Conductance Mechanisms of Rapidly Desensitizing Cation Channelrhodopsins from Cryptophyte Algae

Author:

Sineshchekov Oleg A.1,Govorunova Elena G.1,Li Hai1ORCID,Wang Yumei1,Melkonian Michael23,Wong Gane K.-S.456,Brown Leonid S.7,Spudich John L.1

Affiliation:

1. Center for Membrane Biology, Department of Biochemistry & Molecular Biology, The University of Texas Health Science Center at Houston McGovern Medical School, Houston, Texas, USA

2. Institute for Plant Sciences, Department of Biology, University of Cologne, Cologne, Germany

3. Central Collection of Algal Cultures, Faculty of Biology, University of Duisburg-Essen, Essen, Germany

4. Department of Biological Sciences, University of Alberta, Edmonton, Alberta, Canada

5. Department of Medicine, University of Alberta, Edmonton, Alberta, Canada

6. Beijing Genomics Institute-Shenzhen, Shenzhen, China

7. Department of Physics and Biophysics Interdepartmental Group, University of Guelph, Guelph, Ontario, Canada

Abstract

Cation channelrhodopsins, light-gated channels from flagellate green algae, are extensively used as optogenetic photoactivators of neurons in research and recently have progressed to clinical trials for vision restoration. However, the molecular mechanisms of their photoactivation remain poorly understood. We recently identified cryptophyte cation channelrhodopsins, structurally different from those of green algae, which have separately evolved to converge on light-gated cation conductance. This study reveals diversity within this new protein family and describes a subclade with unusually rapid desensitization that results in short transient photocurrents in continuous light. Such transient currents have not been observed in the green algae channelrhodopsins and are potentially useful in optogenetic protocols. Kinetic UV-visible (UV-vis) spectroscopy and photoelectrophysiology reveal that the desensitization is caused by rapid accumulation of a nonconductive photointermediate in the photochemical reaction cycle. The absorption maximum of the intermediate is 330 nm, the shortest wavelength reported in any rhodopsin, indicating a novel chromophore structure.

Funder

Robert A. Welch Foundation

HHS | National Institutes of Health

Gouvernement du Canada | Natural Sciences and Engineering Research Council of Canada

Publisher

American Society for Microbiology

Subject

Virology,Microbiology

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