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TorsinA restoration in a mouse model identifies a critical therapeutic window for DYT1 dystonia
Jay Li, Daniel S. Levin, Audrey J. Kim, Samuel S. Pappas, William T. Dauer
Jay Li, Daniel S. Levin, Audrey J. Kim, Samuel S. Pappas, William T. Dauer
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Research Article Neuroscience

TorsinA restoration in a mouse model identifies a critical therapeutic window for DYT1 dystonia

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Abstract

In inherited neurodevelopmental diseases, pathogenic processes unique to critical periods during early brain development may preclude the effectiveness of gene modification therapies applied later in life. We explored this question in a mouse model of DYT1 dystonia, a neurodevelopmental disease caused by a loss-of-function mutation in the TOR1A gene encoding torsinA. To define the temporal requirements for torsinA in normal motor function and gene replacement therapy, we developed a mouse line enabling spatiotemporal control of the endogenous torsinA allele. Suppressing torsinA during embryogenesis caused dystonia-mimicking behavioral and neuropathological phenotypes. Suppressing torsinA during adulthood, however, elicited no discernible abnormalities, establishing an essential requirement for torsinA during a developmental critical period. The developing CNS exhibited a parallel “therapeutic critical period” for torsinA repletion. Although restoring torsinA in juvenile DYT1 mice rescued motor phenotypes, there was no benefit from adult torsinA repletion. These data establish a unique requirement for torsinA in the developing nervous system and demonstrate that the critical period genetic insult provokes permanent pathophysiology mechanistically delinked from torsinA function. These findings imply that to be effective, torsinA-based therapeutic strategies must be employed early in the course of DYT1 dystonia.

Authors

Jay Li, Daniel S. Levin, Audrey J. Kim, Samuel S. Pappas, William T. Dauer

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Figure 6

TorsinA restoration is uniquely effective during a neurodevelopmental therapeutic critical period.

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TorsinA restoration is uniquely effective during a neurodevelopmental th...
(A) Schematic of experimental design for Dlx5/6-Cre juvenile torsinA restoration study. Light gray (ON) bars represent ages when torsinA is expressed and dark gray (OFF) areas represent ages when torsinA is suppressed. Each color corresponds to an experimental group in subsequent graphs. TorsinA expression was restored in early symptomatic Dlx-Tet(TorA) mice at P21. (B) Schematic of experimental design for Dlx-Tet(TorA) adult torsinA restoration study. Light gray (ON) bars represent ages when torsinA is expressed and dark gray (OFF) areas represent ages when torsinA is suppressed. Each color corresponds to an experimental group in subsequent graphs. TorsinA expression was restored in late symptomatic Dlx-Tet(TorA) mice at P70. (C) Duration of abnormal movements during 1 minute of tail suspension in Dlx-Tet(TorA) juvenile torsinA restoration mice. n = 9 per group. (D) Duration of abnormal movements during 1 minute of tail suspension in Dlx-Tet(TorA) adult torsinA restoration mice. n = 6 per group. (E) Striatal ChI counts in Dlx-Tet(TorA) juvenile torsinA restoration mice. TorsinA activation in juvenile mice partially prevents ChI degeneration. n = 5 per group. (F) Striatal ChI counts in Dlx-Tet(TorA) adult torsinA restoration mice. TorsinA activation in adult mice does not prevent ChI degeneration. n = 4 per group. (G) Percent of SST+ neurons with abnormally clustered nuclear pore complexes in sensorimotor cortex of Dlx-Tet(TorA) juvenile torsinA restoration mice. Juvenile torsinA activation does not rescue abnormal nuclear pore clustering. (H) Percentage of SST+ neurons with abnormally clustered nuclear pore complexes in sensorimotor cortex of Dlx-Tet(TorA) adult torsinA restoration mice. Adult torsinA activation does not rescue abnormal nuclear pore clustering. n = 3 per group. Data analyzed by 2-way ANOVA (C, D, and F–H) with Sidak’s multiple-comparison test (C, F–H) and 1-way ANOVA with Tukey’s multiple-comparison test (E). *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

Copyright © 2026 American Society for Clinical Investigation
ISSN: 0021-9738 (print), 1558-8238 (online)

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