992 resultados para Viral diversity


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Huntington's disease (HD) is an autosomal dominant neurodegenerative disorder caused by an expansion of CAG repeats in the huntingtin (Htt) gene. Despite intensive efforts devoted to investigating the mechanisms of its pathogenesis, effective treatments for this devastating disease remain unavailable. The lack of suitable models recapitulating the entire spectrum of the degenerative process has severely hindered the identification and validation of therapeutic strategies. The discovery that the degeneration in HD is caused by a mutation in a single gene has offered new opportunities to develop experimental models of HD, ranging from in vitro models to transgenic primates. However, recent advances in viral-vector technology provide promising alternatives based on the direct transfer of genes to selected sub-regions of the brain. Rodent studies have shown that overexpression of mutant human Htt in the striatum using adeno-associated virus or lentivirus vectors induces progressive neurodegeneration, which resembles that seen in HD. This article highlights progress made in modeling HD using viral vector gene transfer. We describe data obtained with of this highly flexible approach for the targeted overexpression of a disease-causing gene. The ability to deliver mutant Htt to specific tissues has opened pathological processes to experimental analysis and allowed targeted therapeutic development in rodent and primate pre-clinical models.

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Fungal symbionts commonly occur in plants influencing host growth, physiology, and ecology (Carlile et al., 2001). However, while whole-plant growth responses to biotrophic fungi are readily demonstrated, it has been much more difficult to identify and detect the physiological mechanisms responsible. Previous work on the clonal grass Glyceria striata has revealed that the systemic fungal endophyte Epichloë glyceriae has a positive effect on clonal growth of its host (Pan & Clay, 2002; 2003). The latest study from these authors, in this issue (pp. 467- 475), now suggests that increased carbon movement in hosts infected by E. glyceriae may function as one mechanism by which endophytic fungi could increase plant growth. Given the widespread distribution of both clonal plants and symbiotic fungi, this research will have implications for our understanding of the ecology and evolution of fungus-plant associations in natural communities.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.

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Newsletter produced by Iowa Civil Right Commission for the community about the community.