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1.
Am J Hum Genet ; 105(6): 1126-1147, 2019 12 05.
Article in English | MEDLINE | ID: mdl-31735293

ABSTRACT

The redox state of the neural progenitors regulates physiological processes such as neuronal differentiation and dendritic and axonal growth. The relevance of endoplasmic reticulum (ER)-associated oxidoreductases in these processes is largely unexplored. We describe a severe neurological disorder caused by bi-allelic loss-of-function variants in thioredoxin (TRX)-related transmembrane-2 (TMX2); these variants were detected by exome sequencing in 14 affected individuals from ten unrelated families presenting with congenital microcephaly, cortical polymicrogyria, and other migration disorders. TMX2 encodes one of the five TMX proteins of the protein disulfide isomerase family, hitherto not linked to human developmental brain disease. Our mechanistic studies on protein function show that TMX2 localizes to the ER mitochondria-associated membranes (MAMs), is involved in posttranslational modification and protein folding, and undergoes physical interaction with the MAM-associated and ER folding chaperone calnexin and ER calcium pump SERCA2. These interactions are functionally relevant because TMX2-deficient fibroblasts show decreased mitochondrial respiratory reserve capacity and compensatory increased glycolytic activity. Intriguingly, under basal conditions TMX2 occurs in both reduced and oxidized monomeric form, while it forms a stable dimer under treatment with hydrogen peroxide, recently recognized as a signaling molecule in neural morphogenesis and axonal pathfinding. Exogenous expression of the pathogenic TMX2 variants or of variants with an in vitro mutagenized TRX domain induces a constitutive TMX2 polymerization, mimicking an increased oxidative state. Altogether these data uncover TMX2 as a sensor in the MAM-regulated redox signaling pathway and identify it as a key adaptive regulator of neuronal proliferation, migration, and organization in the developing brain.


Subject(s)
Brain Diseases/pathology , Brain/abnormalities , Developmental Disabilities/pathology , Membrane Proteins/metabolism , Mitochondria/metabolism , Thioredoxins/metabolism , Adolescent , Adult , Brain Diseases/genetics , Brain Diseases/metabolism , Child , Child, Preschool , Cohort Studies , Developmental Disabilities/genetics , Developmental Disabilities/metabolism , Female , Fibroblasts/metabolism , Fibroblasts/pathology , Follow-Up Studies , Humans , Infant , Infant, Newborn , Male , Membrane Proteins/genetics , Mitochondria/pathology , Oxidation-Reduction , Prognosis , Skin/metabolism , Skin/pathology , Thioredoxins/genetics , Transcriptome
2.
Brain ; 142(4): 867-884, 2019 04 01.
Article in English | MEDLINE | ID: mdl-30879067

ABSTRACT

Recessive mutations in RTTN, encoding the protein rotatin, were originally identified as cause of polymicrogyria, a cortical malformation. With time, a wide variety of other brain malformations has been ascribed to RTTN mutations, including primary microcephaly. Rotatin is a centrosomal protein possibly involved in centriolar elongation and ciliogenesis. However, the function of rotatin in brain development is largely unknown and the molecular disease mechanism underlying cortical malformations has not yet been elucidated. We performed both clinical and cell biological studies, aimed at clarifying rotatin function and pathogenesis. Review of the 23 published and five unpublished clinical cases and genomic mutations, including the effect of novel deep intronic pathogenic mutations on RTTN transcripts, allowed us to extrapolate the core phenotype, consisting of intellectual disability, short stature, microcephaly, lissencephaly, periventricular heterotopia, polymicrogyria and other malformations. We show that the severity of the phenotype is related to residual function of the protein, not only the level of mRNA expression. Skin fibroblasts from eight affected individuals were studied by high resolution immunomicroscopy and flow cytometry, in parallel with in vitro expression of RTTN in HEK293T cells. We demonstrate that rotatin regulates different phases of the cell cycle and is mislocalized in affected individuals. Mutant cells showed consistent and severe mitotic failure with centrosome amplification and multipolar spindle formation, leading to aneuploidy and apoptosis, which could relate to depletion of neuronal progenitors often observed in microcephaly. We confirmed the role of rotatin in functional and structural maintenance of primary cilia and determined that the protein localized not only to the basal body, but also to the axoneme, proving the functional interconnectivity between ciliogenesis and cell cycle progression. Proteomics analysis of both native and exogenous rotatin uncovered that rotatin interacts with the neuronal (non-muscle) myosin heavy chain subunits, motors of nucleokinesis during neuronal migration, and in human induced pluripotent stem cell-derived bipolar mature neurons rotatin localizes at the centrosome in the leading edge. This illustrates the role of rotatin in neuronal migration. These different functions of rotatin explain why RTTN mutations can lead to heterogeneous cerebral malformations, both related to proliferation and migration defects.


Subject(s)
Cell Cycle Proteins/genetics , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/physiology , Adult , Brain/pathology , Carrier Proteins/genetics , Cell Cycle/physiology , Cilia/metabolism , Female , Genetic Association Studies/methods , HEK293 Cells , Humans , Induced Pluripotent Stem Cells/metabolism , Infant , Infant, Newborn , Male , Malformations of Cortical Development/genetics , Malformations of Cortical Development/metabolism , Microcephaly/genetics , Mutation , Nervous System Malformations/genetics , Polymicrogyria/etiology , Polymicrogyria/pathology
3.
Eur J Med Genet ; 61(12): 783-789, 2018 Dec.
Article in English | MEDLINE | ID: mdl-30391508

ABSTRACT

Heterozygous gain of function mutations in the ZIC1 gene have been described with syndromic craniosynostosis, variable cerebral or cerebellar abnormalities and mild to moderate developmental delay. Deletion of chromosome 3q25.1 including both adjacent ZIC1 and ZIC4 genes have been described as a cause of variable cerebellar abnormalities including Dandy-Walker malformation. We report two siblings presenting with neonatal microcephaly, agenesis of the corpus callosum, brachycephaly with reduced volume of the posterior fossa, cerebellar and pons hypoplasia, scoliosis and tethered cord (closed neural tube defect). One of the siblings had apparent partial rhombencephalosynapsis. Trio analysis of exome sequencing data revealed a novel heterozygous frameshift mutation in ZIC1 at the end of exon 3 in one sibling and was confirmed by Sanger sequencing in both children. The mutation was not detected in DNA of both parents, which suggests parental gonadal mosaicism. We show that expression of the mutant allele leads to synthesis of a stable abnormal transcript in patient cells, without evidence for nonsense-mediated decay. Craniosynostosis was not present at birth, which explains why ZIC1 mutations were not initially considered. This severe brain malformation indicates that premature closure of sutures can be independent of the abnormal brain development in subjects with pathogenic variants in ZIC1.


Subject(s)
Craniosynostoses/genetics , Malformations of Cortical Development/genetics , Microcephaly/genetics , Transcription Factors/genetics , Adolescent , Agenesis of Corpus Callosum/genetics , Agenesis of Corpus Callosum/physiopathology , Cerebellum/physiopathology , Child , Child, Preschool , Craniosynostoses/physiopathology , Female , Frameshift Mutation , Humans , Infant , Male , Malformations of Cortical Development/physiopathology , Microcephaly/physiopathology , Neural Tube Defects/genetics , Neural Tube Defects/physiopathology , Phenotype , Scoliosis/genetics , Scoliosis/physiopathology
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