Lethal toxicity caused by expression of shRNA in the mouse striatum: implications for therapeutic design
J N Martin1, N Wolken, T Brown
1Graduate Program in Genetics, University of Iowa, Iowa City, IA, USA.
Abstract:
Therapeutic RNA interference (RNAi) has emerged as a promising approach for the treatment of many incurable diseases, including cancer, infectious disease or neurodegenerative disorders. Demonstration of efficacy and safety in animal models is necessary before planning human application. Our group and others have previously shown the potential of this approach for the dominantly inherited neurological disease DYT1 dystonia by achieving potent short-hairpin RNA (shRNA)-mediated silencing of the disease protein, torsinA, in cultured cells. To establish the feasibility of this approach in vivo, we pursued viral delivery of shRNA in two different mouse models. Surprisingly, intrastriatal injections of adeno-associated virus serotype 2/1 (AAV2/1) vectors expressing different shRNAs, whether targeting torsinA expression or mismatched controls, resulted in significant toxicity with progressive weight loss, motor dysfunction and animal demise. Histological analysis showed shRNA-induced neurodegeneration. Toxicity was not observed in animals that received control AAV2/1 encoding no shRNA, and was independent of genotype, occurring in both DYT1 and wild-type animals. Interestingly, the different genetic background of both mouse models influenced toxicity, being earlier and more severe in 129/SvEv than in C57BL/6 mice. In conclusion, our studies demonstrate that expression of shRNA in the mammalian brain can lead to lethal toxicity. Furthermore, the genetic background of rodents modifies their sensitivity to this form of toxicity, a factor that should be taken into consideration in the design of preclinical therapeutic RNAi trials.
Insights
Therapeutic RNA interference (RNAi) using short-hairpin RNA (shRNA) in mouse brains caused lethal neurodegeneration. Rodent genetic background significantly influenced toxicity, a critical factor for preclinical RNAi trials.
Area of Science:
- Neuroscience
- Molecular Biology
- Gene Therapy
Background:
- Therapeutic RNA interference (RNAi) shows promise for incurable diseases.
- Short-hairpin RNA (shRNA) effectively silenced torsinA in cell cultures for DYT1 dystonia.
- In vivo validation is crucial for translating RNAi therapies.
Purpose of the Study:
- To assess the in vivo safety and efficacy of viral-delivered shRNA for DYT1 dystonia.
- To investigate potential toxicity associated with shRNA expression in the mammalian brain.
- To evaluate the influence of genetic background on shRNA-induced toxicity.
Main Methods:
- Adeno-associated virus serotype 2/1 (AAV2/1) vectors encoding shRNA were injected intrastriatally into DYT1 and wild-type mouse models.
- Mice were monitored for weight loss, motor function, and survival.
- Histological analysis was performed to assess neurodegeneration.
Main Results:
- Intrastriatal AAV2/1 delivery of shRNA, targeting torsinA or controls, induced significant neurotoxicity, weight loss, motor dysfunction, and mortality.
- Toxicity was shRNA-dependent and observed in both DYT1 and wild-type mice.
- The 129/SvEv mouse strain exhibited earlier and more severe toxicity compared to C57BL/6 mice.
Conclusions:
- Expression of shRNA in the mammalian brain via AAV vectors can cause lethal toxicity.
- Rodent genetic background is a critical factor modulating sensitivity to shRNA-induced toxicity.
- These findings necessitate careful consideration of genetic background in preclinical RNAi trial design.


