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February 6, 2013Scientific Reports151 citationsOpen Access

Microscopic mechanism of protein cryopreservation in an aqueous solution with trehalose

DCDario CorradiniESElena G. StrekalovaHSH. Eugene Stanley

Key Points

  • To determine the microscopic mechanism by which trehalose acts as a cryoprotectant for proteins in aqueous solutions during cooling.
  • Conducted molecular dynamics computer simulations of aqueous lysozyme solutions with and without trehalose.
  • Evaluated the microscopic dynamics and structural organization of water within protein hydration layers across cooling conditions.
  • Trehalose caused global retardation of water dynamics, markedly reducing water mobility within lysozyme hydration layers compared to trehalose-free solutions.
  • Trehalose molecules formed a transient cage encapsulating the protein and entrapping slowed water molecules, inhibiting hydration water crystallization upon cooling.

Abstract

In order to investigate the cryoprotective mechanism of trehalose on proteins, we use molecular dynamics computer simulations to study the microscopic dynamics of water upon cooling in an aqueous solution of lysozyme and trehalose. We find that the presence of trehalose causes global retardation of the dynamics of water. Comparing aqueous solutions of lysozyme with/without trehalose, we observe that the dynamics of water in the hydration layers close to the protein is dramatically slower when trehalose is present in the system. We also analyze the structure of water and trehalose around the lysozyme and find that the trehalose molecules form a cage surrounding the protein that contains very slow water molecules. We conclude that the transient cage of trehalose molecules that entraps and slows the water molecules prevents the crystallisation of protein hydration water upon cooling.

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Cite This Study

Corradini et al. (2013) studied this question.

synapsesocial.com/papers/69eb18322be2520c67ef24f3https://doi.org/10.1038/srep01218
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