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AAV-mediated gene therapy demonstrates phenotypic rescue in a mouse model of Cockayne syndrome
Ana Rita Batista, Aine C. Scholand, William S. Callahan, McKenna K. Watson, Cassandra M. Sion, Tyler Mola, Kennedy O’Hara, Simon A. Wentworth, William S. Sena-Esteves, Oliver D. King, Robert M. King, Miguel Sena-Esteves
Ana Rita Batista, Aine C. Scholand, William S. Callahan, McKenna K. Watson, Cassandra M. Sion, Tyler Mola, Kennedy O’Hara, Simon A. Wentworth, William S. Sena-Esteves, Oliver D. King, Robert M. King, Miguel Sena-Esteves
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Research Article Genetics Neuroscience

AAV-mediated gene therapy demonstrates phenotypic rescue in a mouse model of Cockayne syndrome

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Abstract

Cockayne syndrome (CS) is an autosomal recessive, progressive developmental and neurodegenerative disease. Approximately 30% of cases are caused by mutations in the ERCC8/CSA gene. Patients with CS present with cutaneous photosensitivity, growth failure, shorter life span, and a progressive degeneration of the central nervous system. Loss-of-function mutations in CSA result in deficiencies in transcription-coupled nucleotide excision repair. Currently, no therapies are available for these patients. Adeno-associated virus–mediated (AAV-mediated) gene therapy offers an opportunity to address this unmet need. We designed an AAV vector encoding human CSA under a ubiquitous promoter. We tested the therapeutic efficacy of this AAV9-CSA vector by neonatal intracerebroventricular injection in the Csa–/– Xpa–/– mouse model. Treatment with AAV9-CSA resulted in a significant increase in life span, and broad distribution of human CSA in the brain and heart, without evidence of vector-related toxicity. Despite clear therapeutic benefit, we also observed neuroradiological abnormalities, and neuropathologic alterations, including hypomyelination, astrocytosis, and microgliosis, as well as likely life-limiting transcriptomic alterations in liver at endpoint. Nonetheless, the success of these experiments paves the way for clinical translation of an AAV gene therapy for patients with CS into humans.

Authors

Ana Rita Batista, Aine C. Scholand, William S. Callahan, McKenna K. Watson, Cassandra M. Sion, Tyler Mola, Kennedy O’Hara, Simon A. Wentworth, William S. Sena-Esteves, Oliver D. King, Robert M. King, Miguel Sena-Esteves

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Figure 1

Validation of AAV-CBA-CSA in cell culture.

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Validation of AAV-CBA-CSA in cell culture.
(A) Representative Western bl...
(A) Representative Western blot showing CSA expression in HEK293T and HEK293T-CSA–/– cells following infection with scAAV9-GFP or scAAV9-CSA, with naive cells as controls. (B) Representative Western blot of human fibroblasts from a normal control, CSA patient, and CSA patient following transduction with scAAV3b-CSA. Histone H3 was used as a loading control. (C) Representative images of Illudin S killing assay in HEK293T-CSA–/– (top panel) and quantification of percentage survival for dose response (bottom panel). HEK293T cells were included as a positive control. Data are represented as mean ± SD with individual data points shown. Statistical significance versus naive cells was determined by 1-way ANOVA with Dunnett’s post hoc test; ***P < 0.001, ****P < 0.0001. (D) Representative images of Illudin S killing assay in human fibroblasts.

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

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