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Central nervous system delivery of interleukin 4 by a nonreplicative herpes simplex type 1 viral vector ameliorates
R Furlan1, P L Poliani, F Galbiati
1Experimental Neuroimmunotherapy Unit, DIBIT, San Raffaele Scientific Institute, Milan, Italy.
Abstract:
Multiple sclerosis (MS) is a T cell-mediated organ-specific inflammatory disease leading to central nervous system (CNS) demyelination. On the basis of results obtained in experimental autoimmune encephalomyelitis (EAE) models, MS treatment by administration of antiinflammatory cytokines such as interleukin 4 (IL-4) is promising but is hampered by the limited access of the cytokines to the CNS and by the pleiotropic effects of systemically administered cytokines. We established a cytokine delivery system within the CNS using non-replicative herpes simplex type 1 (HSV-1) viral vectors engineered with cytokine genes. These vectors injected into the cisterna magna (i.c.) of mice diffuse in all ventricular and subarachnoid spaces and infect with high efficiency the ependymal and leptomeningeal cell layers surrounding these areas, without obvious toxic effects. Heterologous genes contained in the vectors are efficiently transcribed in infected ependymal cells, leading to the production of high amounts of the coded proteins. For example, 4.5 ng of interferon gamma (IFN-gamma) per milliliter is secreted into the cerebrospinal fluid (CSF) up to day 28 postinjection (p.i.) and reaches the CNS parenchyma in bioactive form, as demonstrated by upregulation of MHC class I expression on CNS-resident cells. We then exploited the therapeutic potential of the vectors in EAE mice. An HSV-1-derived vector containing the IL-4 gene was injected i.c. in Biozzi AB/H mice at the time of EAE induction. We found the following in treated mice: (1) delayed EAE onset, (2) a significant decrease in clinical score, (3) a significant decrease in perivascular inflammatory infiltrates and in the number of macrophages infiltrating the CNS parenchyma and the submeningeal spaces, and (4) a reduction in demyelinated areas and axonal loss. Peripheral T cells from IL-4-treated mice were not affected either in their antigen-specific proliferative response or in cytokine secretion pattern. Our results indicate that CNS cytokine delivery with HSV-1 vectors is feasible and might represent an approach for the treatment of demyelinating diseases. Advantages of this approach over systemic cytokine administration are the high cytokine level reached in the CNS, the absence of effects on the peripheral immune system, and the long-lasting cytokine production in the CNS after a single vector administration.
Insights
This study developed a herpes simplex virus type 1 (HSV-1) vector for delivering interleukin-4 (IL-4) directly into the central nervous system (CNS). This novel approach effectively treated experimental autoimmune encephalomyelitis (EAE) in mice, offering a promising new therapy for demyelinating diseases.
Area of Science:
- Neuroimmunology
- Gene Therapy
- Demyelinating Diseases
Background:
- Multiple sclerosis (MS) is a T cell-mediated inflammatory disease causing CNS demyelination.
- Current MS treatments face challenges with cytokine delivery to the CNS and systemic side effects.
- Experimental autoimmune encephalomyelitis (EAE) serves as a model for studying MS pathogenesis and treatment.
Purpose of the Study:
- To establish a central nervous system (CNS) cytokine delivery system using non-replicative herpes simplex type 1 (HSV-1) viral vectors.
- To evaluate the therapeutic potential of CNS-targeted interleukin-4 (IL-4) delivery via HSV-1 vectors in an EAE mouse model.
Main Methods:
- Engineered non-replicative HSV-1 viral vectors with cytokine genes (e.g., IL-4, Interferon gamma).
- Administered vectors via intracisternal injection (i.c.) into the cisterna magna of mice.
- Assessed vector biodistribution, gene expression, protein production in cerebrospinal fluid (CSF), and therapeutic efficacy in EAE mice.
Main Results:
- HSV-1 vectors efficiently infected CNS ependymal and leptomeningeal cells with no apparent toxicity.
- Infected cells produced high levels of bioactive cytokines (e.g., IFN-gamma, IL-4) within the CNS.
- IL-4 vector treatment in EAE mice resulted in delayed disease onset, reduced clinical scores, decreased inflammation, demyelination, and axonal loss.
Conclusions:
- CNS cytokine delivery using HSV-1 vectors is feasible and effective for treating demyelinating diseases like MS.
- This targeted approach achieves high CNS cytokine levels without affecting the peripheral immune system.
- Single administration of HSV-1 vectors leads to long-lasting cytokine production, offering a potential therapeutic strategy for CNS disorders.