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Lissencephaly with agenesis of corpus callosum and rudimentary dysplastic cerebellum: a subtype of lissencephaly with cerebellar hypoplasia.

Lissencephaly with agenesis of the corpus callosum and rudimentary dysplastic cerebellum may represent a subset of lissencephaly with cerebellar hypoplasia (LCH) of unknown etiology, one that is distinct from other types of LCH. We present a detailed neuropathological description of an autopsy brain from a 7-day-old neonate born at 38-gestational weeks, presenting with this malformation. The brain was severely hydrocephalic and totally agyric. The corpus callosum was absent and deep gray matter structures indistinct. A rudimentary dysplastic cerebellum, dysplastic olivary nuclei and nearly complete absence of corticospinal tracts were also noted. Microscopic examination revealed various types of dysplastic and malformative features throughout the brain in addition to the classic four-layered neocortical structure characteristic of type I lissencephaly. Unique features in the present case were (1) bilateral periventricular undulating cortical ribbon-like structures mimicking fused gyri and sulci, associated with aberrant reelin expression, (2) large dysplastic neocortical neurons positive for phosphorylated neurofilament, calbindin-D28K, tuberin, hamartin, doublecortin, LIS1, reelin and Dab1, (3) derangement of radial glial fibers, and (4) disorganized cerebellar cortex and heterotopic gray matter composed exclusively of granule cells in the cerebellar deep white matter. The clinicopathological features in the present case are suggestive of a distinct category of lissencephaly with cerebellar involvement. We suggest a possible classification of this unique case among the LCH syndromes.

Agenesis of Corpus Callosum↗

Point mutations and an intragenic deletion in LIS1, the lissencephaly causative gene in isolated lissencephaly sequence and Miller-Dieker syndrome.

Classical lissencephaly (smooth brain) or generalized agyria-pachygyria is a severe brain malformation which results from an arrest of neuronal migration at 9-13 weeks gestation. It has been observed in several malformation syndromes including Miller-Dieker syndrome (MDS) and isolated lissencephaly sequence (ILS). A gene containing beta-transducin like repeats, now known as LIS1, was previously mapped to the ILS/MDS chromosome region on 17p13.3. We recently localized the classical lissencephaly critical region to the LIS1 gene locus by molecular analysis of key ILS and MDS patients. We have now characterized the structure of LIS1, which consists of 11 exons, and have searched for the presence of subtle mutations in 19 ILS patients who showed no gross rearrangements of LIS1. Single strand conformational polymorphism (SSCP) analysis revealed band-shifts for three patients, each involving a different coding exon, which were not observed in their respective parental DNAs. Sequence analysis identified these de novo mutations as dA --> dG transition in exon VI at nucleotide 446, a dC --> dT transition in exon VIII at nucleotide 817, and a 22 bp deletion at the exon IX-intron 9 junction from nucleotide 988 to 1,002+7, which causes skipping of exon IX in the mature LIS1 transcript. These changes are predicted to result in an H149R amino acid substitution, an R273X premature translation termination, and abolition of amino acids 301-334, in the respective LIS1 proteins. These data thus confirm LIS1 as the gene responsible for classical lissencephaly in ILS and MDS.

1-Alkyl-2-acetylglycerophosphocholine Esterase↗

Syndromes with lissencephaly. I: Miller-Dieker and Norman-Roberts syndromes and isolated lissencephaly.

Lissencephaly (smooth-brain) is an abnormality of brain development characterized by incomplete neuronal migration and a smooth cerebral surface. At least 2, and possibly more, distinct pathological types occur, each associated with several distinct syndromes. In this paper, the manifestations of 3 disorders associated with type I (classical) lissencephaly are discussed, including the Miller-Dieker syndrome with or without deficiency of 17p13, Norman-Roberts syndrome, and isolated lissencephaly sequence.

Abnormalities, Multiple↗

Syndromes with lissencephaly. II: Walker-Warburg and cerebro-oculo-muscular syndromes and a new syndrome with type II lissencephaly.

Lissencephaly (smooth brain) is an abnormality of brain development characterized by incomplete neuronal migration and a smooth cerebral surface. At least two distinct pathological types occur, each associated with several recognized syndromes. In this paper, we report on the clinical and pathologic manifestations of four additional patients and classify and delineate three separate disorders with type II lissencephaly. We also report on a previously undescribed abnormality in one of the four patients--dilated rough endoplasmic reticulum cisternae containing an unknown osmiophilic secretory product, probably a glycoprotein.

Abnormalities, Multiple↗

A Golgi study of the cerebral cortex in Fukuyama-type congenital muscular dystrophy, Walker-type "lissencephaly," and classical lissencephaly.

The cortical neuronal organization of the brain was studied and compared in three conditions. The neurons in the polymicrogyric cortex from a subject with Fukuyama-type congenital muscular dystrophy and from a child with ocular dysplasia (Walker-type lissencephaly) were large, irregularly aligned, and not completely mature. In the former condition, the abnormal neuronal arrangement was predominantly in the superficial cortex; in the latter both the superficial and deep cortex were involved. These two diseases may have a similar pathogenetic mechanism. In classical lissencephaly without evidence of other disease manifestations, the neurons were arranged in a radial pattern with heterotopia but no large neurons. The pathogenesis of these conditions is discussed.

Cerebral Cortex↗

[EEG changes in type I and type II lissencephaly].

Lissencephaly syndromes are rare disturbances of the neuronal migration with agyria and/or pachygyria. Typical patterns in the EEG of 5 children with lissencephaly are presented. Rhythmic alpha- or beta-waves with high amplitudes of diffuse or fronto-precentral localisation are characteristic in type I lissencephaly. In type II lissencephaly initially theta- or delta-waves of somewhat lower amplitude are observed. Sharp and slow wave-complexes of very high amplitude are found more often in type I lissencephaly. They seem to correlate with the severity of the brain malformation and the epilepsy. In both types of lissencephaly the spatial organisation of the background activity and the sleep-wake differentiation are absent. The EEG of most type I lissencephalies show no reactivity to intravenous benzodiazepines. With increasing age the frequency of the background activity and of the high amplitude rhythmic waves decrease in type I and increase in type II lissencephaly. A complete dedifferentiation of the EEG tracings has been observed in the course of type I lissencephaly. Lissencephaly is diagnosed by imaging techniques. However, with a high probability lissencephaly can be suspected already by its EEG.

Abnormalities, Multiple↗

Lissencephaly. A human brain malformation associated with deletion of the LIS1 gene located at chromosome 17p13.

OBJECTIVE: We review the clinical phenotype, pathological changes, and results of cytogenetic and molecular genetic studies in 90 probands with lissencephaly (smooth brain) with emphasis on patients with the classical form (type I). We also describe the recent discovery of the lissencephaly gene (LIS1), deletions of which have been implicated as the cause of this disorder in many patients. DATA SOURCES: We have performed clinical, cytogenetic, and molecular genetic studies of 25 probands with Miller-Dieker syndrome and 65 probands with isolated lissencephaly sequence (ILS). We have further subdivided patients with ILS into those with classical lissencephaly and those with lissencephaly variants. STUDY SELECTION: We consider primarily our own published and unpublished data, but include references to studies of other series of patients with lissencephaly. DATA SYNTHESIS: Visible cytogenetic deletions of 17p13.3 were detected in 14 of 25 Miller-Dieker syndrome probands, and either visible cytogenetic or submicroscopic deletions in 23 (92%) of 25. Submicroscopic deletions were detected in eight of 45 patients with all types of ILS. If only ILS patients with the classical form are considered, we detected deletions in eight (38%) of 21. CONCLUSIONS: Deletions of the lissencephaly critical region in chromosome 17p13.3, including LIS1, appear to be the most frequent cause of classical lissencephaly. Molecular cytogenetic studies, particularly fluorescence in situ hybridization, should be performed in all such patients. LIS1 shows homology to genes involved in signal transduction, which may be its function in development of the telencephalon. Other genetic causes of classical lissencephaly and genetic and nongenetic causes of other types of lissencephaly exist and are under study.

Brain↗

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↗

Genetic factors in lissencephaly syndromes: a review.

Lissencephaly is a sign of various genetic and non-genetic conditions and a constant feature in the so-called lissencephaly syndromes. Type I lissencephaly in the Miller-Dieker syndrome (MDS) and the isolated lissencephaly sequence (ILS) is differentiated from type II lissencephaly in the Walker-Warburg (hydrocephalus, agyria, retinal dysplasia with or without encephalocele, HARD +/- E) syndrome and related conditions (e.g. muscle-eye-brain syndrome). In about 90% of patients with MDS structural defects have been confirmed in the short arm of chromosome 17 (p13.3), detectable by classical cytogenetic methods, fluorescence in situ hybridisation (FISH), or molecular genetic techniques. The identification of unbalanced inversions and translocations is of particular importance because of the risk of their recurrence, while deletions and ring chromosomes are mainly sporadic. Recently, submicroscopic deletions have also been reported in ILS, providing evidence that lissencephaly in MDS and ILS is caused by deletions of the same gene(s) in 17p13.3 and that MDS may be considered to be a "contiguous gene syndrome." Syndromes featuring lissencephaly type II (HARD +/- E and related conditions) are most probably autosomal-recessively inherited. Neither the location of the genes involved nor the nature of the mutations are known at present. It is also unknown whether HARD +/- E and muscle-eye-brain syndrome are allelic.

Brain↗

Genotypically defined lissencephalies show distinct pathologies.

Lissencephaly is traditionally divided into 2 distinct pathologic forms: classic (type I) and cobblestone (type II). To date, mutations in 4 genes, LIS1, DCX, RELN, and ARX, have been associated with distinct type I lissencephaly syndromes. Each of these genes has been shown to play a role in normal cell migration, consistent with the presumed pathogenesis of type I lissencephaly. Based on these data, we hypothesized that all forms of radiographically defined type I lissencephaly independent of genotype would be pathologically similar. To test this hypothesis, we examined brains from 16 patients, including 15 lissencephalic patients and one patient with subcortical band heterotopia. Of these 16 patients, 6 had LIS1 deletions, 2 had DCX mutations, and 2 had ARX mutations. In addition, 6 patients had no defined genetic defect, although the patient with subcortical band heterotopia exhibited the same pattern of malformation expected with an XLIS mutation. In all cases, the cortex was thickened; however, the topographic distribution of the cortical pathology varied, ranging from frontal- to occipital-biased pathology to diffuse involvement of the neocortex. Although brains with LIS1 deletions exhibited the classic 4-layer lissencephalic architecture, patients with DCX and ARX mutations each had unique cytoarchitectural findings distinct from LIS1. Furthermore, 2 of the 5 patients with no known genetic defect showed a fourth type of histopathology characterized by a 2-layered cortex. Interestingly, the 2 brains with the fourth type of lissencephaly showed profound brainstem and cerebellar abnormalities. In summary, we identified at least 4 distinct histopathologic subtypes of lissencephaly that stratify with the underlying genetic defect. Based on these data, a new classification for lissencephaly is proposed that incorporates both pathologic and genetic findings.

1-Alkyl-2-acetylglycerophosphocholine Esterase↗

Differences in the gyral pattern distinguish chromosome 17-linked and X-linked lissencephaly.

BACKGROUND: Classical lissencephaly or "smooth brain" is a human brain malformation that consists of diffuse agyria and pachygyria. Two genes associated with classical lissencephaly have recently been cloned-LIS1 from chromosome 17p13.3 and XLIS (also called DCX) from Xq22.3-q23. OBJECTIVE: We performed genotype-phenotype analysis in children with lissencephaly associated with mutations of different genes. METHODS: We compared the phenotype, especially brain imaging studies, in a series of 48 children with lissencephaly, including 12 with Miller-Dieker syndrome (MDS), which is associated with large deletions of LIS1 and other genes in the region, 24 with isolated lissencephaly sequence caused by smaller LIS1 deletions or mutations, and 12 with isolated lissencephaly sequence caused by XLIS mutations. RESULTS: We found consistent differences in the gyral patterns, with the malformation more severe posteriorly in individuals with LIS1 mutations and more severe anteriorly in individuals with XLIS mutations. Thus, mutations of LIS1 are associated with a posterior-to-anterior gradient of lissencephaly, whereas mutations of XLIS are associated with an anterior-to-posterior gradient. We also confirmed differences in severity between MDS and ILS17. Hypoplasia of the cerebellar vermis proved to be more common with XLIS mutations. CONCLUSION: It is often possible to predict the gene mutation from careful review of brain imaging studies.

Brain↗

Lissencephaly syndromes: clinical aspects.

We report clinical and neurophysiological findings in six children (three female, three male) with type I lissencephaly and three children (all female) with type II lissencephaly (Walker-Warburg syndrome). In type I lissencephaly the diagnosis is based only on electroencephalographic (EEG) signs, whereas in type II lissencephaly the diagnosis rests on clinical signs. In type I lissencephaly the EEG typically shows high alpha-beta activity, which is not seen in type II lissencephaly.

Abnormalities, Multiple↗

Familial lissencephaly with extreme neopallial hypoplasia.

Two siblings, male and female, with identical lethal brain malformation are described. Their anomaly is characterized by very low brain weight, lissencephaly, wide ventricles and thin neopallium (colpocephaly) varying in thickness between 0.2 and 3 mm. The neocortex is four layered as in classic lissencephaly. Brainstem and cerebellar anomalies are more extensive than in cases hitherto described in detail. No extracranial malformation is found. The parental karyotypes are normal. The relationship to previously reported familial cases of lissencephaly and several inherited syndromes featuring lissencephaly is discussed. The present family may represent a severe expression of previously described autosomal recessive lissencephaly without extracranial anomaly or may represent a new genetic lissencephaly syndrome.

Brain↗

The location and type of mutation predict malformation severity in isolated lissencephaly caused by abnormalities within the LIS1 gene.

Lissencephaly is a cortical malformation secondary to impaired neuronal migration resulting in mental retardation, epilepsy and motor impairment. It shows a severity spectrum from agyria with a severely thickened cortex to posterior band heterotopia only. The LIS1 gene on 17p13.3 encodes a 45 kDa protein named PAFAH1B1 containing seven WD40 repeats. This protein is required for optimal neuronal migration by two proposed mechanisms: as a microtubule-associated protein and as one subunit of the enzyme platelet-activating factor acetylhydrolase. Approximately 65% of patients with isolated lissencephaly sequence (ILS) show intragenic mutations or deletions of the LIS1 gene. We analyzed 29 non-deletion ILS patients carrying a mutation of LIS1 and we report 15 novel mutations. Patients with missense mutations had a milder lissencephaly grade compared with those with mutations leading to a shortened or truncated protein (P = 0.022). Early truncation/deletion mutations in the putative microtubule-binding domain resulted in a more severe lissencephaly than later truncation/deletion mutations (P < 0.001). Our results suggest that the lissencephaly severity in ILS caused by LIS1 mutations may be predicted by the type and location of the mutation. Using a spectrum of ILS patients, we confirm the importance of specific WD40 repeats and a putative microtubule-binding domain for PAFAH1B1 function. We suggest that the small number of missense mutations identified may be due to underdiagnosis of milder phenotypes and hypothesize that the greater lissencephaly severity seen in Miller-Dieker syndrome may be secondary to the loss of another cortical development gene in the deletion of 17p13.3.

1-Alkyl-2-acetylglycerophosphocholine Esterase↗

Neuroimaging in lissencephalies.

Based on the published literature and on our own experiences in the imaging of lissencephalies with ultrasound (US), computed tomography (CT) and magnetic resonance imaging (MRI) we propose a strategy for the use of the different methods depending on the clinical symptoms and the age of the patient. In newborns and babies with suspected lissencephaly ultrasound should be used as the first method. If there is a cortical malformation and a more thorough examination seems necessary, CT can be used in type I lissencephaly. However, due to its excellent grey-white matter contrast MRI is the best method for imaging of lissencephalies. Especially in the diagnosis of type II lissencephaly, MRI is definitely superior to CT and US, and so it should be used in all patients with Walker-Warburg syndrome and other congenital muscular dystrophies as well as in all doubtful cases. It must always be remembered that the extent of the cortical dysplasias is quite variable, as is the presence of further malformations.

Cerebral Cortex↗

Neuropathology of lissencephalies.

The neuropathological findings at autopsy in four cases of type I and three of type II lissencephaly are presented. Type I lissencephaly is characterized by agyriapachygyria with a markedly thickened cerebral cortex with four coarse histological layers. The normally myelinated white matter, often with neuronal heterotopias, is very narrow, and the gray-to-white matter ratio is inverted (about 4:1); there are no white-gray interdigitations. Claustrum and capsula extrema are absent. Ventricular dilatation is present, especially of the occipital horns. In the hypoplastic brain stem large olivary heterotopias can often be observed. Severe cerebellar malformations, obstructive hydrocephalus, severe eye abnormalities, and congenital muscular dystrophy are not seen. Clinically, type I lissencephaly presents as "isolated lissencephaly sequence" or as "Miller-Dieker syndrome" with characteristic facial dysmorphism. The long survival of 20 years achieved by one of our patients is very uncommon. Type II lissencephaly is characterized by widespread agyria. Usually, obstructive hydrocephalus is present with a thin cerebral mantle showing a slightly thickened cortex and a narrow, hypomyelinated white matter often with neuronal heterotopias (gray-to-white matter ratio about 1:1). The border between gray and white matter is blurred. Claustrum and capsula extrema are absent. Histologically, the cortex appears disorganized without layering; widespread leptomeningeal gliomesenchymal proliferations and glioneuronal heterotopias are present.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Spatial and temporal development of the gliovascular tissue in type II lissencephaly.

Type II lissencephaly is a complex cortical malformation in which mesenchymal and central nervous components are intermingled. It is generally believed that the histological pattern is created by migration of heterotopic neuroblasts into the leptomeninges through defects in the superficial basement membrane. Defects of the extracellular matrix have been suggested to be the primary cause of type II lissencephaly. To elucidate the underlying pathogenetic mechanisms, we immunostained extracellular matrix and basement membrane components of the cerebral cortex from six fetal and two infantile brains. We found that the pattern of collagen subtypes I, III and VI was not altered in type II lissencephaly brains when compared to normal controls. As to the pathogenesis of type II lissencephaly, a polymicrogyria-like pattern is created, which results in considerable cortical enlargement. The microgyri do not fuse but remain separated from each other by gliovascular tissue, i.e., leptomeninges which contain astrocytes. At the interface between the enlarged brain surface and the gliovascular tissue, neuronal migration takes place through gaps in the external basement membrane. Thus, the cortical dysplasia encountered in type II lissencephaly is only due to a limited amount to neuronal heterotopia in the leptomeninges.

Astrocytes↗