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Karikari, T. K.

Publications and source records attributed to Karikari, T. K..

3 recordsLinked to original sources

Tau in cerebrospinal fluid induces neuronal hyperexcitability and alters hippocampal theta oscillations

Alzheimers disease (AD) and other tauopathies are characterized by the aggregation of tau into soluble and insoluble forms (including tangles and neuropil threads). In humans, a fraction of both phosphorylated and non-phosphorylated N-terminal to mid-domain tau species, including the aggregated forms, are secreted into cerebrospinal fluid (CSF). Some of these CSF tau species can be measured as diagnostic and prognostic biomarkers, starting from early stages of disease. While in animal models of AD pathology, soluble tau aggregates have been shown to disrupt neuronal function, it is unclear whether the tau species present in CSF will modulate neural activity. Here, we have developed and applied a novel approach to examine the electrophysiological effects of CSF from patients with a tau-positive biomarker profile. The method involves incubation of acutely-isolated wild-type mouse hippocampal brain slices with small volumes of diluted human CSF, followed by a suite of electrophysiological recording methods to evaluate their effects on neuronal function from single cells through to the network level. Comparison of the toxicity profiles of the same CSF samples, with and without immuno-depletion for tau, has enabled a pioneering demonstration that CSF-tau potently modulates neuronal function. We demonstrate that CSF-tau mediates an increase in neuronal excitability in single cells. We then observed, at the network level, increased input-output responses and enhanced paired-pulse facilitation as well as an increase in long-term potentiation. Finally, we show that CSF-tau modifies the generation and maintenance of hippocampal theta oscillations, which have important roles in learning and memory and are known to be altered in AD patients. Together, we describe a novel method for screening human CSF-tau to understand functional effects on neuron and network activity, which could have far-reaching benefits in understanding tau pathology, thus allowing for the development of better targeted treatments for tauopathies in the future. Graphic Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=98 SRC="FIGDIR/small/525362v2_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@13f564forg.highwire.dtl.DTLVardef@13b75cborg.highwire.dtl.DTLVardef@b27dbaorg.highwire.dtl.DTLVardef@5c68c0_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

APOE ε4 gene dose effect on imaging and blood biomarkers of glial reactivity and β-amyloid pathology

Increased reactivity of microglia and astrocytes is known to be present at various stages of the Alzheimers continuum but their relationship with core Alzheimers disease pathology in the preclinical stages is less clear. We investigated glial reactivity and {beta}-amyloid pathology in cognitively unimpaired APOE {varepsilon}4 homozygotes, heterozygotes and non-carriers using 11C-PK11195 PET (targeting 18-kDa translocator protein), 11C-PiB PET (targeting {beta}-amyloid), brain MRI, and a preclinical cognitive composite (APCC). Plasma glial fibrillary acidic protein (GFAP) by and plasma A{beta}1-42/1-40 were measured using single molecule array and immunoprecipitation combined with mass spectrometry, respectively. We observed that (i) 11C-PiB-binding was significantly higher in APOE {varepsilon}4 homozygotes compared with non-carriers in all evaluated regions, (ii) regional 11C-PK11195-binding did not differ between the APOE {varepsilon}4 gene doses or between A{beta}-positive and -negative individuals, and (iii) higher 11C-PK11195-binding and plasma GFAP were associated with lower hippocampal volume, and elevated 11C-PiB-binding and plasma GFAP concentration with lower APCC scores. Increased glial reactivity might emerge in later stages of preclinical Alzheimers disease in parallel with early neurodegenerative changes.

neuroscience↗

Truncating Tau Reveals Different Pathophysiological Actions of Oligomers in Single Neurons

Tau protein is involved in maintaining neuronal structure. In Alzheimers disease, small numbers of tau molecules can aggregate to forms oligomers. However, how these oligomers produce changes in neuronal function remains unclear. Previously, oligomers made from full-length human tau were found to have multiple effects on neuronal properties. Here we have cut the tau molecule into two parts: the first 123 amino acids and the remaining 124-441 amino acids. These truncated tau molecules had specific effects on neuronal properties, allowing us to assign the actions of full-length tau to different regions of the molecule. We identified one key target for the effects of tau, the voltage gated sodium channel, which could account for the effects of tau on the action potential. By truncating the tau molecule, we have probed the mechanisms that underlie tau dysfunction, and this increased understanding of taus pathological actions, will build towards developing future tau-targeting therapies.

neuroscience↗