Convergent generation of atypical prions in knock-in mouse models of genetic prion disease
Mehra, S.; Bourkas, M. E. C.; Kaczmarczyk, L.; Stuart, E.; Arshad, H.; Griffin, J. K.; Frost, K. L.; Walsh, D. J.; Supattapone, S.; Booth, S. A.; Jackson, W. S.; Watts, J. C.
Show abstract
Most cases of human prion disease arise due to spontaneous misfolding of wild-type or mutant prion protein. Though recapitulating spontaneous prion conversion in animal models has proven challenging, transgenic mice expressing the misfolding-prone bank vole prion protein (BVPrP) recreate certain key aspects of sporadic and genetic prion disease. However, it remains unclear whether spontaneous prion generation can occur in the absence of protein over-expression and how disease-causing mutations affect prion strain properties. To address these issues, we generated knock-in mice expressing physiological levels of either wild-type or mutant BVPrP with isoleucine at codon 109. While mice expressing wild-type BVPrP remained free from neurological disease, a subset of knock-in mice expressing BVPrP with mutations that cause either fatal familial insomnia (D178N) or familial Creutzfeldt-Jakob disease (E200K) developed progressive neurological illness. Brains from spontaneously ill knock-in mice contained prion disease-specific neuropathological changes as well as atypical protease-resistant prion protein. Moreover, brain extracts from spontaneously ill D178N- or E200K-mutant BVPrP knock-in mice transmitted disease to mice expressing wild-type BVPrP. Surprisingly, the properties of the D178N- and E200K-mutant prions appeared identical both pre- and post-transmission, suggesting that both mutations guide the formation of a highly similar atypical prion strain. These findings imply that knock-in mice expressing mutant BVPrP spontaneously develop a bona fide prion disease and that mutations causing prion diseases may share a uniform initial mechanism of action. Therefore, these mice represent useful tools for studying the early stages of genetic prion diseases.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Loss of TMEM106B exacerbates Tau pathology and neurodegeneration in PS19 mice 93%
- Cross-β helical filaments of Tau and TMEM106B in Gray and White Matter of Multiple System Tauopathy with presenile Dementia 93%
- Tau seeding and spreading in vivo is supported by both AD-derived fibrillar and oligomeric tau 93%
Similar papers in this journal
- Divergent and Convergent TMEM106B Pathology in Murine Models of Neurodegeneration and Human Disease 94%
- Tau assemblies do not behave like independently acting prion-like particles in mouse neural tissue 93%
- Cathepsin B abundance, activity and microglial localisation in Alzheimer's disease-Down syndrome and early onset Alzheimer's disease; the role of elevated cystatin B 93%
Similar papers in this journal
- Amyloid plaque deposition accelerates tau propagation via activation of microglia in a humanized APP mouse model 94%
- VPS35 and α-Synuclein Fail to Interact to Modulate Neurodegeneration in Rodent Models of Parkinson's Disease 93%
- Frontotemporal dementia-like disease progression elicited by seeded aggregation and spread of FUS 93%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.