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Biomedical subjects

M Lammens

Publications and source records attributed to M Lammens.

At least 19 recordsLinked to original sources

Spine deformities in Charcot-Marie-Tooth 4C caused by SH3TC2 gene mutations.

BACKGROUND: Charcot-Marie-Tooth (CMT) disease is a heterogeneous group of inherited peripheral motor and sensory neuropathies with several modes of inheritance: autosomal dominant, X-linked, and autosomal recessive (AR) CMT. A locus responsible for the demyelinating form of ARCMT was assigned to the 5q23-q33 region (CMT4C) by homozygosity mapping. Recently, 11 mutations were identified in the SH3TC2 (KIAA1985) gene in 12 families with demyelinating ARCMT from Turkish, Iranian, Greek, Italian, or German origin. OBJECTIVE: To identify mutations in the SH3TC2 gene. METHODS: The authors searched for SH3TC2 gene mutations in 10 consanguineous CMT families putatively linked to the CMT4C locus on the basis of haplotype segregation and linkage analysis. RESULTS: Ten families had mutations, eight of which were new and one, R954X, recurrent. Six of the 10 mutations were in exon 11. Onset occurred between ages 2 and 10. Scoliosis or kyphoscoliosis and foot deformities were found in almost all patients and were often inaugural. The median motor nerve conduction velocity values (</=34 m/s) were not correlated with disease duration. The functional disability score was </=3, indicating that the patients could walk without help. Unexpectedly, typical giant axons were observed on biopsies from a large Algerian family. CONCLUSIONS: Charcot-Marie-Tooth type 4C (CMT4C) is less severe than other autosomal recessive (AR) CMT. Intrafamilial variability is important, making phenotype-genotype correlations difficult, but spine deformities are clearly a hallmark of CMT4C. In the presence of scoliosis, a neurologic examination is recommended. Giant axons on biopsies are also suggestive of CMT4C. For genetic analysis, the R954X mutation should be looked for before systematic sequencing of exon 11.

Charcot-Marie-Tooth Disease↗

Distal spinal muscular atrophy as a major feature in adult-onset ataxia telangiectasia.

The authors report four adult-onset ataxia telangiectasia (AT) patients belonging to two families lacking pronounced cerebellar ataxia but displaying distal spinal muscular atrophy. AT was proven by genetic studies showing ATM mutations and a reduced level of ATM. ATM activity, as measured by phosphorylation of p53, was close to normal, indicating that the p53 response is not the only factor in preventing neural damage in anterior horn cells in AT.

Adult↗

Hemorrhagic colloid cyst: case report and review of the literature.

Colloid cysts are benign tumors situated in and connected to the roof of the third ventricle. The clinical presentation is diverse, varying from incidentally found cysts to acute death. This presentation is explained by an acute hydrocephalus due to an obstruction of the cerebrospinal fluid (CSF) flow at the level of the foramina of Monro. Why these lesions cause a sudden obstruction is not clear in most cases. Possible explanations of a sudden deterioration are shifts of the cysts after lumbar puncture or CSF flow obstruction after shunt dysfunction. We add an explanation for the acute deterioration of patients with colloid cysts (ie, hemorrhagic changes in the cysts). This complication has been published only 4 times before, all diagnosed at postmortem examination. A young patient is presented with a recently diagnosed and symptomatic colloid cyst who deteriorated the night before surgery because of intracystic hemorrhage. Despite emergent CSF diversion, our patient remained in a poor clinical condition. We review the literature about this topic and discuss the consequences for the neurosurgical practice.

Adult↗

Macrophage clustering as a diagnostic marker in sural nerve biopsies of patients with CIDP.

BACKGROUND: In adult patients with a slowly progressive demyelinating neuropathy, it may be difficult to distinguish between a hereditary neuropathy and chronic inflammatory demyelinating polyneuropathy (CIDP). The authors previously observed clustering of macrophages around endoneurial blood vessels in sural nerve biopsies from patients with CIDP. OBJECTIVES: To quantitate macrophage clustering around endoneurial blood vessels in CIDP vs hereditary neuropathies. METHODS: The authors studied 21 patients with CIDP, 18 patients with hereditary neuropathies, and 5 normal sural nerves. Numbers of macrophages, T-cells, and blood vessels were counted after immunohistochemical staining. The presence of three or more macrophages around one blood vessel was defined as a cluster. In a subsequent validation analysis, 65 stored biopsy specimens obtained from patients with a chronic neuropathy were re-evaluated for perivascular macrophage clustering according to criteria derived from the quantitative analysis of the first 221 biopsies in a blinded fashion. RESULTS: The percentage of endoneurial vessels with macrophage clusters was higher in CIDP than in hereditary neuropathies (CIDP median = 9.4, range 0 to 48; hereditary NP median = 0, range 0 to 7.7; p < 0.001). The evaluation of the 65 further biopsies showed that the presence of one perivascular macrophage cluster per fascicle proved to be a valid criterion to differentiate between inflammatory and other forms of neuropathy (chi2 test p = 0.0000025, sensitivity 75%, specificity 72%). CONCLUSION: The presence of clusters of macrophages around endoneurial vessels in sural nerve biopsies may serve as a useful additional marker for establishing the pathologic diagnosis of chronic inflammatory demyelinating polyneuropathy (CIDP).

Adult↗

The neuropathology of hereditary congenital facial palsy vs Möbius syndrome.

OBJECTIVE: To characterize the neuropathology of hereditary congenital facial palsy. METHODS: The authors compared brainstem pathology of three members of one family with autosomal dominant congenital facial palsy to that in three age-matched controls. The neuropathologic findings of the familial patients were compared with those of patients with Möbius syndrome. RESULTS: The authors observed a marked decrease in the number of neurons in the facial motor nucleus with corresponding small facial nerve remnants. In the patients with congenital facial palsy the number of facial motoneurons ranged between 280 and 1,680 as compared to 5,030 and 8,700 for controls. No signs of neuronal degeneration or necrosis with neuronal loss, gliosis, or calcifications were present. There were no other abnormalities of the rhombencephalon and its associated structures. The corticospinal tracts were fully developed. In contrast, Möbius syndrome is part of a more complex congenital anomaly of the posterior fossa with hypoplasia of the entire brainstem, including the traversing long tracts, with signs of neuronal degeneration and other congenital brain abnormalities. CONCLUSION: Neuropathologic findings confirm clinical observations that hereditary congenital facial palsy and Möbius syndrome are two different entities with a different pathogenesis.

Abnormalities, Multiple↗

Development and malformations of the human pyramidal tract.

The corticospinal tract develops over a rather long period of time, during which malformations involving this main central motor pathway may occur. In rodents, the spinal outgrowth of the corticospinal tract occurs entirely postnatally, but in primates largely prenatally. In mice, an increasing number of genes have been found to play a role during the development of the pyramidal tract. In experimentally studied mammals, initially a much larger part of the cerebral cortex sends axons to the spinal cord, and the site of termination of corticospinal fibers in the spinal grey matter is much more extensive than in adult animals. Selective elimination of the transient corticospinal projections yields the mature projections functionally appropriate for the pyramidal tract. Direct corticomotoneuronal projections arise as the latest components of the corticospinal system. The subsequent myelination of the pyramidal tract is a slow process, taking place over a considerable period of time. Available data suggest that in man the pyramidal tract develops in a similar way. Several variations in the funicular trajectory of the human pyramidal tract have been described in otherwise normally developed cases, the most obvious being those with uncrossed pyramidal tracts. A survey of the neuropathological and clinical literature, illustrated with autopsy cases, reveals that the pyramidal tract may be involved in a large number of developmental disorders. Most of these malformations form part of a broad spectrum, ranging from disorders of patterning, neurogenesis and neuronal migration of the cerebral cortex to hypoxic-ischemic injury of the white matter. In some cases, pyramidal tract malformations may be due to abnormal axon guidance mechanisms. The molecular nature of such disorders is only beginning to be revealed.

Animals↗

A locus on chromosome 15q for a dominantly inherited nemaline myopathy with core-like lesions.

Nemaline myopathy is a congenital neuromuscular disorder characterized by muscle weakness and the presence of nemaline rods. Five genes have now been associated with nemaline myopathy: alpha-tropomyosin-3 (TPM3), alpha-actin (ACTA1), nebulin (NEB), beta-tropomysin (TPM2) and troponin T (TNNT1). In addition, mutations in the ryanodine receptor gene (RYR1) have been associated with core-rod myopathy. Here we report linkage in two unrelated families, with a variant of nemaline myopathy, with associated core-like lesions. The clinical phenotype consists of muscle weakness in addition to a peculiar kind of muscle slowness. A genome-wide scan revealed a locus for nemaline myopathy with core-like lesions on chromosome 15q21-q23 for both families. Combining the two families gave a two-point LOD score of 10.65 for D15S993. The alpha-tropomyosin-1 gene (TPM1) located within this region is the strongest candidate gene. However, no mutations were found in the protein-coding region of TPM1, although small deletions or mutations in an intron cannot be excluded. The critical region contains few other candidate genes coding for muscle proteins and several genes of unknown function, and has not yet been sequenced completely. The novel phenotype of nemaline myopathy in the two presented families corresponds to an also novel, as yet uncharacterized, genotype.

Adolescent↗

Development and developmental disorders of the human cerebellum.

The human cerebellum develops over a long time, extending from the early embryonic period until the first postnatal years. This protracted development makes the cerebellum vulnerable to a broad spectrum of developmental disorders. The development of the cerebellum occurs in four basic steps: 1) characterization of the cerebellar territory at the midbrain-hindbrain boundary; 2) formation of two compartments for cell proliferation: first, the Purkinje cells and the deep cerebellar nuclei arise from the ventricular zone of the metencephalic alar plate; second, granule cell precursors are formed from a second compartment of proliferation, i. e. the upper rhombic lip; 3) inward migration of the granule cells: granule precursor cells form the external granular layer, from which (and continuing into the first postnatal year), granule cells migrate inwards to their definite position in the internal granular layer, and 4) formation of cerebellar circuitry and further differentiation. The precerebellar nuclei, i. e. the pontine nuclei and the inferior olive, arise from the lower rhombic lip. Developmental disorders of the cerebellum are often accompanied by malformations of the precerebellar nuclei. In this review the development of the cerebellum and some of its more frequent developmental disorders, such as the Dandy-Walker and related midline malformations, and the pontocerebellar hypoplasias, are discussed.

Cerebellar Diseases↗

Pathogenesis of axonal dystrophy and demyelination in alphaA-crystallin-expressing transgenic mice.

We recently described a transgenic mouse strain overexpressing hamster alphaA-crystallin, a small heat shock protein, under direction of the hamster vimentin promoter. As a result myelin was degraded and axonal dystrophy in both central nervous system (especially spinal cord) and peripheral nervous system occurred. Homozygous transgenic mice developed hind limb paralysis after 8 weeks of age and displayed progressive loss of myelin and axonal dystrophy in both the central and peripheral nervous system with ongoing age. Pathologically the phenotype resembled, to a certain extent, neuroaxonal dystrophy. The biochemical findings presented in this paper (activity of the enzymes superoxide dismutase, catalase and transglutamase, myelin protein zero expression levels and blood sugar levels) confirm this pathology and exclude other putative pathologies like Amyothrophic Lateral Sclerosis and Hereditary Motor and Sensory Neuropathy. Consequently, an excessive cytoplasmic accumulation of the transgenic protein or a disturbance of the normal metabolism are considered to cause the observed neuropathology. Therefore, extra-ocular alphaA-crystallin-expressing transgenic mice may serve as a useful animal model to study neuroaxonal dystrophy.

Animals↗

Nijmegen breakage syndrome: a neuropathological study.

Nijmegen breakage syndrome (NBS) is an autosomal recessive disorder, due to defects in the NBS1 gene and belongs to the DNA repair disorders. We report neuropathological findings of the first ever recognised case of the about 60 described cases of NBS. This patient showed severe microcephaly with a simplified gyral pattern especially in the frontal lobes. There were no signs of a degenerative disease, or of a primary migration disorder. A bulge on top of the corpus callosum, most probably a very large remnant of the involuting striae longitudinales mediales et laterales, was found. This can be considered as an incomplete development of limbic structures. The severe diminishment of neocortical neurones suggests an important role for the NBS1 gene in corticogenesis in man, as suggested earlier in animal studies of other DNA-repair genes.

Adolescent↗

A new phenotype of autosomal dominant nemaline myopathy.

We present a five-generation family with a novel phenotype of autosomal dominant nemaline myopathy not linked to the three genes known to be causative for nemaline myopathy (alpha-tropomyosin-3, nebulin, and alpha-actin). Although there was muscle weakness in the neck flexors and proximal muscles of the limbs, as found in other families, facial, ankle dorsiflexor and respiratory muscles were normal. The most remarkable clinical feature was a peculiar kind of slowness in movement not reported previously in nemaline myopathy.

Adult↗

MECP2 mutation in a boy with severe neonatal encephalopathy: clinical, neuropathological and molecular findings.

We describe the clinical and neuropathological presentation of a male with an MECP2 mutation whose sister has Rett syndrome (RS). He presented with severe neonatal encephalopathy and died at the age of 13 months. Mutation analysis of the MECP2 gene demonstrated a 488 - 489 del mutation in his and his sister's copies of the gene. Post mortem examination revealed bilateral polymicrogyria in the perisylvian region. This malformation was visibly more severe than previously described in females with RS and another male with an MECP2 mutation. As bilateral polymicrogyria was described in congenital perisylvian syndrome, the presented patient could be regarded as having suffered from a severe form of this syndrome. We conclude that MECP2 screening should be considered in males with severe neonatal encephalopathy and in males and females with a bilateral polymicrogyria syndrome.

Brain Diseases↗

Mononeuropathy multiplex as the initial manifestation of neurofibromatosis type 2.

The authors report a patient with neurofibromatosis type 2 (NF2) presenting with an axonal mononeuropathy multiplex. Sural nerve biopsy showed small scattered groups of Schwann cells transformed into irregular branching cells with abnormal cell-cell contacts. The authors hypothesize that defective Schwann cell function, due to inactivation of the NF2 gene product merlin, leads to changes in morphology, cell-cell contact, and growth, and finally to degeneration of axons.

Axons↗