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Functional correction of CNS phenotypes in a lysosomal storage disease model using adeno-associated virus type 4
Gumei Liu1, Inês Martins, John A Wemmie
1Department of Internal Medicine, University of Iowa, Iowa City, Iowa 52242, USA.
Abstract:
Lysosomal storage diseases (LSDs) represent a significant portion of inborn metabolic disorders. More than 60% of LSDs have CNS involvement. LSD therapies for systemic diseases have been developed, but efficacy does not extend to the CNS. In this study, we tested whether adeno-associated virus type 4 (AAV4) vectors could mediate global functional and pathological improvements in a murine model of mucopolysaccharidosis type VII (MPS VII) caused by beta-glucuronidase deficiency. Recombinant AAV4 vectors encoding beta-glucuronidase were injected unilaterally into the lateral ventricle of MPS VII mice with established disease. Transduced ependyma expressed high levels of recombinant enzyme, with secreted enzyme penetrating cerebral and cerebellar structures, as well as the brainstem. Immunohistochemical studies revealed close association of recombinant enzyme and brain microvasculature, indicating that beta-glucuronidase reached brain parenchyma via the perivascular spaces lining blood vessels. Aversive associative learning was tested by context fear conditioning. Compared with age-matched heterozygous controls, affected mice showed impaired conditioned fear response and context discrimination. This behavioral deficit was reversed 6 weeks after gene transfer in AAV4 beta-glucuronidase-treated MPS VII mice. Our data show that ependymal cells can serve as a source of enzyme secretion into the surrounding brain parenchyma and CSF. Secreted enzymes subsequently spread via various routes to reach structures throughout the brain and mediated pathological and functional disease correction. Together, our proof-of-principal experiments suggest a unique and efficient manner for treating the global CNS deficits in LSD patients.
Insights
Gene therapy using adeno-associated virus type 4 (AAV4) vectors successfully delivered beta-glucuronidase to the brain, correcting neurological deficits in a mouse model of mucopolysaccharidosis type VII (MPS VII). This approach shows promise for treating central nervous system lysosomal storage diseases.
Area of Science:
- Neuroscience
- Genetics
- Metabolic Disorders
Background:
- Lysosomal storage diseases (LSDs) are inborn metabolic disorders, with over 60% affecting the central nervous system (CNS).
- Current therapies for systemic LSDs do not effectively treat CNS manifestations.
- Developing treatments for LSDs with CNS involvement remains a significant challenge.
Purpose of the Study:
- To evaluate the efficacy of adeno-associated virus type 4 (AAV4) vectors for treating CNS deficits in a mouse model of mucopolysaccharidosis type VII (MPS VII).
- To determine if AAV4-mediated gene transfer can restore beta-glucuronidase enzyme activity and correct pathological and functional impairments in the brain.
Main Methods:
- Recombinant AAV4 vectors encoding beta-glucuronidase were administered into the lateral ventricle of MPS VII mice.
- Expression of the recombinant enzyme by ependymal cells and its distribution in brain parenchyma were assessed.
- Behavioral deficits were evaluated using context fear conditioning.
Main Results:
- Transduced ependymal cells secreted high levels of beta-glucuronidase, which distributed throughout cerebral and cerebellar structures and the brainstem.
- The enzyme reached brain parenchyma via perivascular spaces associated with brain microvasculature.
- AAV4 gene transfer reversed the impaired conditioned fear response and context discrimination observed in MPS VII mice.
Conclusions:
- Ependymal cells can serve as a source for enzyme secretion into the cerebrospinal fluid and brain parenchyma.
- Secreted enzymes can spread throughout the brain, correcting pathological and functional deficits.
- AAV4-mediated gene therapy offers a potential strategy for treating global CNS deficits in LSD patients.
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