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Updated: Jun 20, 2026

Screening for Amyloid Aggregation by Semi-Denaturing Detergent-Agarose Gel Electrophoresis
Published on: July 16, 2008
The molecular organization of the fungal prion HET-s in its amyloid form
Christian Wasmer1, Anne Schütz, Antoine Loquet
1Physical Chemistry, ETH Zürich, Wolfgang-Pauli-Strasse 10, CH-8093 Zurich, Switzerland.
Abstract:
The prion hypothesis states that it is solely the three-dimensional structure of the polypeptide chain that distinguishes the prion and nonprion forms of the protein. For HET-s, the atomic-resolution structure of the isolated prion domain HET-s(218-289), consisting of a highly ordered triangular cross-beta arrangement, is known. Here we present a solid-state NMR study of fibrils of the full-length HET-s prion in which we compare their spectra with spectra from isolated C-terminal prion domain fibrils and the crystalline N-terminal globular domain HET-s(1-227). The spectra reveal unequivocally that the highly ordered structure of the isolated prion domain HET-s(218-289) is conserved in the context of the full-length fibrils investigated here. However, the globular domain loses much of its tertiary structure while partly retaining its secondary structure, thus exhibiting behavior reminiscent of a molten globule. Flexible residues that may constitute the linker connecting the two domains are detected using INEPT (insensitive nuclei enhanced by polarization transfer) spectroscopy. Based on our data, we propose a structural model that is in line with a general model developed for amyloid fibrils built from a cross-beta core decorated with globular domains. The loss of structure in the HET-s globular domain sharply contrasts with the behavior observed for fibrils of Ure2p and suggests that there is considerable structural diversity in the fibrils of globular-domain-containing prions despite their similar appearances at the microscopic level.
Insights
The prion hypothesis suggests structure dictates protein form. This study confirms the prion domain
Area of Science:
- Biochemistry
- Structural Biology
- Neuroscience
Background:
- The prion hypothesis posits that protein structure, not sequence, differentiates prion and nonprion forms.
- The HET-s prion's isolated prion domain (HET-s(218-289)) has a known atomic-resolution structure characterized by a cross-beta arrangement.
Purpose of the Study:
- To investigate the structural integrity of the full-length HET-s prion in fibrils using solid-state NMR.
- To compare the structure of full-length HET-s fibrils with isolated prion domain fibrils and the globular domain.
Main Methods:
- Solid-state Nuclear Magnetic Resonance (NMR) spectroscopy.
- INEPT (insensitive nuclei enhanced by polarization transfer) spectroscopy to detect flexible residues.
Main Results:
- The cross-beta structure of the isolated HET-s prion domain is conserved within full-length HET-s fibrils.
- The globular domain of full-length HET-s loses tertiary structure, resembling a molten globule, while retaining secondary structure.
- Flexible linker residues connecting the domains were identified.
Conclusions:
- A structural model for HET-s fibrils is proposed, consistent with a cross-beta core decorated by globular domains.
- The structural plasticity of the globular domain in HET-s fibrils contrasts with Ure2p, indicating significant structural diversity among amyloid fibrils.
- This diversity challenges a uniform structural model for all globular-domain-containing prions.
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