Active Infection & Immunity Brain & Nervous System

Molecular and phenotypic analysis of prion strains

In plain English

AI plain-English summary

Prion diseases—fatal brain conditions like BSE in cattle and CJD in humans—are caused by misfolded proteins that replicate without any genetic material. Researchers have now revealed the near-atomic-scale structures of these infectious protein assemblies, showing that different prion strains are built from distinctly folded protein chains. This matters because prions come in multiple strains, each causing different disease forms, and some can jump from animals to humans. Until now, no one knew exactly what made one strain different from another at the molecular level, or why certain animal strains pose a threat to people. Without that knowledge, it is impossible to predict which emerging strains—for example, in deer with chronic wasting disease—might trigger a new human outbreak. If this research succeeds, it will produce a comprehensive structure-based classification system for prion strains. Public health agencies could then use that system to identify dangerous animal prions before they spread widely, and to monitor for newly emerging strains. This is fundamental science with a direct translational goal: protecting the food supply and preventing future epidemics of incurable brain disease.

View original technical description
Prions are infectious agents causing a group of closely related lethal brain diseases that include scrapie in sheep, BSE in cattle, CWD in deer and elk and various forms of CJD in humans. Unlike other infectious agents (bacteria and viruses) the infectious particle does not contain genetic information (genes) but instead consists of pathogenic assemblies of prion protein (PrP) which replicate in the central nervous system leading to progressive loss of brain function and eventually death of the infected host. Although prions do not carry genetic material they come in several different forms, called prion strains which are responsible for different forms of the disease in humans and animals. Our research aims to define the fundamental biology of what makes prion strains different from one another why some are able to cross from animals to humans to cause disease. Recently we revealed prion structures at near-atomic scale resolution and showed that infectious prion fibrils from different mouse prion strains are built from distinctly folded chains of PrP. Methods we have established can now be applied to explore structural similarities between different human and animal prion strains. Overall we aim to establish a comprehensive structure-based classification system and use this to evaluate which existing or newly emerging animal prion strains might pose a threat to humans. This information will have direct translation to protecting public health.

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Researchers

Jonathan Wadsworth (Principal Investigator)

Related Research

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Original classification

Intramural

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