The Onset of Molecule‐Spanning Dynamics in Heat Shock Protein Hsp90

Author:

Sohmen Benedikt1ORCID,Beck Christian23ORCID,Frank Veronika1ORCID,Seydel Tilo3ORCID,Hoffmann Ingo3ORCID,Hermann Bianca1ORCID,Nüesch Mark4ORCID,Grimaldo Marco3ORCID,Schreiber Frank2ORCID,Wolf Steffen5ORCID,Roosen‐Runge Felix67ORCID,Hugel Thorsten18ORCID

Affiliation:

1. Institute of Physical Chemistry University of Freiburg Albertstrasse 21 79104 Freiburg Germany

2. Institute of Applied Physics University of Tübingen Auf der Morgenstelle 10 72076 Tübingen Germany

3. Science Division Institut Max von Laue ‐ Paul Langevin 71 avenue des Martyrs Grenoble 38042 France

4. Department of Biochemistry University of Zurich Winterthurerstrasse 190 CH‐8057 Zurich Switzerland

5. Biomolecular Dynamics, Institute of Physics University of Freiburg Hermann‐Herder‐Strasse 3 79104 Freiburg Germany

6. Department of Biomedical Sciences and Biofilms‐Research Center for Biointerfaces (BRCB) Malmö University 20506 Malmö Sweden

7. Division of Physical Chemistry Lund University Naturvetarvägen 14 22100 Lund Sweden

8. Signalling Research Centers BIOSS and CIBSS University of Freiburg Schänzlestrasse 18 79104 Freiburg Germany

Abstract

AbstractProtein dynamics have been investigated on a wide range of time scales. Nano‐ and picosecond dynamics have been assigned to local fluctuations, while slower dynamics have been attributed to larger conformational changes. However, it is largely unknown how fast (local) fluctuations can lead to slow global (allosteric) changes. Here, fast molecule‐spanning dynamics on the 100 to 200 ns time scale in the heat shock protein 90 (Hsp90) are shown. Global real‐space movements are assigned to dynamic modes on this time scale, which is possible by a combination of single‐molecule fluorescence, quasi‐elastic neutron scattering and all‐atom molecular dynamics (MD) simulations. The time scale of these dynamic modes depends on the conformational state of the Hsp90 dimer. In addition, the dynamic modes are affected to various degrees by Sba1, a co‐chaperone of Hsp90, depending on the location within Hsp90, which is in very good agreement with MD simulations. Altogether, this data is best described by fast molecule‐spanning dynamics, which precede larger conformational changes in Hsp90 and might be the molecular basis for allostery. This integrative approach provides comprehensive insights into molecule‐spanning dynamics on the nanosecond time scale for a multi‐domain protein.

Funder

H2020 European Research Council

Deutsche Forschungsgemeinschaft

Bundesministerium für Bildung und Forschung

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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