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Wasen, C.

Publications and source records attributed to Wasen, C..

2 recordsLinked to original sources

Persistent microbial material contributes to Alzheimer disease and is targetable by vaccination

Chronic neuroinflammation is increasingly recognized as a contributor to Alzheimer disease, yet the upstream stimuli that sustain it remain poorly defined. We investigated whether persistent microbial material contributes to Alzheimer disease using the conserved microbial polysaccharide poly-N-acetylglucosamine (PNAG). PNAG-containing microbial material colocalized with amyloid plaques in human Alzheimer disease brain tissue. In fully human neuronal and three-dimensional brain models, purified PNAG and PNAG-containing microbial vesicles activated Toll-like receptor 2-dependent inflammasome signaling and promoted amyloid-{beta} and phosphorylated tau accumulation. Vaccination targeting PNAG improved cognition, reduced glial activation and amyloid pathology, remodeled amyloid processing, and preserved gut microbial community structure in APP/PS1 mice. These findings identify persistent microbial material as an upstream contributor to Alzheimer disease-associated neuroinflammation and a potential therapeutic target.

neuroscience↗

Neurostructural and molecular evidence of advanced brain aging in rheumatoid arthritis

Chronic systemic inflammation has been implicated in age-related neurodegeneration, but whether rheumatoid arthritis (RA) is associated with accelerated brain aging remains unclear. We combined structural magnetic resonance imaging (MRI), circulating neurodegeneration biomarkers, and peripheral monocyte transcriptomics to investigate brain aging in RA across two independent cohorts. A brain-age prediction model trained in healthy controls from the IXI imaging dataset was applied to RA patient cohorts from Gothenburg (n = 71) and Glasgow (n = 50). RA was associated with significantly elevated corrected brain-age gap relative to healthy controls (+6.5 years, 95% CI 4.2-8.8 years, p = 1.2 x 10-7), with substantially stronger effects in patients [≥]60 years. Older RA patients demonstrated a significant ventricular enlargement together with reduced frontal and parietal lobe volumes. Serum brain-derived tau and glial fibrillary acidic protein levels were elevated in RA. The increased brain-age gap was associated with altered myeloid transcriptional signatures. These findings demonstrate that RA is associated with age-related neurostructural alterations consistent with accelerated brain aging.

neuroscience↗