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Lentiviral Vector-mediated Gene Therapy of Hepatocytes Ex Vivo for Autologous Transplantation in Swine
Published on: November 4, 2018
Lentiviral-mediated gene therapy for murine mucopolysaccharidosis type IIIA
Chantelle McIntyre1, Ainslie Lauren Derrick Roberts, Enzo Ranieri
1Department of Genetic Medicine, Women's and Children's Hospital, Children, Youth and Women's Health Service, 72 King William Road, North Adelaide, Adelaide, SA 5006, Australia. chantelle.mcintyre@adelaide.edu.au
Abstract:
Mucopolysaccharidosis type IIIA (MPS IIIA) is a heritable glycosaminoglycan (GAG) storage disorder which is characterised by lysosomal accumulation of heparan sulphate, secondary to a deficiency of sulphamidase (heparan-N-sulphatase, N-sulphoglucosamine sulphohydrolase, EC No. 3.10.1.1.). There is currently no treatment for affected individuals who experience progressive CNS deterioration prior to an early death. As a first step towards developing gene therapy as a treatment for MPS IIIA, an MPS IIIA mouse model was used to examine the efficacy of intravenous lentiviral-mediated gene therapy. Five-week-old mice were injected with virus expressing murine sulphamidase and analysed 6 months after treatment. Transduction by the lentiviral vector was highest in the liver and spleen of treated animals, and sulphamidase activity in these tissues averaged 68% and 186% of normal, respectively. Storage was assessed using histochemical, chemical and mass spectrometric analyses. Storage in most somatic tissues was largely normalised, although chondrocytes were an obvious exception. Histologically, improvement of lysosomal storage within the brain was variable. However, beta-hexosaminidase activity, which is abnormally elevated in MPS IIIA, was significantly reduced in every treated tissue, including the brain. Total uronic acid was also significantly reduced in the brains of treated mice. The level of a disaccharide marker (hexosamine-N-sulphate[alpha-1,4]hexuronic acid; HNS-UA) of heparan sulphate storage was also decreased in the brains of treated mice, albeit non-significantly. These results suggest that lentiviral-mediated somatic gene transfer may affect not only the somatic, but possibly also the CNS pathology, found in MPS IIIA.
Insights
Gene therapy using lentiviral vectors shows promise for Mucopolysaccharidosis type IIIA (MPS IIIA). This treatment reduced heparan sulfate storage in somatic tissues and showed potential benefits for CNS pathology in a mouse model.
Area of Science:
- Biomedical research
- Gene therapy
- Lysosomal storage disorders
Background:
- Mucopolysaccharidosis type IIIA (MPS IIIA) is a rare genetic disorder causing progressive neurodegeneration due to heparan sulfate accumulation.
- Current treatments for MPS IIIA are lacking, necessitating the exploration of novel therapeutic strategies.
- Gene therapy offers a potential avenue for addressing the underlying enzyme deficiency in MPS IIIA.
Purpose of the Study:
- To evaluate the efficacy of intravenous lentiviral-mediated gene therapy in an MPS IIIA mouse model.
- To assess the impact of gene therapy on heparan sulfate storage and enzyme activity in various tissues, including the central nervous system (CNS).
Main Methods:
- An MPS IIIA mouse model was treated with a lentiviral vector expressing murine sulphamidase.
- Mice were analyzed six months post-treatment for sulphamidase activity, GAG storage markers, and histological changes.
- Histochemical, chemical, and mass spectrometric analyses were employed to quantify storage levels.
Main Results:
- Lentiviral transduction was highest in the liver and spleen, with restored sulphamidase activity.
- Heparan sulfate storage was largely normalized in most somatic tissues, with variable improvement in the brain.
- Abnormally elevated beta-hexosaminidase activity was significantly reduced in all treated tissues, including the brain.
Conclusions:
- Intravenous lentiviral gene therapy demonstrates potential for treating MPS IIIA by reducing GAG storage in somatic tissues.
- The findings suggest that this gene therapy approach may also impact CNS pathology, offering hope for treating neurodegenerative aspects of MPS IIIA.
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