4.5 Article

TNF and IL-1 but not IL-18 Suppresses Hippocampal Long-Term Potentiation Directly at the Synapse

期刊

NEUROCHEMICAL RESEARCH
卷 44, 期 1, 页码 49-60

出版社

SPRINGER/PLENUM PUBLISHERS
DOI: 10.1007/s11064-018-2517-8

关键词

Inflammation; Cytokines; Hippocampus; Synaptosomes; cLTP; FASS-LTP

资金

  1. National Institutes of Health [R21-AG048506, P01-AG000538, RO1-AG34667]
  2. UC MEXUS-CONACYT Grant [CN-16-170]

向作者/读者索取更多资源

CNS inflammatory responses are linked to cognitive impairment in humans. Research in animal models supports this connection by showing that inflammatory cytokines suppress long-term potentiation (LTP), the best-known cellular correlate of memory. Cytokine-induced modulation of LTP has been previously studied in vivo or in brain slices, two experimental approaches containing multiple cell populations responsive to cytokines. In their target cells, cytokines commonly increase the expression of multiple cytokines, thus increasing the complexity of brain cytokine networks even after single-cytokine challenges. Whether cytokines suppress LTP by direct effects on neurons or by indirect mechanisms is still an open question. Here, we evaluated the effect of a major set of inflammatory cytokines including tumor necrosis factor- (TNF), interleukin-1 (IL-1) and interleukin-18 (IL-18) on chemically-induced LTP (cLTP) in isolated hippocampal synaptosomes of mice, using fluorescence analysis of single-synapse long-term potentiation (FASS-LTP). We found that TNF and IL-1 suppress synaptosomal cLTP. In contrast, cLTP was not affected by IL-18, at a concentration previously shown to block LTP in hippocampal slices. We also found that IL-18 does not impair cLTP or brain-derived neurotrophic factor (BDNF) signaling in primary hippocampal neuronal cultures. Thus, using both synaptosomes and neuron cultures, our data suggest that IL-18 impairs LTP by indirect mechanisms, which may depend on non-neuronal cells, such as glia. Notably, our results demonstrate that TNF and IL-1 directly suppress hippocampal plasticity via neuron-specific mechanisms. A better understanding of the brain's cytokine networks and their final molecular effectors is crucial to identify specific targets for intervention.

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