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Molecular dynamics simulations to gain insights into the stability and morphologies of K3 oligomers from
1Graduate Institute of Biotechnology, National Taipei University of Technology, Taiwan.
Abstract:
beta2-Microglobulin (beta2-m) forms amyloid fibrils in patients undergoing long-term hemodialysis. K3 peptide, a Ser20-Lys41 fragment of beta2-m, has been known to form fibrils over a wide range of pH and solvent conditions. Recent solid-state NMR has revealed that K3 oligomer adopts a parallel U-shaped beta-strand-turn-beta-strand motif. In order to investigate the stability and morphologies of K3 oligomers with different sizes (dimer, trimer, and tetramer) and organizations (single and double layers), several all-atom molecular dynamics simulations were conducted at 310 K and pH 2 in water and 2,2,2-trifluoroethanol (TFE). For single-layered organizations, our results show that TFE destabilizes the stacking of K3 peptides due to the fact that TFE weakens the intermolecular hydrophobic interactions of K3 oligomers. In addition, we also identified that the loop region is stabilized by the hydrophobic cluster involving resides Y7, F11, and I16. Our results further suggest that K3 tetramer is a potential minimal nucleus seed for the formation of K3 protofibrils. For double-layered organizations in water, our data demonstrate that K3 peptides can form various stable assemblies through different interfacial arrangements, such as NN, NC, and CC, by different driving forces. We further propose that the stacking of different interfaces between two facing beta-sheets of K3 peptides could be related to different fibril morphologies, which is in good agreement with the previous experimental results, showing that K3 protofibrils associated to formed mature fibrils with a wide range of diameters from 4 to 15 nm when they were transferred from 20% (v/v) TFE to aqueous solution.
Insights
Beta2-microglobulin (beta2-m) K3 peptide forms amyloid fibrils. Molecular dynamics simulations reveal TFE destabilizes K3 oligomers, while tetramers may seed protofibrils, and varied interfaces drive fibril morphology.
Area of Science:
- Biophysics
- Computational Biology
- Materials Science
Background:
- Beta2-microglobulin (beta2-m) amyloid fibrils are linked to dialysis complications.
- The K3 peptide fragment of beta2-m readily forms amyloid structures.
- Previous studies identified a U-shaped beta-strand-turn-beta-strand motif in K3 oligomers.
Purpose of the Study:
- To investigate the stability and morphology of K3 oligomers of varying sizes and organizations.
- To explore the impact of solvent conditions (water vs. TFE) on K3 peptide assembly.
- To identify potential nucleus seeds for K3 protofibril formation.
Main Methods:
- All-atom molecular dynamics simulations at 310 K and pH 2.
- Simulations conducted in both aqueous and 2,2,2-trifluoroethanol (TFE) environments.
- Analysis of single-layered and double-layered K3 oligomer organizations.
Main Results:
- TFE destabilizes K3 oligomer stacking by weakening hydrophobic interactions.
- A hydrophobic cluster involving Y7, F11, and I16 stabilizes the K3 loop region.
- K3 tetramers are proposed as minimal seeds for K3 protofibrils.
- In water, K3 peptides form diverse stable assemblies via NN, NC, and CC interfacial arrangements.
- Different interfacial stacking modes correlate with observed fibril morphologies.
Conclusions:
- Solvent choice significantly impacts K3 oligomer stability and assembly.
- The K3 tetramer represents a critical nucleus for amyloid fibril formation.
- Interfacial interactions in double-layered structures dictate the morphology of beta2-m amyloid fibrils.
- Findings align with experimental observations of K3 protofibril to mature fibril transitions.
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