have been reported in adults to date. Conclusions: It is important to maintain a high suspicion of new pathogenic gene variants in adult patients presenting with a characteristic clinical picture correlated with radiologic changes. The neurologist must gradually recognize the distinct evolving phenotype of DEE66 in adult patients, and genetic testing must become a scenario with which the neurologist attending adult patients should be familiar. Accurate diagnosis is required for adequate treatment, genetic counseling, and an improved long-term prognosis. Full article
(This article belongs to the Special Issue Recent Advances in Neurological Diseases)
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13 pages, 1608 KB  
Article
Pediatric Slow-Progressive, but Not Non-Progressive Cerebellar Ataxia Delays Intra-Limb Anticipatory Postural Adjustments in the Upper Arm
by Silvia Maria Marchese, Roberto Esposti, Veronica Farinelli, Claudia Ciaccio, Arianna De Laurentiis, Stefano D’Arrigo and Paolo Cavallari
Brain Sci. 2023, 13(4), 620; https://doi.org/10.3390/brainsci13040620 - 5 Apr 2023
Cited by 1 | Viewed by 3033
Abstract
We recently investigated the role of the cerebellum during development, reporting that children with genetic slow-progressive ataxia (SlowP) show worse postural control during quiet stance and gait initiation compared to healthy children (H). Instead, children with genetic non-progressive ataxia (NonP) recalled the behavior [...] Read more.
We recently investigated the role of the cerebellum during development, reporting that children with genetic slow-progressive ataxia (SlowP) show worse postural control during quiet stance and gait initiation compared to healthy children (H). Instead, children with genetic non-progressive ataxia (NonP) recalled the behavior of H. This may derive from compensatory networks, which are hindered by disease progression in SlowP while free to develop in NonP. In the aim of extending our findings to intra-limb postural control, we recorded, in 10 NonP, 10 SlowP and 10 H young patients, Anticipatory Postural Adjustments (APAs) in the proximal muscles of the upper-limb and preceding brisk index finger flexions. No significant differences in APA timing occurred between NonP and H, while APAs in SlowP were delayed. Indeed, the excitatory APA in Triceps Brachii was always present but significantly delayed with respect to both H and NonP. Moreover, the inhibitory APAs in the Biceps Brachii and Anterior Deltoid, which are normally followed by a late excitation, could not be detected in most SlowP children, as if inhibition was delayed to the extent where there was overlap with a late excitation. In conclusion, disease progression seems to be detrimental for intra-limb posture, supporting the idea that inter- and intra-limb postures seemingly share the same control mechanism. Full article
(This article belongs to the Special Issue Advances in the Study of Anticipatory Postural Adjustments)
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16 pages, 4861 KB  
Review
Neuroimaging of Pediatric Cerebellum in Inherited Neurodegenerative Diseases
by Luisa Chiapparini and Marco Moscatelli
Appl. Sci. 2021, 11(18), 8522; https://doi.org/10.3390/app11188522 - 14 Sep 2021
Cited by 4 | Viewed by 16955
Abstract
In the study of cerebellar degenerative diseases, morphologic imaging (computed tomography, CT and magnetic resonance imaging, MRI) is the most common examination. From the clinical and genetic point of view, cerebellar degenerative diseases include heterogeneous conditions in which MRI may show isolated cerebellar [...] Read more.
In the study of cerebellar degenerative diseases, morphologic imaging (computed tomography, CT and magnetic resonance imaging, MRI) is the most common examination. From the clinical and genetic point of view, cerebellar degenerative diseases include heterogeneous conditions in which MRI may show isolated cerebellar atrophy or cerebellar atrophy associated with other cerebellar or supratentorial abnormalities. Neuroradiological progression is often observed. In congenital disorders of glycosylation (CDG), for example, MRI may be normal, may demonstrate mild cerebellar atrophy or, in the advanced stages of the disease, marked atrophy of the cerebellar hemispheres and vermis associated with the abnormal signal intensity of the cerebellar cortex and white matter and brainstem hypotrophy. In spinal cerebellar ataxias (SCAs), very rare in the pediatric population, MRI may demonstrate isolated cerebellar atrophy or cerebellar and brainstem atrophy. MRI shows characteristic findings in other diseases, strongly suggesting a distinct disorder, such as neuroaxonal dystrophy, ARSACS, ataxia-telangiectasia, or precise mitochondrial diseases. An example of neurodegenerative disorder with prenatal onset is pontocerebellar hypoplasia (PCH). PCH represents a group of neurodegenerative disorders characterized by microcephaly, early cerebellar hypoplasia, and variable atrophy of the cerebellum and ventral pons, genetically divided into several subtypes. Cerebellar hypoplasia visible on MRI is often the first sign that suggests the clinical diagnosis. In most cases, the PCH subtype may demonstrate a characteristic pattern distinguishable at MRI. Selective involvement of the cerebellum, sometimes accompanied by brainstem or supratentorial abnormalities in different combinations, may help restrict the differential diagnosis and may address the specific molecular screening. Full article
(This article belongs to the Special Issue Cerebellar Genetic Diseases: Diagnostic and Monitoring)
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10 pages, 1086 KB  
Case Report
Whole Exome Sequencing Reveals a Novel AUTS2 In-Frame Deletion in a Boy with Global Developmental Delay, Absent Speech, Dysmorphic Features, and Cerebral Anomalies
by Pietro Palumbo, Ester Di Muro, Maria Accadia, Mario Benvenuto, Marilena Carmela Di Giacomo, Stefano Castellana, Tommaso Mazza, Marco Castori, Orazio Palumbo and Massimo Carella
Genes 2021, 12(2), 229; https://doi.org/10.3390/genes12020229 - 5 Feb 2021
Cited by 12 | Viewed by 4905
Abstract
Neurodevelopmental disorders (NDDs) are a group of highly prevalent, clinically and genetically heterogeneous pediatric disorders comprising, according to the Diagnostic and Statistical Manual of Mental Disorders 5th edition (DSM-V), intellectual disability, developmental delay, autism spectrum disorders, and other neurological and cognitive disorders manifesting [...] Read more.
Neurodevelopmental disorders (NDDs) are a group of highly prevalent, clinically and genetically heterogeneous pediatric disorders comprising, according to the Diagnostic and Statistical Manual of Mental Disorders 5th edition (DSM-V), intellectual disability, developmental delay, autism spectrum disorders, and other neurological and cognitive disorders manifesting in the developmental age. To date, more than 1000 genes have been implicated in the etiopathogenesis of NNDs. Among them, AUTS2 (OMIM # 607270) encodes a protein involved in neural migration and neuritogenesis, and causes NNDs with different molecular mechanisms including copy number variations, single or multiple exonic deletion and single nucleotide variants. We describes a 9-year-old boy with global developmental delay, absent speech, minor craniofacial anomalies, hypoplasia of the cerebellar vermis and thinning of the corpus callosum, resulted carrier of the de novo AUTS2 c.1603_1626del deletion at whole exome sequencing (WES) predicted to cause the loss of eight amino acids [p.(His535_Thr542del)]. Notably, our patient is the first reported so far in medical literature carrying an in-frame deletion and the first in which absent language, hypoplasia of the cerebellar vermis and thinning of the corpus callosum has been observed thus useful to expand the molecular spectrum of AUTS2 pathogenic variants and to broaden our knowledge on the clinical phenotype associated. Full article
(This article belongs to the Special Issue Genetics and Genomics of Intellectual Disability)
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13 pages, 1097 KB  
Article
Postural Control in Children with Cerebellar Ataxia
by Veronica Farinelli, Chiara Palmisano, Silvia Maria Marchese, Camilla Mirella Maria Strano, Stefano D’Arrigo, Chiara Pantaleoni, Anna Ardissone, Nardo Nardocci, Roberto Esposti and Paolo Cavallari
Appl. Sci. 2020, 10(5), 1606; https://doi.org/10.3390/app10051606 - 28 Feb 2020
Cited by 19 | Viewed by 6341
Abstract
Controlling posture, i.e., governing the ensemble of involuntary muscular activities that manage body equilibrium, represents a demanding function in which the cerebellum plays a key role. Postural activities are particularly important during gait initiation when passing from quiet standing to locomotion. Indeed, several [...] Read more.
Controlling posture, i.e., governing the ensemble of involuntary muscular activities that manage body equilibrium, represents a demanding function in which the cerebellum plays a key role. Postural activities are particularly important during gait initiation when passing from quiet standing to locomotion. Indeed, several studies used such motor task for evaluating pathological conditions, including cerebellar disorders. The linkage between cerebellum maturation and the development of postural control has received less attention. Therefore, we evaluated postural control during quiet standing and gait initiation in children affected by a slow progressive generalized cerebellar atrophy (SlowP) or non-progressive vermian hypoplasia (Joubert syndrome, NonP), compared to that of healthy children (H). Despite the similar clinical evaluation of motor impairments in NonP and SlowP, only SlowP showed a less stable quiet standing and a shorter and slower first step than H. Moreover, a descriptive analysis of lower limb and back muscle activities suggested a more severe timing disruption in SlowP. Such differences might stem from the extent of cerebellar damage. However, literature reports that during childhood, neural plasticity of intact brain areas could compensate for cerebellar agenesis. We thus proposed that the difference might stem from disease progression, which contrasts the consolidation of compensatory strategies. Full article
(This article belongs to the Special Issue Movement Biomechanics and Motor Control)
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12 pages, 2216 KB  
Article
Clinical and Functional Characterization of the Recurrent TUBA1A p.(Arg2His) Mutation
by Jennifer F. Gardner, Thomas D. Cushion, Georgios Niotakis, Heather E. Olson, P. Ellen Grant, Richard H. Scott, Neil Stoodley, Julie S. Cohen, Sakkubai Naidu, Tania Attie-Bitach, Maryse Bonnières, Lucile Boutaud, Férechté Encha-Razavi, Sheila M. Palmer-Smith, Hood Mugalaasi, Jonathan G. L. Mullins, Daniela T. Pilz and Andrew E. Fry
Brain Sci. 2018, 8(8), 145; https://doi.org/10.3390/brainsci8080145 - 7 Aug 2018
Cited by 19 | Viewed by 7732
Abstract
The TUBA1A gene encodes tubulin alpha-1A, a protein that is highly expressed in the fetal brain. Alpha- and beta-tubulin subunits form dimers, which then co-assemble into microtubule polymers: dynamic, scaffold-like structures that perform key functions during neurogenesis, neuronal migration, and cortical organisation. Mutations [...] Read more.
The TUBA1A gene encodes tubulin alpha-1A, a protein that is highly expressed in the fetal brain. Alpha- and beta-tubulin subunits form dimers, which then co-assemble into microtubule polymers: dynamic, scaffold-like structures that perform key functions during neurogenesis, neuronal migration, and cortical organisation. Mutations in TUBA1A have been reported to cause a range of brain malformations. We describe four unrelated patients with the same de novo missense mutation in TUBA1A, c.5G>A, p.(Arg2His), as found by next generation sequencing. Detailed comparison revealed similar brain phenotypes with mild variability. Shared features included developmental delay, microcephaly, hypoplasia of the cerebellar vermis, dysplasia or thinning of the corpus callosum, small pons, and dysmorphic basal ganglia. Two of the patients had bilateral perisylvian polymicrogyria. We examined the effects of the p.(Arg2His) mutation by computer-based protein structure modelling and heterologous expression in HEK-293 cells. The results suggest the mutation subtly impairs microtubule function, potentially by affecting inter-dimer interaction. Based on its sequence context, c.5G>A is likely to be a common recurrent mutation. We propose that the subtle functional effects of p.(Arg2His) may allow for other factors (such as genetic background or environmental conditions) to influence phenotypic outcome, thus explaining the mild variability in clinical manifestations. Full article
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21 pages, 3355 KB  
Article
Steric Clash in the SET Domain of Histone Methyltransferase NSD1 as a Cause of Sotos Syndrome and Its Genetic Heterogeneity in a Brazilian Cohort
by Kyungsoo Ha, Priya Anand, Jennifer A. Lee, Julie R. Jones, Chong Ae Kim, Debora Romeo Bertola, Jonathan D. J. Labonne, Lawrence C. Layman, Wolfgang Wenzel and Hyung-Goo Kim
Genes 2016, 7(11), 96; https://doi.org/10.3390/genes7110096 - 9 Nov 2016
Cited by 10 | Viewed by 11297
Abstract
Most histone methyltransferases (HMTase) harbor a predicted Su(var)3–9, Enhancer-of-zeste, Trithorax (SET) domain, which transfers a methyl group to a lysine residue in their substrates. Mutations of the SET domains were reported to cause intellectual disability syndromes such as Sotos, Weaver, or Kabuki syndromes. [...] Read more.
Most histone methyltransferases (HMTase) harbor a predicted Su(var)3–9, Enhancer-of-zeste, Trithorax (SET) domain, which transfers a methyl group to a lysine residue in their substrates. Mutations of the SET domains were reported to cause intellectual disability syndromes such as Sotos, Weaver, or Kabuki syndromes. Sotos syndrome is an overgrowth syndrome with intellectual disability caused by haploinsufficiency of the nuclear receptor binding SET domain protein 1 (NSD1) gene, an HMTase at 5q35.2–35.3. Here, we analyzed NSD1 in 34 Brazilian Sotos patients and identified three novel and eight known mutations. Using protein modeling and bioinformatic approaches, we evaluated the effects of one novel (I2007F) and 21 previously reported missense mutations in the SET domain. For the I2007F mutation, we observed conformational change and loss of structural stability in Molecular Dynamics (MD) simulations which may lead to loss-of-function of the SET domain. For six mutations near the ligand-binding site we observed in simulations steric clashes with neighboring side chains near the substrate S-Adenosyl methionine (SAM) binding site, which may disrupt the enzymatic activity of NSD1. These results point to a structural mechanism underlying the pathology of the NSD1 missense mutations in the SET domain in Sotos syndrome. NSD1 mutations were identified in only 32% of the Brazilian Sotos patients in our study cohort suggesting other genes (including unknown disease genes) underlie the molecular etiology for the majority of these patients. Our studies also found NSD1 expression to be profound in human fetal brain and cerebellum, accounting for prenatal onset and hypoplasia of cerebellar vermis seen in Sotos syndrome. Full article
(This article belongs to the Section Human Genomics and Genetic Diseases)
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