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Abnormal motoneuron migration, differentiation, and axon outgrowth in spinal muscular atrophy
Goran Simic1, Mihovil Mladinov, Durdica Seso Simic
1Department of Neuroscience, School of Medicine, Croatian Institute for Brain Research, Medical School Zagreb, Zagreb University, Salata 12, 10000 Zagreb, Croatia. gsimic@hiim.hr
Abstract:
The role of heterotopic (migratory) motoneurons (HMN) in the pathogenesis of spinal muscular atrophy (SMA) is still controversial. We examined the occurrence and amount of HMN in spinal cord tissue from eight children with SMA (six with SMA-I and two with SMA-II). All affected subjects were carrying a homozygous deletion of exon 7 in the SMN1 gene. Unlike controls, virtually free from HMN, all SMA subjects showed a significant number of HMN at all levels of the spinal cord. Heterotopic neurons were hyperchromatic, located mostly in the ventral white matter and had no axon or dendrites. More than half of the HMN were very undifferentiated, as judged from their lack of immunoreactivity for NeuN and MAP2 proteins. Small numbers of more differentiated heterotopic neurons were also found in the dorsal and lateral white matter region. As confirmed by ultrastructural analysis, in situ end labeling (ISEL) and CD68 immunoreactivity, HMN in the ventral outflow were found to have no synapses, to activate microglial cells, and to eventually die by necrosis. An unbiased quantitative analysis showed a significant negative correlation between age of SMA subjects (a reflection of the clinical severity) and the number of HMN. Subjects who died at older ages had increased number of GFAP-positive astrocytes. Complementing our previous report on motoneuron apoptosis within the ventral horns in SMA, we now propose that abnormal migration, differentiation, and lack of axonal outgrowth may induce motoneuron apoptosis predominantly during early stages, whereas a slower necrosis-like cell death of displaced motoneurons which "escaped" apoptosis characterizes later stages of SMA.
Insights
Heterotopic motoneurons (HMN) are abundant in spinal muscular atrophy (SMA) spinal cords, unlike controls. These abnormal neurons undergo necrosis, with their numbers correlating inversely with patient age and disease severity.
Area of Science:
- Neuroscience
- Pathology
- Genetics
Background:
- The role of heterotopic (migratory) motoneurons (HMN) in spinal muscular atrophy (SMA) pathogenesis remains unclear.
- SMA is characterized by a homozygous deletion of exon 7 in the SMN1 gene, leading to motoneuron degeneration.
Purpose of the Study:
- To investigate the presence, characteristics, and fate of HMN in SMA spinal cord tissue.
- To correlate HMN occurrence with disease severity and patient age in SMA.
Main Methods:
- Analysis of spinal cord tissue from eight SMA patients (SMA-I and SMA-II) and controls.
- Immunohistochemistry for neuronal markers (NeuN, MAP2), microglial marker (CD68), and astrocyte marker (GFAP).
- Ultrastructural analysis and in situ end labeling (ISEL) to assess cell death and synaptic activity.
Main Results:
- All SMA subjects exhibited significant numbers of HMN across spinal cord levels, absent in controls.
- HMN were predominantly located in the ventral white matter, often undifferentiated, lacking axons/dendrites, synapses, and activating microglia.
- A negative correlation was observed between HMN numbers and patient age (disease severity); older patients showed increased GFAP-positive astrocytes.
Conclusions:
- Abnormal migration, differentiation, and lack of axonal outgrowth of HMN contribute to SMA pathogenesis.
- Early-stage SMA involves motoneuron apoptosis, while later stages are characterized by necrosis of displaced HMN.
- HMN cell death mechanisms evolve with disease progression, impacting overall SMA pathology.
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