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Additive amelioration of ALS by co-targeting independent pathogenic mechanisms
Ashley E Frakes1, Lyndsey Braun2, Laura Ferraiuolo2
1Center for Gene Therapy The Research Institute at Nationwide Children's Hospital Columbus Ohio; Biomedical Sciences Graduate Program College of Medicine The Ohio State University Columbus Ohio.
Objective:
Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease in which glia are central mediators of motor neuron (MN) death. Since multiple cell types are involved in disease pathogenesis, the objective of this study was to determine the benefit of co-targeting independent pathogenic mechanisms in a familial ALS mouse model.
Methods:
Recently, our laboratory identified that ALS microglia induce MN death in an NF-κB-dependent mechanism. We also demonstrated that a single, post-natal, intravenous injection of adeno-associated viral vector serotype 9 encoding a shRNA against mutant SOD1 is able to traverse the blood-brain barrier of ALS mice and reduce SOD1-expression in astrocytes and MNs. Reducing mutant SOD1 in MNs and astrocytes led to a robust increase in survival. To evaluate the benefit of co-targeting multiple cell types in ALS, we combined microglial NF-κB suppression with SOD1 reduction in astrocytes and MNs.
Results:
Targeting both astrocytes and microglia resulted in an additive increase in survival and motor function by delaying both onset and progression. Strikingly, targeting all three cell types (astrocytes, motor neurons [MNs], and microglia) resulted in an additive increase in lifespan and motor function, with maximum survival reaching 204 days, 67 days longer than the mean survival of untreated control animals.
Interpretation:
Our data suggest that a combinatorial approach co-targeting different pathogenic mechanisms in independent cell types is a beneficial therapeutic strategy for ALS.
Insights
Co-targeting multiple cell types in familial ALS models offers significant survival benefits. Combining therapies against astrocytes, motor neurons, and microglia dramatically extended lifespan and improved motor function in mice.
Area of Science:
- Neuroscience
- Genetics
- Immunology
Background:
- Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease.
- Glia, including microglia and astrocytes, play a central role in motor neuron (MN) death in ALS.
- Multiple cell types and pathogenic mechanisms contribute to ALS progression.
Purpose of the Study:
- To determine the therapeutic benefit of co-targeting independent pathogenic mechanisms in different cell types in a familial ALS mouse model.
- To evaluate a combinatorial gene therapy approach for ALS.
Main Methods:
- Utilized an adeno-associated viral vector serotype 9 to deliver shRNA against mutant SOD1, targeting astrocytes and MNs.
- Suppressed microglial NF-κB-dependent mechanisms.
- Combined SOD1 reduction in astrocytes and MNs with microglial NF-κB suppression.
Main Results:
- Targeting astrocytes and microglia additively increased survival and improved motor function.
- Co-targeting astrocytes, MNs, and microglia resulted in a significant additive increase in lifespan (up to 204 days, 67 days longer than controls).
- This triple-targeting strategy delayed disease onset and progression.
Conclusions:
- Combinatorial therapeutic strategies targeting distinct pathogenic mechanisms in independent cell types represent a promising therapeutic avenue for ALS.
- Simultaneous targeting of astrocytes, motor neurons, and microglia demonstrates additive benefits in ALS treatment.
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