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Updated: Oct 10, 2026

NMR 15N Relaxation Experiments for the Investigation of Picosecond to Nanoseconds Structural Dynamics of Proteins
Published on: November 1, 2024
Thermodynamic landscapes of conformational regulation during intrinsically disordered protein fibrillation
Ruijun Gao1,2, Minglun Li1,2
1State Key Laboratory of Polymer Science and Technology, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, People's Republic of China.
Abstract:
Amyloid fibrillation of intrinsically disordered proteins (IDPs) involves a disorder-to-order transition driven by complex sequence-dependent interactions. However, how amino acid sequences and conformational ordering reshape the multi-chain free-energy landscape during fibril formation remains poorly understood. Here, we combine the hybrid-resolution coarse-grained HyRes model with umbrella sampling to reconstruct the potentials of mean force governing successive stages of IDP fibrillation, including free-chain association, fibril-surface recruitment, and multilayer fibril growth. Using α-synuclein, transactive response DNA-binding protein of 43 kDa (TDP-43), and a fibrillar-core construct of fused in sarcoma (FUS-FC) as representative amyloid-forming IDPs, we demonstrate that sequence-encoded electrostatic interactions are a major determinant of association free energies. α-Synuclein exhibits the strongest attraction and salt sensitivity, whereas TDP-43 shows weaker electrostatically regulated interactions. Association of the isolated FUS fibrillar core remains thermodynamically unfavorable, whereas inclusion of nonfibrillar regions makes association favorable. Charge-neutralization simulations further reveal the critical role of electrostatics and charge patterning in controlling association. Conformational restraints and fibrillar surface organization further modulate the free-energy landscape in a protein-specific manner, with recruitment governed by the accessibility and arrangement of surface interaction sites rather than fibril thickness alone. These results provide a thermodynamic framework connecting sequence, conformation, and surface organization to the molecular mechanisms of amyloid assembly.
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