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SMN1 gene study in three families in which ALS and spinal muscular atrophy co-exist.

Spinal muscular atrophy (SMA) is caused by SMN1 gene deletions or mutations, and ALS is the most frequent motor neuron condition in adults. The authors describe three families in which ALS and SMA coexist. The authors found that no SOD1 mutation was found within these families; all three ALS cases had at least two SMN1 copies; and an abnormal SMN1 gene locus did not explain the co-occurrence of these two motor neuron disorders in these families.

Amyotrophic Lateral Sclerosis↗

Behavioural problems in children and adolescents with spinal muscular atrophy and their siblings.

Spinal muscular atrophy (SMA) is a chronic illness characterized by loss of motor function. The aim of the study was to investigate behavioural adjustment in 96 children and adolescents with SMA (47 males, 49 females; mean age 11 years 2 months, range 6 to 18 years). Forty-five non-affected siblings (26 males, 19 females; mean age 11 years 6 months, range 6 to 18 years) and 59 normally developing children (33 males, 26 females; mean age 10 years 8 months, range 6 to 18 years) were recruited as control participants. Behavioural symptoms were measured with the Child Behaviour Checklist (CBCL) and disorders were assessed with a structured psychiatric interview (Kinder-DIPS). Of the patients with SMA, 12.5% fulfilled the criteria for an ICD-10 or DSM-IV diagnosis, with separation anxiety disorder being the most common diagnosis. The CBCL total score was in the clinical range for 11.5% of patients, 20% of the siblings, and 11.7% of the control children; the externalizing score rates were 2.1%, 22.2%, and 11.9% respectively; the internalizing score 18.9%, 24.4%, and 13.6% respectively. Comorbid psychopathology was not influenced by sex, IQ, nor severity of SMA, and only externalizing behaviour was correlated to age. In conclusion, children and adolescents with SMA are characterized by a low psychiatric comorbidity not different from control individuals. The group with the highest rate of behavioural problems and with the greatest need for intervention were the non-affected siblings who had a two- to threefold higher rate of behavioural problems than the normative population.

Adolescent↗

Genetic homogeneity between acute and chronic forms of spinal muscular atrophy.

The childhood-onset spinal muscular atrophies (SMAs) describe a heterogeneous group of disorders that selectively affect the alpha motoneuron. We have shown that chronic childhood-onset SMA (SMA II and III) maps to a single locus on chromosome 5q. Acute SMA (SMA Type I/Werdnig-Hoffmann/severe/infantile) is the main cause of heritable infant mortality. Mapping the acute SMA locus by conventional methods is complicated by the rapidly fatal course of the disease and its recessive mode of inheritance. We present here the typing of four inbred acute-SMA families with DNA markers on chromosome 5q and analysis of these together with acute families from our previous study to demonstrate genetic homogeneity between the acute and chronic forms of SMA. The data indicate that the acute SMA locus maps to chromosome 5q11.2-13.3. Two families seem unlinked to 5q markers, raising the possibility of genetic heterogeneity or disease misclassification within the acute and chronic family sets.

Acute Disease↗

Spinal muscular atrophy: molecular genetics and diagnostics.

Spinal muscular atrophy is one of the most common autosomal recessive diseases, affecting approximately one in 10,000 live births and with a carrier frequency of approximately one in 50. Spinal muscular atrophy is caused by a deficiency of the ubiquitous protein survival of motor neuron (SMN), which is encoded by the SMN genes, SMN1 and SMN2. Due to a single nucleotide polymorphism (840C>T), SMN2 produces less full-length transcript than SMN1 and cannot entirely prevent neuronal cell death at physiologic gene dosages. The 38-kDa SMN protein comprises 294 amino acids and is involved in the biogenesis of uridine-rich small nuclear ribonucleoproteins, facilitating their cytoplasmic assembly into the spliceosome. Various animal models have been developed to study the pathogenesis of spinal muscular atrophy, as well as to test novel therapeutics. Common PCR-restriction fragment length polymorphism assays can detect the homozygous absence of SMN1 in approximately 94% of patients with clinically typical spinal muscular atrophy. SMN gene dosage analysis can determine the copy number of SMN1 to detect carriers and patients heterozygous for the absence of SMN1. Due to the genetic complexity and the high carrier frequency, accurate risk assessment and genetic counseling are particularly important. Comprehensive SMA genetic testing, combined with appropriate genetic counseling and risk assessment, provides the most complete evaluation of patients and their families at this time. New technologies, such as monosomal analysis techniques, may be widely available in the future.

Animals↗

Spinal muscular atrophy in the neonate.

Spinal muscular atrophy (SMA) type I is an autosomal recessive disorder characterized by loss of lower motor neurons in the spinal cord. This severe hereditary neurodegenerative disorder is an important cause of morbidity in the neonate and the leading hereditary cause of infant mortality. The characteristic degeneration of anterior horn cells in the spinal cord leads to progressive muscular weakness and atrophy of the skeletal muscles. In SMA type I, the most severe form of SMA, death usually ensues by 2 years of age from respiratory failure or infection. Accurate diagnosis is now available through genetic testing, and progress is being made toward the development of therapy based on understanding of the disease mechanism. The neonatal nurse plays a pivotal role in identifying and caring for these medically fragile infants and in providing support and education for parents and families.

Chromosome Deletion↗

Calf hypertrophy in spinal muscular atrophy.

Two unusual variants of spinal muscular atrophy with gross calf hypertrophy of adolescent onset were studied clinically, electrophysiologically and histologically. There have been reports of several variants within this group of spinal muscular atrophies. In Singapore we encountered 2 patients who had an unusual variant of spinal muscular atrophy not well recognised previously with only 3 reports recorded to date. Our cases presented with gross calf hypertrophy and a slowly progressive clinical course. Nerve conduction studies were normal but electromyogram and muscle biopsies revealed a chronic denervation problem of probable central origin.

Adult↗

Spinal muscular atrophy: untangling the knot?

Spinal muscular atrophy (SMA), a clinically and genetically heterogeneous group of neuromuscular diseases, is a disorder of motor neurones characterised by degeneration of spinal cord anterior horn cells and muscular atrophy. SMA is an autosomal recessive disorder with a carrier frequency of about 1150. Three candidate genes, the survival motor neurone (SMN) gene, the neuronal inhibitory protein (NAIP) gene, and the p44 (subunit of basal transcription factor TFIIH) gene, have been considered as genes involved in this condition. The region spanning these genes has a complex organisation including duplications, repetitive sequences, truncated genes, and pseudogenes, which makes molecular analysis of this condition difficult. Although deletions have been found in the majority of SMA patients, a few microrearrangements (like duplications, missense mutations, microdeletions, and gene conversions) localised in the telomeric form of the SMN gene have also been reported. The function of the protein encoded by the SMN gene is still not fully understood but recent studies have indicated that it is found intracellularly in gems, novel nuclear structures. Its interaction with other proteins suggests a role in mRNA processing and metabolism. Whether the NAIP gene protein and other apoptosis associated proteins are directly involved in the initial stages of neurone degeneration and apoptosis, or acting downstream on the pathological pathway, has been difficult to determine. Further studies will be required to elucidate possible functional interactions between these proteins.

Autoantigens↗

Axonal neuropathy and predominance of type II myofibers in infantile spinal muscular atrophy.

Two affected siblings with infantile spinal muscular atrophy (SMA I) presented with generalized muscular hypotonia, which progressed to early death. Quadriceps muscle biopsy did not show the typical neurogenic pattern of spinal muscular atrophy. The histochemical fiber type determination revealed a predominance of type II fibers without type I hypertrophy, an unprecedented finding in spinal muscular atrophy. Sural nerve biopsy exhibited findings typical for axonal neuropathy. In one patient, electrical stimulation of peripheral nerves showed an inexcitability of motor and sensory nerves. Genetic studies revealed homozygous deletions of the telomeric survival motor neuron (SMN) gene and the neuronal apoptosis inhibitory protein (NAIP) gene in the affected children. This is the second case report of molecular genetically proven spinal muscular atrophy associated with axonal neuropathy. We conclude atypical findings on muscle biopsy and evidence of axonal neuropathy are compatible with the diagnosis of infantile spinal muscular atrophy.

Adult↗

Preimplantation genetic diagnosis of spinal muscular atrophy.

After Duchenne muscular dystrophy, spinal muscular atrophy (SMA) is the most common severe neuromuscular disease in childhood. Since 1995, homozygous deletions in exon 7 of the survival motor neuron (SMN) gene have been described in >90-95% of SMA patients. However, the presence of a highly homologous SMN copy gene complicates the detection of exon 7 deletions. This paper describes the adjustment and evaluation of an established SMN exon 7 polymerase chain reaction (PCR) protocol at the single cell level, and the first preimplantation genetic diagnosis (PGD) of SMA with this PCR protocol. To determine PCR efficiency and allelic loss, 200 leukocytes of normal individuals, SMA carriers and patients, and 25 blastomeres were tested. The PCR efficiency of the SMN exon 7 and the adjacent copy gene sequence, tested in the leukocytes, were 90% and 91% respectively. No allelic loss was detected. One out of 25 blastomeres tested revealed a negative PCR signal for the SMN exon 7 sequence. All 25 showed the copy gene sequence. PGD of SMA was offered to a couple with an affected child homozygous for the SMN exon 7 deletion. After intracytoplasmic sperm injection, four and five embryos could be genotyped for the SMN exon 7 in two cycles respectively. After embryo transfer in the second PGD cycle an ongoing gemelli pregnancy was achieved. This study demonstrates that PGD for SMA is feasible when a previous child is homozygous for the SMN exon 7 deletion.

Adult↗

A novel ASCC1 splice-site variant broadens the phenotypic spectrum of spinal muscular atrophy with congenital bone fractures type 2.

Spinal muscular atrophy with congenital bone fractures type 2 (SMABF2) is an ultra-rare neuromuscular disorder caused by pathogenic variants affecting the ASC-1 complex, most commonly ASCC1. The disorder is typically characterized by severe congenital hypotonia, prenatal or congenital fractures, and early respiratory failure. We report a girl with a novel homozygous intronic donor-site variant, c.95+5G>C, in ASCC1. In contrast to the classic SMABF2 phenotype, she had no congenital fractures and survived until 7 years of age. Her clinical presentation included generalized hypotonia, areflexia, minimal spontaneous movements, dysmorphic features related to fetal hypomobility, progressive respiratory insufficiency requiring tracheostomy and gastrostomy, and cardiac involvement. This case expands both the genetic and phenotypic spectrum of ASCC1-associated disease. The comparatively prolonged survival and absence of congenital fractures suggest that not all ASCC1 variants result in a fully loss-of-function phenotype. However, this interpretation remains hypothetical because functional RNA studies were not performed.

Humans↗

Autosomal dominant distal spinal muscular atrophy in four generations.

Distal spinal muscular atrophy is a rare lower motor neuron disorder that may be difficult to distinguish clinically from type II Charcot-Marie-Tooth disease. We report on clinical and pathologic findings in 13 members of a four-generation extended family with autosomal dominant distal spinal muscular atrophy. The patients developed a slowly progressive lower motor neuron disorder involving mainly the distal lower extremities; onset was from the second to fourth decades. Electromyography and muscle biopsy findings were indicative of motor denervation. Combined silver/cholinesterase/immunocytochemical staining of intramuscular nerve revealed abundant collateral axonal branching in mild disease but marked loss of terminal motor endplate innervation in the more severe state, suggesting decreased growth of motor axon collaterals with disease progression. Multipoint DNA linkage analysis showed that this family's disorder is not linked to the chromosome 5q11.2-13.3 spinal muscular atrophy locus.

Adolescent↗

Identification of a candidate modifying gene for spinal muscular atrophy by comparative genomics.

Spinal muscular atrophy (SMA) is a common recessive disorder characterized by the loss of lower motor neurons in the spinal cord. The disease has been classified into three types based on age of onset and severity. SMA I-III all map to chromosome 5q13 (refs 2,3), and nearly all patients display deletions or gene conversions of the survival motor neuron (SMN1) gene. Some correlation has been established between SMN protein levels and disease course; nevertheless, the genetic basis for SMA phenotypic variability remains unclear, and it has been postulated that the loss of an additional modifying factor contributes to the severity of type I SMA. Using comparative genomics to screen for such a factor among evolutionarily conserved sequences between mouse and human, we have identified a novel transcript, H4F5, which lies closer to SMN1 than any previously identified gene in the region. A multi-copy microsatellite marker that is deleted in more than 90% of type I SMA chromosomes is embedded in an intron of this gene, indicating that H4F5 is also highly deleted in type I SMA chromosomes, and thus is a candidate phenotypic modifier for SMA.

Amino Acid Sequence↗

Spinal muscular atrophy: a delayed development hypothesis.

Spinal muscular atrophy is an inherited neuromuscular disorder. The gene responsible for the disease has been identified and named the SMN gene. This review is prompted by recent advances in understanding cellular function of the SMN gene and its gene product and by the increasing evidence that maturation of all parts of the neuromuscular system is delayed in spinal muscular atrophy patients. We suggest that the timing of developmental changes in motoneurons and muscles is critical for their survival. Delayed maturation of either motoneuron or muscle can cause these cells to die so the molecules that are involved in controlling their rate of maturation are crucial for normal development. We suggest that SMN gene/protein is one such molecule, because the neuromuscular system develops more slowly in spinal muscular atrophy patients, where SMN protein is absent, and in animals models, where SMN protein is reduced.

Child↗

[Molecular basis of spinal muscular atrophy: th SMN gene].

Spinal muscular atrophy (SMA) is an autosomal recessive neuromuscular disease characterized by degeneration and loss of motor neurons of the anterior horn of the spinal cord. The clinical manifestations include proximal symmetric weakness and progressive atrophy of muscle. SMA is classified by age of onset, severity of symptoms, and evolution in three groups: type I, severe or Werdnig-Hoffmann disease, type II or intermediate and type III, moderate-mild, Kugelberg-Welander disease. The identification of the SMN1 gene as determinant of SMA opened new alternatives to study the disease. Most of the patients have deletions and conversion of SMN1 and in a small number of cases, point mutations were detected. There is no obvious genotype-phenotype correlation because homozygous absence of SMN1 was associated to a wide spectrum of manifestations from congenital disease to non symptomatic cases. Modifier factors, such as the number of copies of SMN2, could influence the phenotype. Other possible modifier genes are under study. The SMN gene is expressed in various neuronal populations. However, only motor neurons are responsible for the manifestations of the disease. The SMN protein is part of a complex with various proteins involved in the splicing reaction. This apparent essential function for all cells could be critical in motor neurons. When SMN1 is absent or dysfunctional, the motor neurons could be more sensitive because they have an increased transcription activity. In this situation, other cells and tissues could be protected by genetic or cellular factors still undiscovered.

Alleles↗