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Nina Rosenqvist

Publications and source records attributed to Nina Rosenqvist.

5 recordsLinked to original sources

Evidence for disease-regulated transgene expression in the brain with use of lentiviral vectors.

In this study we have developed and validated a novel approach of transgene regulation in the brain. By using lentiviral vectors that incorporate promoters of genes that are up-regulated during different pathological states, we were able to regulate transgene expression in accordance with the disease process. When using a glial fibrillary acidic protein promoter, efficient disease regulation in glial cells was achieved after an excitotoxic lesion or a 6-hydroxydopamine (6-OHDA) lesion. Transgene expression was physiologically regulated and displayed a dose-dependent increase depending on the severity of lesion. Efficient regulation was also achieved in neurons when using a preproenkephlin promoter in 6-OHDA-lesioned rats, allowing combined regulation and targeting. This disease-regulated approach allows control of transgene expression in the brain without the use of inducer molecules and without overexpression of transactivator proteins.

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Inhibition of chromatin condensation prevents transgene silencing in a neural progenitor cell line transplanted to the rat brain.

The use of ex vivo gene therapy in the central nervous system has so far suffered from transgene downregulation. Condensation of the transgenic sequences has been proposed to be a mechanism involved in this silencing. In this study we inhibited either histone deacetylation or DNA methylation in neural progenitor cell lines, transduced with a lentiviral vector carrying green fluorescent protein (GFP), prior to grafting them into the rat striatum. The expression of GFP was significantly higher in grafts pretreated with either of the inhibitors. After 1 week in vivo we detected an 11-fold increase in the number of GFP-expressing cells due to the inhibition of DNA methylation in vitro with azadeoxycytidine and a ninefold increase when inhibiting histone deacetylation with trichostatin A. This suggests that a pretreatment paradigm could be used to increase efficacy of ex vivo delivery of a therapeutic protein locally in the brain.

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Dynamics of transgene expression in a neural stem cell line transduced with lentiviral vectors incorporating the cHS4 insulator.

Transplantation of genetically manipulated cells to the central nervous system holds great promise for the treatment of several severe neurological disorders. The success of this strategy relies on sufficient levels of transgene expression after transplantation. This has been difficult to achieve, however, due to transgene silencing. In this study, we transduced the neural stem cell line RN33B with self-inactivating lentiviral vectors and analyzed transgenic expression of green fluorescent protein (GFP) in several different settings both in vitro and after transplantation to the brain. We found that the transgene was affected of silencing both when transduced cells were proliferating and after differentiation. To prevent silencing, the cHS4 insulator was incorporated into the lentiviral vector. We found that a vector carrying the cHS4 insulator was partially protected against differentiation-dependent downregulation in vitro and in vivo. However, in proliferating cells, we found evidence for variegation and positional effects that were not prevented by the cHS4 insulator, suggesting that the mechanism behind silencing in proliferating cells is not the same mechanism influencing differentiation-dependent silencing. Taken together, these findings favor vector optimization as a strategy for achieving efficient ex vivo gene transfer in the central nervous system.

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Activation of silenced transgene expression in neural precursor cell lines by inhibitors of histone deacetylation.

BACKGROUND: Ex vivo gene therapy in the central nervous system (CNS) holds great promise for diseases such as the neurodegenerative disorders. However, achieving stable, long-term transgene expression in grafted cells has proven problematic. This study reports the establishment of an in vitro model of transgene down-regulation in cells grafted to the CNS using the immortalized neural progenitor cell lines HiB5 and RN33B. METHODS: Neural cell lines were transduced at 33 degrees C with different GFP constructs, both viral and non-viral, containing either viral or non-viral promoters. Cell differentiation in vitro was obtained by culturing the cells at 37 degrees C in serum-free defined media, which halts cell division, and GFP-expression was analysed by FACS. As early as day 3 of culture at 37 degrees C, the transgene expression decreased markedly in most cell lines. To validate the assay, the same clones were grafted to the adult rat striatum and the down-regulation of GFP-expression was evaluated. RESULTS: The temporal pattern of down-regulation was found to be similar in vitro and in vivo. Using this assay, it was shown that addition of inhibitors of histone deacetylation, but not an inhibitor of DNA methylation, reversed the silencing of GFP in quiescent neural progenitors by up to 308% of control values. CONCLUSION: These results suggest that the same mechanisms controlling gene transcription of the host cell's genome are active in controlling transgene expression and that this should be taken into account when constructing vectors for gene therapy. The assay reported in this study could be used as a screening method to evaluate new vectors.

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