Related Experiment Video
Updated: Jul 11, 2025

Investigating the Spreading and Toxicity of Prion-like Proteins Using the Metazoan Model Organism C. elegans
Published on: January 8, 2015
Mutations of evolutionarily conserved aromatic residues suggest that misfolding of the mouse prion protein may
Suman Pal1, Jayant B Udgaonkar1
1Indian Institute of Science Education and Research Pune, Pune, India.
Abstract:
The misfolding of the mammalian prion protein from its α-helix rich cellular isoform to its β-sheet rich infectious isoform is associated with several neurodegenerative diseases. The determination of the structural mechanism by which misfolding commences, still remains an unsolved problem. In the current study, native-state hydrogen exchange coupled with mass spectrometry has revealed that the N state of the mouse prion protein (moPrP) at pH 4 is in dynamic equilibrium with multiple partially unfolded forms (PUFs) capable of initiating misfolding. Mutation of three evolutionarily conserved aromatic residues, Tyr168, Phe174, and Tyr217 present at the interface of the β2-α2 loop and the C-terminal end of α3 in the structured C-terminal domain of moPrP significantly destabilize the native state (N) of the protein. They also reduce the free energy differences between the N state and two PUFs identified as PUF1 and PUF2**. It is shown that PUF2** in which the β2-α2 loop and the C-terminal end of α3 are disordered, has the same stability as the previously identified PUF2*, but to have a very different structure. Misfolding can commence from both PUF1 and PUF2**, as it can from PUF2*. Hence, misfolding can commence and proceed in multiple ways from structurally distinct precursor conformations. The increased extents to which PUF1 and PUF2** are populated at equilibrium in the case of the mutant variants, greatly accelerate their misfolding. The results suggest that the three aromatic residues may have been evolutionarily selected to impede the misfolding of moPrP.
Insights
Prion protein misfolding, linked to neurodegenerative diseases, can initiate from multiple partially unfolded forms (PUFs). Specific mutations accelerate misfolding by destabilizing the native state and increasing PUF populations, suggesting evolutionary selection for these residues.
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Prion protein misfolding transforms its structure, causing neurodegenerative diseases.
- The precise mechanism initiating prion misfolding remains unclear.
Purpose of the Study:
- To investigate the structural mechanisms underlying prion protein misfolding.
- To identify partially unfolded forms (PUFs) of mouse prion protein (moPrP) that can initiate misfolding.
Main Methods:
- Native-state hydrogen exchange coupled with mass spectrometry (HX-MS).
- Analysis of wild-type and mutant mouse prion protein (moPrP) at pH 4.
Main Results:
- The native state (N) of moPrP is in equilibrium with multiple PUFs.
- Mutations in three aromatic residues (Tyr168, Phe174, Tyr217) destabilize the native state and increase PUF populations.
- Misfolding can initiate from distinct PUF structures, including PUF1 and PUF2**.
Conclusions:
- Prion protein misfolding can proceed through multiple pathways involving different precursor conformations.
- The identified aromatic residues may have evolved to prevent prion protein misfolding.
Related Concept Videos
Amyloid Fibrils
Amyloid deposits were observed as early as 1639 in the liver and the spleen. In 1854, Rudolph Virchow performed iodine staining,...
Mutations
Export of Misfolded Proteins out of the ER
Exon Recombination
Exon shuffling follows “splice frame rules.” Each exon...

