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Dysregulation of mTOR signalling is a converging mechanism in lissencephaly.

Cerebral cortex development in humans is a highly complex and orchestrated process that is under tight genetic regulation. Rare mutations that alter gene expression or function can disrupt the structure of the cerebral cortex, resulting in a range of neurological conditions1. Lissencephaly ('smooth brain') spectrum disorders comprise a group of rare, genetically heterogeneous congenital brain malformations commonly associated with epilepsy and intellectual disability2. However, the molecular mechanisms underlying disease pathogenesis remain unknown. Here we establish hypoactivity of the mTOR pathway as a clinically relevant molecular mechanism in lissencephaly spectrum disorders. We characterized two types of cerebral organoid derived from individuals with genetically distinct lissencephalies with a recessive mutation in p53-induced death domain protein 1 (PIDD1) or a heterozygous chromosome 17p13.3 microdeletion leading to Miller-Dieker lissencephaly syndrome (MDLS). PIDD1-mutant organoids and MDLS organoids recapitulated the thickened cortex typical of human lissencephaly and demonstrated dysregulation of protein translation, metabolism and the mTOR pathway. A brain-selective activator of mTOR complex 1 prevented and reversed cellular and molecular defects in the lissencephaly organoids. Our findings show that a converging molecular mechanism contributes to two genetically distinct lissencephaly spectrum disorders.

Humans

Lissencephaly.

The first reported case of lissencephaly resulting from a consanguinous union strengthens the supposition that in some cases, it is transmitted as an autosomal recessive trait. Comparison of this case with a sporadically occurring case of lissencephaly, with different cortical morphology, suggests that lissencephaly may be an example of either varying gene expressivity or genetic heterogeneity. Lissencephaly and pachygyria may eventually be shown to be due to different causes, some inherited, some acquired. The classical examples of lissencephaly are different morphologically from a case in which antenatal cytomegalovirus infection had produced a small smooth brain. This suggests that antenatal viral infections are destructive rather than teratogenic.

Abnormalities, Multiple

The evolution of electroencephalographic features in lissencephaly syndrome.

The electroencephalographic features and their evolutional changes with age were described in three cases of lissencephaly syndrome diagnosed by CT scan. The case with more severe lissencephaly displayed very similar EEG findings. In early or middle infancy when infantile spasms began, EEG showed very high amplitude (more than 400 microV) slow waves mixed with sharp theta-waves. In their clinical course, they showed extreme spindles and in late infancy, the EEG revealed a tendency towards bilaterally synchronous discharges of high amplitude sharp and slow waves. On the other hand, milder forms of lissencephaly showed hypsarrhythmia in early infancy. In the late infancy the EEG showed bisynchronous sharp and slow waves of more than 200 microV. The anomaly ranging from agyria to pachygyria seems to be closely associated with varying EEG abnormalities from extremely high voltage hypsarrhythmia to focal spikes. The very high voltage of hypsarrhythmic patterns and the very low frequency of sharp wave discharges seem to be typical in the most severe lissencephaly or agyria

Agenesis of Corpus Callosum

Lissencephaly (agyria) on computed tomography.

Unusual computed tomographic findings were observed in two infants with similar clinical pictures including delay in developmental milestones, seizures, decerebrated posture, and microcephaly. Computed tomography revealed small brain with widened subarachnoid space, smooth surface of the brain, uniformly enlarged ventricles, wide sylvian cisterns, and lack of insular opercularization. These findings coincide with pathologic features of lissencephaly (agyria), a rare congenital anomaly of the brain due to interruption of neuronal migration.

Brain

Deep clinical and genetic analysis of 17p13.3 region: 38 pediatric patients diagnosed using next-generation sequencing and literature review.

BACKGROUND: Chromosome 17p13.3 is a region of genomic instability associated with different neurodevelopmental diseases. The malformation spectrum of 17p13.3 microdeletions ranges from an isolated lissencephaly sequence to Miller-Dieker syndrome, while 17p13.3 microduplications result in autism, learning disabilities, microcephaly and other brain malformations. This study aims to provide a more comprehensive delineation of the clinical and genetic characteristics associated with 17p13.3 alterations. METHODS: We retrospectively analyzed the next-generation sequencing (NGS) data of more than 40 thousand patients from January 2016 to December 2021 and identified 38 pediatric patients with copy-number variations (CNVs) or single-nucleotide variations (SNVs) in 17p13.3 region. Published patients with CNVs in the 17p13.3 region were also collected and we performed a Chi-square test to compare the phenotype spectrum of microdeletions and microduplications. RESULTS: Among the 27 CNV patients, 20 patients with microdeletions and 7 patients with microduplications were found. PAFAH1B1 was the most frequently deleted gene and CRK was the most frequently duplicated gene. Affected genes in 11 SNV patients included PAFAH1B1 and PRPF8. Developmental delay was the most common abnormality detected in the 38 patients (29/38, 76.3%). Of note, Case 10 presented omphalocele and Case 23 presented scoliosis, webbed neck and bone cyst, all of which were unusual variant phenotypes in this region. The Chi-square test revealed that epilepsy, lissencephaly and short stature were statistically significant with microdeletions, while behavioral abnormalities and hand and foot abnormalities were significant with microduplications (p&#x2009;<&#x2009;0.01). CONCLUSIONS: While PAFAH1B1, YWHAE and CRK are associated with major phenotypes of 17p13.3, RTN4RL1 may be involved in white matter changes and HIC1 might contribute to the occurrence of omphalocele. This study provided a comprehensive understanding of genetic information and phenotype spectrum of the 17p13.3 region.

Humans

Bilateral optic system aplasia with relatively normal eyes.

An infant with extensive CNS malformations and aplasia of the optic system in association with grossly normal-appearing eyes was studied. The neural malformations included partial agenesis of the medulla, pons, and cerebellum and striking maldevelopment of the telencephalon and diencephalon, with lissencephaly, complete arrhinencephaly, and agenesis of the optic system. Because the optic vesicles are outgrowths from the diencephalon, the absence of some structures derived from them is not surprising.

Abnormalities, Multiple

Brief clinical observations: the Neu-Laxova syndrome--a distinct entity.

We report a stillborn girl with a complex syndrome of microcephaly, lissencephaly, severe subcutaneous edema, atrophic muscles, camptodactyly, syndactyly of toes and fingers, hypoplastic genitalia, and numerous structural changes of the brain and eyes. Similar cases have been reported by Neu et al [1], Laxova et al [2] and Povysilova et al [3]. The above-mentioned syndrome complex is a distinct genetic syndrome, for which we propose the eponym "the Neu-Laxova syndrome." Affected patients resemble each other strikingly and there is usually no doubt about the diagnosis. The Neu-Laxova syndrome is apparently transmitted as an autosomal recessive trait.

Abnormalities, Multiple

Prenatal Phenotypic Features of Five Fetal Cases With RNU4ATAC-Associated Microcephalic Osteodysplastic Primordial Dwarfism Type I.

OBJECTIVE: To present the prenatal sonographic features, genomic findings, and pregnancy outcomes of fetuses with biallelic pathogenic RNU4ATAC variants linked to microcephalic osteodysplastic primordial dwarfism type I (MOPD1). METHODS: This retrospective case series includes five prenatal cases with MOPD1. Diagnoses were established by prenatal ultrasound and genetic testing. Genome sequencing (GS) or targeted exome sequencing (ES) detected the variants either prenatally or after termination of pregnancy (TOP). Clinical data including parental demographics, ultrasound findings, and pregnancy outcomes were collected. RESULTS: All fetuses presented with consistent anomalies on ultrasound including intrauterine growth restriction (IUGR), microcephaly, agenesis of the corpus callosum (ACC), intracranial cysts, lissencephaly, and micrognathia. IUGR was the earliest anomaly detected in all five cases. Prenatal ultrasound findings suggestive of skeletal dysplasia were identified in one case. All cases carried biallelic pathogenic RNU4ATAC variants associated with MOPD1. TOP was chosen in four cases. One fetus was delivered at 39&#xa0;+&#xa0;1&#xa0;weeks with genetic diagnosis confirmed at 27&#xa0;weeks. CONCLUSION: IUGR, microcephaly and ACC can be detected in fetuses with MOPD1 at around 18&#xa0;weeks of gestation. Interestingly, skeletal dysplasia was not a consistent prenatal finding. Variants in the non-coding RNU4ATAC gene need to be detected by GS or targeted approaches beyond standard ES.

Humans

A case of Baraitser-Winter cerebrofrontofacial syndrome diagnosed by whole-exome sequencing.

Here we report a heterozygous missense variant in the ACTB gene, NM_001101.5:c.209C>T (p.Pro70Leu), detected in a case of a mildly affected infant with Baraitser-Winter cerebrofrontofacial syndrome, characterized by unique craniofacial features, coloboma and mild developmental delay, but without lissencephaly. Baraitser-Winter cerebrofrontofacial syndrome cases with a similar mild phenotype have been reported to have the same variant in different populations, suggesting a genotype-phenotype correlation in this syndrome.

Journal Article