Search bioRxiv⌕ Search

Biology subjects

Farmer, M.

Publications and source records attributed to Farmer, M..

2 recordsLinked to original sources

Impact of cellular prion protein expression on disease progression and pathology in two mouse models of Alzheimer's disease

The aggregation of amyloid-{beta} (A{beta}) monomers increases their neurotoxicity, and these oligomeric species are thought to be central to the pathogenesis of Alzheimers disease. Unsurprisingly for such a complex disease, current Alzheimers disease mouse models fail to fully mimic the clinical disease in humans. Moreover, results obtained in a given mouse model are not always reproducible in a different model. Cellular prion protein (PrPC) is now an established receptor for A{beta} oligomers. However, different groups studying the A{beta}-PrPC interaction in vivo using a variety of mouse models have obtained contradictory results. Here we performed a longitudinal study in two commonly used AD mouse models using a range of biochemical, histological and behavioural techniques and found similar contradictory results and a possible explanation for the discrepancy. We propose that these two mouse models produce A{beta} oligomers with different conformations. Therefore, binding to PrPC and the subsequent activation of toxic signalling cascade will occur only when the A{beta} oligomer species with appropriate conformation are present. Hence, it is crucial to select the appropriate model producing the appropriate species of A{beta} oligomers to study specific aspects of {beta}-amyloidosis and its downstream pathways. Further conformational characterisation of A{beta} oligomers and their binding to PrPC is required to better understand A{beta} neurotoxicity.

neuroscience↗

Protective and aggressive bacterial subsets and metabolites modify hepatobiliary inflammation and fibrosis in PSC.

ObjectiveConflicting microbiota data exist for primary sclerosing cholangitis (PSC) and experimental models. Goal: Define complex interactions between resident microbes and their association in PSC patients by studying antibiotic-treated specific pathogen-free (SPF) and germ-free (GF) multi-drug-resistant 2 deficient (mdr2-/-) mice. DesignWe measured weights, liver enzymes, RNA expression, histological, immunohistochemical and fibrotic biochemical parameters, fecal 16s rRNA gene profiling, and metabolomic endpoints in gnotobiotic and antibiotic-treated SPF mdr2-/- mice and targeted metagenomic analysis in PSC patients. ResultsGF mdr2-/- mice had exaggerated hepatic inflammation and fibrosis with 100% mortality by 8 weeks; early SPF autologous stool transplantation rescued liver-related mortality. Broad-spectrum antibiotics and vancomycin alone accelerated disease in weanling SPF mdr2-/- mice, indicating that vancomycin-sensitive resident microbiota protect against hepatobiliary disease. Vancomycin treatment selectively decreased Lachnospiraceae and short-chain fatty acids (SCFAs) but expanded Enterococcus and Enterobacteriaceae. Antibiotics increased cytolysin-expressing E. faecalis and E. coli liver translocation; colonization of gnotobiotic mdr2-/- mice with translocated E. faecalis and E. coli strains accelerated liver inflammation and mortality. Lachnospiraceae colonization of antibiotic pre-treated mdr2-/- mice reduced liver fibrosis, inflammation and translocation of pathobionts, while Lachnospiraceae-produced SCFA decreased fibrosis. Fecal E. faecalis/ Enterobacteriaceae was positively and Lachnospiraceae was negatively associated with PSC patients clinical severity Mayo risk scores. ConclusionsWe identified specific functionally protective and detrimental resident bacterial species in mdr2-/- mice and PSC patients with associated clinical outcomes. These insights may guide personalized targeted therapeutic interventions in PSC patients.

microbiology↗