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Bridges, L. R.

Publications and source records attributed to Bridges, L. R..

2 recordsLinked to original sources

Replicating RNA as a component of scrapie fibrils

Recently, electron cryo-microscopy (cryo-EM) maps of fibrils from the brains of mice and hamsters with five infectious scrapie strains have been published1-5 and deposited in the electron microscopy data bank (EMDB)6. This represents long-awaited near-atomic level structural evidence, widely expected to confirm the protein-only prion hypothesis7,8. Instead, the maps reveal a second component, other than protein. The aim of the present study was to identify the nature of this second component, in the published maps1-5, using an in silico approach. Extra densities (EDs) containing this component were continuous, straight, axial, at right angles to protein rungs and within hydrogen-bonding distance of protein, consistent with a role as guide and support in fibril construction. EDs co-located with strips of basic residues, notably lysines, and formed a conspicuous cladding over parts of the N-terminal lobe of the protein. In one ED, there was evidence of a Y-shaped polymer forming two antiparallel chains, consistent with replicating RNA. Although the protein-only prion hypothesis7 is still popular, convincing counter-evidence for an essential role of RNA as a cofactor has amassed in the last 20 years8. The present findings go beyond this in providing evidence for RNA as the genetic element of scrapie. To reflect the monotonous nature of the protein interface, it is suggested that the RNA may be a tandem repeat. This is against the protein-only prion hypothesis and in favour of a more orthodox agent, more akin to a virus. Fibrils from brains of patients with Alzheimers disease (AD), Parkinsons disease (PD), amyotrophic lateral sclerosis (ALS) and other neurodegenerations also contain EDs9 and may be of a similar aetiology.

neuroscience↗

RNA as a component of fibrils from Alzheimer's disease and other neurodegenerations

Fibrils from brains of patients with Alzheimers disease1-5, Parkinsons disease6, amyotrophic lateral sclerosis7 and other neurodegenerations3,4,8-18 contain unknown molecules. Extra densities (EDs), containing these unknown molecules, are available to examine in electron cryo-microscopy maps from the Electron Microscopy Data Bank19, a public repository. EDs can be visualised in their protein environments using matched atomic models from the Protein Data Bank20, another public repository. Lysine-coordinating EDs from a wide range of neurodegenerative diseases1-6,8-18 and EDs from the glycine-rich region of TAR DNA-binding protein 43 (TDP-43) fibrils in amyotrophic lateral sclerosis with frontotemporal lobar degeneration (ALS-FTLD)7 were the subject of the present study. EDs ran parallel to the fibril axis and at right angles to protein with a repeat distance matching that of protein. They formed connections with protein consistent with a role in the guided assembly of fibrils. They had a connectivity pattern and estimated molecular weights consistent with ribonucleic acid (RNA). A straight form of RNA (ortho-RNA, oRNA) was modelled into one ED. It fitted other EDs and formed a rich symmetrical network of hydrogen bonds when docked to protein, implicating RNA as a unifying and organising factor in neurodegeneration. A new hypothesis of neurodegeneration (ponc, protein ortho-nucleic acid complex, pronounced ponk) is proposed in which RNA is the driver of these diseases. According to the ponc hypothesis, a particular RNA sequence (likely repetitive) enciphers a particular strain of ponc agent with its own protein fold and type of neurodegeneration. Ponc provides an explanation of fibril growth and replication, species barrier and adaptation, inherited neurodegeneration, resistance to chemicals and irradiation, protein-free transmission and co-pathologies. Ponc may also be relevant to other chronic diseases and origins of life. New treatments might be possible, targeting the unique chemical and physical properties of ponc.

neuroscience↗