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Subpial Adeno-associated Virus 9 AAV9 Vector Delivery in Adult Mice
Published on: July 13, 2017
Neurologic Recovery in MPS I and MPS II Mice by AAV9-Mediated Gene Transfer to the CNS After the Development of
Kelly M Podetz-Pedersen1, Kanut Laoharawee1, Sajya Singh1
1Department of Genetics, Cell Biology and Development, Center for Genome Engineering, University of Minnesota, Minneapolis, Minnesota, USA.
Abstract:
The mucopolysaccharidoses (MPS) are a group of recessively inherited conditions caused by deficiency of lysosomal enzymes essential to the catabolism of glycosaminoglycans (GAG). MPS I is caused by deficiency of the lysosomal enzyme alpha-L-iduronidase (IDUA), while MPS II is caused by a lack of iduronate-2-sulfatase (IDS). Lack of these enzymes leads to early mortality and morbidity, often including neurological deficits. Enzyme replacement therapy has markedly improved the quality of life for MPS I and MPS II affected individuals but is not effective in addressing neurologic manifestations. For MPS I, hematopoietic stem cell transplant has shown effectiveness in mitigating the progression of neurologic disease when carried out in early in life, but neurologic function is not restored in patients transplanted later in life. For both MPS I and II, gene therapy has been shown to prevent neurologic deficits in affected mice when administered early, but the effectiveness of treatment after the onset of neurologic disease manifestations has not been characterized. To test if neurocognitive function can be recovered in older animals, human IDUA or IDS-encoding AAV9 vector was administered by intracerebroventricular injection into MPS I and MPS II mice, respectively, after the development of neurologic deficit. Vector sequences were distributed throughout the brains of treated animals, associated with high levels of enzyme activity and normalized GAG storage. Two months after vector infusion, treated mice exhibited spatial navigation and learning skills that were normalized, that is, indistinguishable from those of normal unaffected mice, and significantly improved compared to untreated, affected animals. We conclude that cognitive function was restored by AAV9-mediated, central nervous system (CNS)-directed gene transfer in the murine models of MPS I and MPS II, suggesting that gene transfer may result in neurodevelopment improvements in severe MPS I and MPS II when carried out after the onset of cognitive decline.
Insights
Gene therapy using AAV9 vectors restored cognitive function in mouse models of mucopolysaccharidoses (MPS) I and II, even after neurological deficits appeared. This suggests potential for neurodevelopmental improvement in severe MPS cases post-cognitive decline.
Area of Science:
- Biochemistry
- Genetics
- Neurology
Background:
- Mucopolysaccharidoses (MPS) are rare genetic disorders caused by enzyme deficiencies, leading to glycosaminoglycan (GAG) accumulation and severe health issues, including neurological deficits.
- Current treatments like enzyme replacement therapy and hematopoietic stem cell transplant have limitations in addressing established neurological manifestations of MPS I and MPS II.
Purpose of the Study:
- To investigate the efficacy of AAV9-mediated gene therapy in restoring neurocognitive function in established MPS I and MPS II mouse models.
- To determine if gene transfer can reverse or improve cognitive decline after the onset of neurological symptoms.
Main Methods:
- Intracerebroventricular injection of human IDUA or IDS-encoding AAV9 vectors into MPS I and MPS II mice, respectively, after the development of neurological deficits.
- Analysis of vector distribution, enzyme activity, GAG storage, and neurocognitive performance (spatial navigation and learning) in treated versus untreated mice.
Main Results:
- AAV9 vector successfully distributed throughout the brains, leading to normalized enzyme activity and GAG storage.
- Treated MPS I and II mice showed normalized spatial navigation and learning skills, indistinguishable from wild-type controls, two months post-treatment.
- Significant cognitive improvement was observed compared to untreated affected animals.
Conclusions:
- Central nervous system-directed AAV9 gene transfer can restore cognitive function in murine models of MPS I and MPS II, even after the onset of neurological deficits.
- This approach holds promise for neurodevelopmental improvements in severe MPS patients experiencing cognitive decline.
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