Peripheral administration of SOD1 aggregates does not transmit pathogenic aggregation to the CNS of SOD1 transgenic
Isil Keskin1, Elaheh Ekhtiari Bidhendi2, Matthew Marklund1
1Department of Medical Biosciences, Pathology, Umeå University, 90185, Umeå, Sweden.
Abstract:
The deposition of aggregated proteins is a common neuropathological denominator for neurodegenerative disorders. Experimental evidence suggests that disease propagation involves prion-like mechanisms that cause the spreading of template-directed aggregation of specific disease-associated proteins. In transgenic (Tg) mouse models of superoxide dismutase-1 (SOD1)-linked amyotrophic lateral sclerosis (ALS), inoculation of minute amounts of human SOD1 (hSOD1) aggregates into the spinal cord or peripheral nerves induces premature ALS-like disease and template-directed hSOD1 aggregation that spreads along the neuroaxis. This infectious nature of spreading pathogenic aggregates might have implications for the safety of laboratory and medical staff, recipients of donated blood or tissue, or possibly close relatives and caregivers. Here we investigate whether transmission of ALS-like disease is unique to the spinal cord and peripheral nerve inoculations or if hSOD1 aggregation might spread from the periphery into the central nervous system (CNS). We inoculated hSOD1 aggregate seeds into the peritoneal cavity, hindlimb skeletal muscle or spinal cord of adult Tg mice expressing mutant hSOD1. Although we used up to 8000 times higher dose-compared to the lowest dose transmitting disease in spinal cord inoculations-the peripheral inoculations did not transmit seeded aggregation to the CNS or premature ALS-like disease in hSOD1 Tg mice. Nor was any hSOD1 aggregation detected in the liver, kidney, skeletal muscle or sciatic nerve. To explore potential reasons for the lack of disease transmission, we examined the stability of hSOD1 aggregates and found them to be highly vulnerable to both proteases and detergent. Our findings suggest that exposed individuals and personnel handling samples from ALS patients are at low risk of any potential transmission of seeded hSOD1 aggregation.
Insights
Peripheral inoculation of aggregated human SOD1 (hSOD1) does not spread to the central nervous system in mouse models of amyotrophic lateral sclerosis (ALS). These findings suggest a low risk of transmission for laboratory and medical personnel handling ALS patient samples.
Area of Science:
- Neuroscience
- Biochemistry
- Pathology
Background:
- Protein aggregation is a hallmark of neurodegenerative diseases like amyotrophic lateral sclerosis (ALS).
- Prion-like mechanisms suggest that misfolded proteins can spread and induce aggregation in a template-directed manner.
- Previous studies demonstrated that aggregated human superoxide dismutase-1 (hSOD1) can induce ALS-like disease when inoculated into the spinal cord or peripheral nerves of transgenic mice.
Purpose of the Study:
- To investigate if aggregated hSOD1 can spread from the periphery into the central nervous system (CNS) and cause ALS-like disease.
- To determine the risk of transmission of pathogenic hSOD1 aggregation from peripheral exposure.
Main Methods:
- Transgenic mice expressing mutant hSOD1 were inoculated with hSOD1 aggregate seeds in the peritoneal cavity, hindlimb skeletal muscle, or spinal cord.
- Mice were monitored for ALS-like disease and hSOD1 aggregation in the CNS and peripheral tissues (liver, kidney, skeletal muscle, sciatic nerve).
- The stability of hSOD1 aggregates against proteases and detergents was assessed.
Main Results:
- Peripheral inoculations, even at doses significantly higher than those effective in spinal cord inoculations, failed to transmit seeded aggregation to the CNS or induce premature ALS-like disease.
- No hSOD1 aggregation was detected in the liver, kidney, skeletal muscle, or sciatic nerve following peripheral inoculation.
- hSOD1 aggregates were found to be highly vulnerable to proteases and detergents.
Conclusions:
- Peripheral exposure to aggregated hSOD1 does not lead to CNS transmission or disease development in this ALS mouse model.
- The instability of hSOD1 aggregates likely contributes to the lack of peripheral transmission.
- The risk of transmission of seeded hSOD1 aggregation to exposed individuals and personnel handling ALS samples is considered low.
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