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Updated: Feb 24, 2026

Determination of Protein-ligand Interactions Using Differential Scanning Fluorimetry
Published on: September 13, 2014
Critical structural fluctuations of proteins upon thermal unfolding challenge the Lindemann criterion
Marina Katava1, Guillaume Stirnemann1, Marco Zanatta2
1Laboratoire de Biochimie Théorique, Institut de Biologie Physico-Chimique, CNRS Unité Propre de Recherche 9080, Université Paris Diderot, Sorbonne Paris Cité, 75005 Paris, France.
Abstract:
Internal subnanosecond timescale motions are key for the function of proteins, and are coupled to the surrounding solvent environment. These fast fluctuations guide protein conformational changes, yet their role for protein stability, and for unfolding, remains elusive. Here, in analogy with the Lindemann criterion for the melting of solids, we demonstrate a common scaling of structural fluctuations of lysozyme protein embedded in different environments as the thermal unfolding transition is approached. By combining elastic incoherent neutron scattering and advanced molecular simulations, we show that, although different solvents modify the protein melting temperature, a unique dynamical regime is attained in proximity of thermal unfolding in all solvents that we tested. This solvation shell-independent dynamical regime arises from an equivalent sampling of the energy landscape at the respective melting temperatures. Thus, we propose that a threshold for the conformational entropy provided by structural fluctuations of proteins exists, beyond which thermal unfolding is triggered.
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