Sep 2026· Theoretical and Natural Science· Vol 190, pp. 195-205· 0 citations
Protein Structure and Dynamics
Abstract
Protein folding is a process in which the linear amino acid chain is transformed into a stable three-dimensional native structure which enables the protein to carry out its function. In several neurodegenerative diseases, including Alzheimer's disease (amyloid-β) and Huntington's disease (huntingtin), a pathological mechanism is the misfolding and aggregation of specific proteins. This study quantifies the independent effect of hydrophobic proportion and spatial distribution on conformational stability and conformational search efficiency using a fully controlled 20-residue two-dimensional (2-D) HP lattice model, and a standardized simulated annealing (SA) workflow. Results showed that the total hydrophobic content was the most important factor for thermodynamic stability and the relative performance of the two distribution patterns showed a significant crossover effect. However, only at low levels of hydrophobicity (less than 40%) do contiguous hydrophobic blocks outperform dispersed ones, with evenly dispersed residues forming more symmetric globular structures, being more energy stable and compact. This pattern-dependent reversal can account for the conflicting conclusions of the previous studies that are confined to a narrow hydrophobic range. All conclusions are only applicable to the present short-chain 2D lattice system and fixed annealing parameters, and cannot be directly compared with the real physical folding time for natural proteins or transferred to longer sequence systems.
This work employs MD simulations and the path-metadynamics method to elucidate the dissociation/formation mechanism of the complex GCN4 leucine zipper between the native state (N) and the denatured state (D).
The results demonstrate that path-metadynamics enables the calculation of rate constants, the localization of transition states, and the mapping of the free energy along a transition path described on a high-dimensional space.
Metamorphic proteins challenge the classical view of protein folding by reversibly interconverting between two distinct, stable native structures. XCL1 (lymphotactin) is a prototypical example, transitioning between a monomeric mixed- α / β chemokine fold and an alternate all- β fold that forms a stable dimer. Here we...
B. Seifi, Greg de Souza, Stefan Wallin· Proteins: Structure, Functio...· 0 citations
Phosphorylation of amyloid-β (Aβ40) at Ser8 and Ser26 exerts opposing effects on fibril formation: Ser8 phosphorylation promotes aggregation, whereas Ser26 phosphorylation strongly inhibits it. Using replica exchange with solute tempering (REST2) simulations and coarse-grained modeling, we reveal the atomic-level mecha...
Zai-Hang Ye, Chen Wang, Bin Tu et al.· Journal of Physical Chemistr...· 0 citations
Heavy water (D2O) is widely used in biomolecular spectroscopy and imaging, often under the assumption that it is an inert replacement for H2O. However, D2O differs subtly in hydrogen-bonding, viscosity, and dielectric properties, which can alter biomolecular interactions and self-assembly. Here, we test how solvent iso...
A new machine-learning framework aims to improve the success rate of computational protein design while moving away from results that reproduce sequences found in nature.