Targeting cellular prion protein reverses early cognitive deficits and neurophysiological dysfunction in prion-infected mice

GR Mallucci, MD White, M Farmer, A Dickinson, H Khatun, Andrew Powell, S Brandner, John Jefferys, J Collinge

    Research output: Contribution to journalArticle

    209 Citations (Scopus)

    Abstract

    Currently, no treatment can prevent the cognitive and motor decline associated with widespread neurodegeneration in prion disease. However, we previously showed that targeting endogenous neuronal prion protein (PrP(C)) (the precursor of its disease-associated isoform, PrP(Sc)) in mice with early prion infection reversed spongiform change and prevented clinical symptoms and neuronal loss. We now show that cognitive and behavioral deficits and impaired neurophysiological function accompany early hippocampal spongiform pathology. Remarkably, these behavioral and synaptic impairments recover when neuronal PrP(C) is depleted, in parallel with reversal of spongiosis. Thus, early functional impairments precede neuronal loss in prion disease and can be rescued. Further, they occur before extensive PrP(Sc) deposits accumulate and recover rapidly after PrP(C) depletion, supporting the concept that they are caused by a transient neurotoxic species, distinct from aggregated PrP(Sc). These data suggest that early intervention in human prion disease may lead to recovery of cognitive and behavioral symptoms.
    Original languageEnglish
    Pages (from-to)325-335
    Number of pages11
    JournalNeuron
    Volume53
    Issue number3
    DOIs
    Publication statusPublished - 1 Feb 2007

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