Femtosecond-to-millisecond structural changes in a light-driven sodium pump.

Dardan Gashi, Jörg Standfuss, Joachim Heberle, Christopher Milne, Igor Schapiro, Przemyslaw Nogly, Valerie Panneels, Roger M Benoit, Gebhard F X Schertler, Xavier Deupi, Steffen Brünle, Demet Kekilli, Thomas Gruhl, Maximilian Wranik, Sandra Mous, Petr Skopintsev, Christopher Arrell, Claudio Cirelli, Gregor Knopp, Karol Nass, Florian Dworkowski, Isabelle Martiel, Antonia Furrer, Dmitry Ozerov, Philip J M Johnson, Rajiv K Kar, Daniel James, Tobias Weinert, David Ehrenberg

Journal: Nature 2020;583(7815):314-318

PMID: 32499654

Abstract

Light-driven sodium pumps actively transport small cations across cellular membranes. These pumps are used by microorganisms to convert light into membrane potential and have become useful optogenetic tools with applications in neuroscience. Although the resting state structures of the prototypical sodium pump Krokinobacter eikastus rhodopsin 2 (KR2) have been solved, it is unclear how structural alterations over time allow sodium to be translocated against a concentration gradient. Here, using the Swiss X-ray Free Electron Laser, we have collected serial crystallographic data at ten pump-probe delays from femtoseconds to milliseconds. High-resolution structural snapshots throughout the KR2 photocycle show how retinal isomerization is completed on the femtosecond timescale and changes the local structure of the binding pocket in the early nanoseconds. Subsequent rearrangements and deprotonation of the retinal Schiff base open an electrostatic gate in microseconds. Structural and spectroscopic data, in combination with quantum chemical calculations, indicate that a sodium ion binds transiently close to the retinal within one millisecond. In the last structural intermediate, at 20 milliseconds after activation, we identified a potential second sodium-binding site close to the extracellular exit. These results provide direct molecular insight into the dynamics of active cation transport across biological membranes.

Address: Laboratory of Biomolecular Research, Biology and Chemistry Division, Paul Scherrer Institut, Villigen, Switzerland.; Experimental Molecular Biophysics, Department of Physics, Freie Universität Berlin, Berlin, Germany.; Fritz Haber Center for Molecular Dynamics, Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem, Israel.; Laboratory of Non-linear Optics, Photon Science Division, Paul Scherrer Institut, Villigen, Switzerland.; Science IT, Paul Scherrer Institut, Villigen, Switzerland.; Laboratory for Macromolecules and Bioimaging, Photon Science Division, Paul Scherrer Institut, Villigen, Switzerland.; Laboratory of Femtochemistry, Photon Science Division, Paul Scherrer Institut, Villigen, Switzerland.; Laboratory for Advanced Photonics, Photon Science Division, Paul Scherrer Institut, Villigen, Switzerland.; Institute of Molecular Biology and Biophysics, Department of Biology, ETH Zürich, Zürich, Switzerland.; Condensed Matter Theory Group, Paul Scherrer Institut, Villigen, Switzerland.; Department of Biology, ETH Zürich, Zürich, Switzerland.; Laboratory of Nanoscale Biology, Division of Biology and Chemistry, Paul Scherrer Institut, Villigen, Switzerland.; Laboratory of Biomolecular Research, Biology and Chemistry Division, Paul Scherrer Institut, Villigen, Switzerland. [email protected].

Link outs

Subscription / membership required

Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.