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  4. Active Conformation Control of Unfolded Proteins by Hyperthermal Collision with a Metal Surface
 
research article

Active Conformation Control of Unfolded Proteins by Hyperthermal Collision with a Metal Surface

Rinke, Gordon
•
Rauschenbach, Stephan
•
Harnau, Ludger
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2014
Nano Letters

The physical and chemical properties of macromolecules like proteins are strongly dependent on their conformation. The degrees of freedom of their chemical bonds generate a huge conformational space, of which, however, only a small fraction is accessible in thermal equilibrium. Here we show that soft-landing electrospray ion beam deposition (ES-IBD) of unfolded proteins allows to control their conformation. The dynamics and result of the deposition process can be actively steered by selecting the molecular ion beam's charge state or tuning the incident energy. Using these parameters, protein conformations ranging from fully extended to completely compact can be prepared selectively on a surface, as evidenced on the subnanometer/amino acid resolution level by scanning tunneling microscopy (STM). Supported by molecular dynamics (MD) simulations, our results demonstrate that the final conformation on the surface is reached through a mechanical deformation during the hyperthermal ion surface collision. Our experimental results independently confirm the findings of ion mobility spectrometry (IMS) studies of protein gas phase conformations. Moreover, we establish a new route for the processing of macromolecular materials, with the potential to reach conformations that would be inaccessible otherwise.

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Type
research article
DOI
10.1021/nl502122j
Web of Science ID

WOS:000343016400020

Author(s)
Rinke, Gordon
Rauschenbach, Stephan
Harnau, Ludger
Albarghash, Alyazan
Pauly, Matthias
Kern, Klaus  
Date Issued

2014

Publisher

Amer Chemical Soc

Published in
Nano Letters
Volume

14

Issue

10

Start page

5609

End page

5615

Subjects

Protein

•

surface

•

soft landing

•

ion beam deposition

•

scanning tunneling microscopy

•

charge state

•

persistence length

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSEN  
Available on Infoscience
November 13, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/108683
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