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A Quick Phenotypic Neurological Scoring System for Evaluating Disease Progression in the SOD1-G93A Mouse Model of ALS
Published on: October 6, 2015
Two cardinal features of ALS, reduced STMN2 and pathogenic TDP-43, synergize to accelerate motor decline in mice
Kelsey L Krus1, Ana Morales Benitez1, Amy Strickland2
1Department of Developmental Biology, Washington University School of Medicine, St. Louis 63110, United States.
Abstract:
Pathological TDP-43 loss from the nucleus and cytoplasmic aggregation occurs in almost all cases of ALS and half of frontotemporal dementia patients. Stathmin2 (Stmn2) is a key target of TDP-43 regulation and aberrantly spliced Stmn2 mRNA is found in patients with ALS, frontotemporal dementia, and Alzheimer's Disease. STMN2 participates in the axon injury response and its depletion in vivo partially replicates ALS-like symptoms including progressive motor deficits and distal NMJ denervation. The interaction between STMN2 loss and TDP-43 dysfunction has not been studied in mice because TDP-43 regulates human but not murine Stmn2 splicing. Therefore, we generated trans-heterozygous mice that lack one functional copy of Stmn2 and express one mutant TDP-43Q331K knock-in allele to investigate whether reduced STMN2 function exacerbates TDP-43-dependent pathology. Indeed, we observe synergy between these two alleles, resulting in an early onset, progressive motor deficit. Surprisingly, this behavioral defect is not accompanied by detectable neuropathology in the brain, spinal cord, peripheral nerves or at neuromuscular junctions (NMJs). However, the trans-heterozygous mice exhibit abnormal mitochondrial morphology in their distal axons and NMJs. As both STMN2 and TDP-43 affect mitochondrial dynamics, and neuronal mitochondrial dysfunction is a cardinal feature of many neurodegenerative diseases, this abnormality likely contributes to the observed motor deficit. These findings demonstrate that partial loss of STMN2 significantly exacerbates TDP-43-associated phenotypes, suggesting that STMN2 restoration could ameliorate TDP-43 related disease before the onset of degeneration.
Insights
Reduced Stathmin2 (Stmn2) function exacerbates TDP-43 pathology in mice, causing motor deficits and abnormal mitochondria. Restoring Stmn2 may treat neurodegenerative diseases like ALS.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Pathological TDP-43 aggregation is central to Amyotrophic Lateral Sclerosis (ALS) and frontotemporal dementia.
- Aberrantly spliced Stathmin2 (Stmn2) mRNA is found in neurodegenerative diseases, and its depletion causes ALS-like symptoms.
- TDP-43 regulates human Stmn2 splicing, but not murine Stmn2, necessitating novel models to study their interaction.
Purpose of the Study:
- To investigate the synergistic effects of reduced STMN2 function and TDP-43 dysfunction in a mouse model.
- To determine if partial STMN2 loss exacerbates TDP-43-dependent pathology and neurodegeneration.
Main Methods:
- Generated trans-heterozygous mice with one non-functional Stmn2 allele and one mutant TDP-43Q331K allele.
- Assessed behavioral phenotypes, including motor deficits.
- Examined neuropathology in the brain, spinal cord, peripheral nerves, and neuromuscular junctions (NMJs).
- Analyzed mitochondrial morphology in distal axons and NMJs.
Main Results:
- Trans-heterozygous mice exhibited early-onset, progressive motor deficits.
- No significant neuropathology was detected in the central or peripheral nervous system, or at NMJs.
- Abnormal mitochondrial morphology was observed in distal axons and NMJs of affected mice.
- Synergy between reduced STMN2 and mutant TDP-43 alleles was confirmed.
Conclusions:
- Partial STMN2 loss significantly exacerbates TDP-43-associated phenotypes, leading to motor deficits and mitochondrial abnormalities.
- Mitochondrial dysfunction in axons and NMJs likely contributes to the observed motor deficits.
- STMN2 restoration presents a potential therapeutic strategy for TDP-43 proteinopathies before widespread degeneration occurs.
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