PubMed Health⌕ Search

PubMed · 12481402

[Interferons and neurologic diseases].

Abstract

PURPOSES: Therapeutic strategies using interferons in neurology are limited to multiple sclerosis. In this disease, only beta interferons are used and now considered as a first line treatment in the relapsing-remitting forms of the disease. MAIN POINTS: Beta interferons have reduced the relapse rate by approximately 3% and also reduced the risk of disability progression. They have also favorably influenced the brain lesions on MRI. Numerous data have stressed the importance of starting treatment as early as possible. In the secondary form of the disease, the impact of beta interferons are still discussed. In some clinical endpoints, a dose-response has been demonstrated, probably related to the frequency of injections. Side effects are acceptable despite the high frequency of flu-like syndrome. PERSPECTIVES: Recent data argue for beta interferon treatment after the first demyelinating episode in subjects at risk for early new relapses. In some patients, in cases of treatment failure, combination strategies, including beta interferons, should be addressed in the near future. Interferons were also tested with disappointing results in other neuro-inflammatory disorders, such as chronic inflammatory demyelinating neuropathies.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

P Vermersch, J de Seze, D Ferriby, T Stojkovic. 2002. [Interferons and neurologic diseases].. https://doi.org/10.1016/s0248-8663(02)00661-6

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Immunostimulatory RNA oligonucleotides trigger an antigen-specific cytotoxic T-cell and IgG2a response.

Single-stranded RNA oligonucleotides containing an immunostimulatory motif (immunostimulatory RNA [isRNA]) are potent inducers of interferon-alpha via the Toll-like receptor 7. We investigated the effect of isRNA on the development of an immune response. We show that isRNA activates dendritic cells and induces production of Th1-type cytokines both in vitro and in vivo. Cytokine production led to bystander activation of T and B cells. We further demonstrate that isRNA triggers the generation of antigen-specific cytotoxic T cells and of an IgG2a-biased antibody response to antigen in a sequence-dependent manner. In summary, we provide evidence for the first time that isRNA oligonucleotides can simultaneously activate the innate and adaptive arms of the immune system.

Adjuvants, Immunologic↗

Mechanism of third signals provided by IL-12 and OX-40R ligation in eliciting therapeutic immunity following dendritic-tumor fusion vaccination.

Dendritic-tumor heterokaryons generated by electrofusion are highly immunogenic. In animal studies, a single vaccination was therapeutic for tumors established in the lung, skin, and brain. However, effective therapy required a third signal which could be provided by exogenous IL-12 or the agonistic anti-OX-40R monoclonal antibody (mAb). In this study, we investigated the mechanism and mode of actions of these two seemingly distinct adjuvants. In immunotherapy of the MCA205 sarcoma, administration of the neutralizing anti-IL-12 mAb nearly completely blocked the adjuvant effect of IL-12, but had minimal inhibitory effects on anti-OX-40R mAb. By contrast, in vivo administration of the antagonistic anti-OX-40L mAb inhibited the adjuvant effects of both IL-12 and anti-OX-40R mAb. Thus, a common pathway of endogenous OX-40 interaction is critical for the development of a therapeutic immune response. Analysis of the third signal mechanism revealed that in the absence of an adjuvant, vaccination with fusion hybrids led to IL-10 production without eliciting IFN-gamma secreting cells. The addition of IL-12 to vaccination suppressed IL-10 production and initiated sensitization of specific IFN-gamma secreting cells, resulting in a type 1-like antitumor immunity. These findings underscore the significance of the third signal in the design of dendritic cell-based cancer vaccines.

Adjuvants, Immunologic↗