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Published on: December 19, 2015
Influence of the Dynamically Disordered N-Terminal Tail Domain on the Amyloid Core Structure of Human Y145Stop Prion
Zhe Qi1, Krystyna Surewicz2, Witold K Surewicz2
1Department of Chemistry and Biochemistry, The Ohio State University, Columbus, OH, United States.
Abstract:
The Y145Stop mutant of human prion protein (huPrP23-144) is associated with a familial prionopathy and provides a convenient in vitro model for investigating amyloid strains and cross-seeding barriers. huPrP23-144 fibrils feature a compact and relatively rigid parallel in-register β-sheet amyloid core spanning ∼30 C-terminal amino acid residues (∼112-141) and a large ∼90-residue dynamically disordered N-terminal tail domain. Here, we systematically evaluate the influence of this dynamic domain on the structure adopted by the huPrP23-144 amyloid core region, by investigating using magic-angle spinning solid-state nuclear magnetic resonance (NMR) spectroscopy a series of fibril samples formed by huPrP23-144 variants corresponding to deletions of large segments of the N-terminal tail. We find that deletion of the bulk of the N-terminal tail, up to residue 98, yields amyloid fibrils with native-like huPrP23-144 core structure. Interestingly, deletion of additional flexible residues in the stretch 99-106 located outside of the amyloid core yields shorter heterogenous fibrils with fingerprint NMR spectra that are clearly distinct from those for full-length huPrP23-144, suggestive of the onset of perturbations to the native structure and degree of molecular ordering for the core residues. For the deletion variant missing residues 99-106 we show that native huPrP23-144 core structure can be "restored" by seeding the fibril growth with preformed full-length huPrP23-144 fibrils.
Insights
The N-terminal tail of human prion protein (huPrP23-144) influences amyloid structure. Removing flexible segments can disrupt core structure, but seeding can restore it.
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- Familial prionopathies are linked to human prion protein (huPrP23-144) mutants.
- huPrP23-144 fibrils serve as an in vitro model for amyloid strain and cross-seeding barrier studies.
- These fibrils possess a rigid C-terminal amyloid core and a disordered N-terminal tail.
Purpose of the Study:
- To investigate the impact of the dynamic N-terminal tail on the huPrP23-144 amyloid core structure.
- To analyze how deletions in the N-terminal tail affect fibril formation and core structure.
Main Methods:
- Magic-angle spinning solid-state nuclear magnetic resonance (NMR) spectroscopy was employed.
- A series of huPrP23-144 variants with deletions in the N-terminal tail were analyzed.
- Seeding experiments were conducted to assess structural restoration.
Main Results:
- Deletion of the N-terminal tail up to residue 98 resulted in fibrils with native-like core structure.
- Further deletion of residues 99-106 led to heterogeneous fibrils with altered core structure, indicated by distinct NMR spectra.
- Seeding with full-length huPrP23-144 fibrils restored native core structure in the deletion variant (99-106).
Conclusions:
- The dynamic N-terminal tail of huPrP23-144 plays a crucial role in maintaining native amyloid core structure.
- Specific flexible segments (99-106) outside the core are critical for structural integrity.
- Amyloid seeding can overcome structural perturbations caused by N-terminal deletions.
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