Characterization of biopolymers in both dry and weakly hydrated amorphous states has implications for the pharmaceutical industry since it provides understanding of the effect of lyophilisation on stability and biological activity. Atomistic Molecular Dynamics (MD) simulations probe structural and dynamical features related to system functionality. However, while simulations in homogenous aqueous environments are routine, dehydrated model assemblies are a challenge with systems investigated in-silico needing careful consideration; simulated systems potentially differing markedly despite seemingly negligible changes in procedure. Here we propose an in-silico protocol to model proteins in lyophilised and weakly hydrated amorphous states that is both more experimentally representative and routinely applicable. Since the outputs from MD align directly with those accessed by neutron scattering, the efficacy of the simulation protocol proposed is shown by validating against experimental neutron data for apoferritin and insulin. This work also highlights that without cooperative experimental and simulative data, development of simulative procedures using MD alone would prove most challenging.

Bassotti, E., Gabrielli, S., Paradossi, G., Chiessi, E., Telling, M. (2024). An experimentally representative in-silico protocol for dynamical studies of lyophilised and weakly hydrated amorphous proteins. COMMUNICATIONS CHEMISTRY, 7(1) [10.1038/s42004-024-01167-6].

An experimentally representative in-silico protocol for dynamical studies of lyophilised and weakly hydrated amorphous proteins

Bassotti, Elisa;Gabrielli, Sara;Paradossi, Gaio;Chiessi, Ester
;
Telling, Mark
2024-04-12

Abstract

Characterization of biopolymers in both dry and weakly hydrated amorphous states has implications for the pharmaceutical industry since it provides understanding of the effect of lyophilisation on stability and biological activity. Atomistic Molecular Dynamics (MD) simulations probe structural and dynamical features related to system functionality. However, while simulations in homogenous aqueous environments are routine, dehydrated model assemblies are a challenge with systems investigated in-silico needing careful consideration; simulated systems potentially differing markedly despite seemingly negligible changes in procedure. Here we propose an in-silico protocol to model proteins in lyophilised and weakly hydrated amorphous states that is both more experimentally representative and routinely applicable. Since the outputs from MD align directly with those accessed by neutron scattering, the efficacy of the simulation protocol proposed is shown by validating against experimental neutron data for apoferritin and insulin. This work also highlights that without cooperative experimental and simulative data, development of simulative procedures using MD alone would prove most challenging.
12-apr-2024
Online ahead of print
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/02
English
Con Impact Factor ISI
https://www.nature.com/articles/s42004-024-01167-6
Bassotti, E., Gabrielli, S., Paradossi, G., Chiessi, E., Telling, M. (2024). An experimentally representative in-silico protocol for dynamical studies of lyophilised and weakly hydrated amorphous proteins. COMMUNICATIONS CHEMISTRY, 7(1) [10.1038/s42004-024-01167-6].
Bassotti, E; Gabrielli, S; Paradossi, G; Chiessi, E; Telling, M
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/360485
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