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Updated: Sep 25, 2025

Study of Protein Dynamics via Neutron Spin Echo Spectroscopy
Published on: April 13, 2022
Kinetic coherence underlies the dynamics of disordered proteins
1Physics Department, Sapienza University Piazzale Aldo Moro 5 00185 Roma Italy tenen314@gmail.com.
Abstract:
The dynamics of two proteins of similar size, the globular lysozyme and the intrinsically disordered Huntingtin interacting protein, has been simulated in three states resembling a globule, a pre-molten globule, and a molten globule. A coherence time τ has been defined, measuring the delay in the display of a stochastic behaviour after a perturbation of the system. This time has been computed for two sets of collective variables: the projection of the phase point onto the positions and momenta subspaces (τ and τ ), and the principal components (PCs) of positions q and momenta π produced by a covariance analysis in these subspaces (τ and τ ). In all states τ ≈ 3.5τ , and τ ≈ 3.5τ . The coherence times of individual PCs, τ ( q and τ ( π, have also been computed, and τ ( π > τ ( q in all states. The prevalence of τ over τ , or of τ over τ , drives the dynamics of the protein over a time range of ≈1-2 ps; moreover, a hidden synchronism appears to raise the momenta subspace's coherence above that of its individual PCs. In the transition of lysozyme to the molten globule the τ ( q decrease but, unexpectedly, the τ ( π increase; after this transition τ ≈ 5τ and τ ≈ 5τ . A gain of kinetic coherence accompanies thus the loss of structural coherence caused by the denaturation of the protein in the transition from globule to molten globule. The increase of the τ ( π does not take place in the analogous transition of the Huntingtin protein. These results are compared with those of a similar analysis performed on three pseudo-proteins designed by scrambling the primary sequence of the Huntingtin interacting protein, and on two oligopeptides. The hidden synchronism appears to be a generic property of these polypeptides. The τ ( π spectrum is similar in denaturated and in intrinsically disordered biomolecules; but the gain of kinetic coherence as a result of denaturation seems to be a specific property of the biologically functional lysozyme.
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