Chemistry The many structures of the light-active biomolecules

Some molecules change their spatial structure when exposed to light – in other words, they look different in light and darkness. What exactly happens during the conversion has not yet been researched in detail.

How the light-sensitive part of the biomolecule phytochrome changes from a light-adapted state to a dark-adapted state has been investigated by researchers at Ruhr-Universität Bochum and Philipps-Universität Marburg. So far, the structures of only a few light-sensitive biomolecules are known – and only for the final states in light and darkness, but not for the intermediate steps. Using various spectroscopic methods, the Bochum-Marburg team has now succeeded in gaining new insights into dynamic structural changes.

The group led by Professor Enrica Bordignon from Bochum and Professor Oliver Essen from Marburg describe the findings in the journal Structure, published online on 20 September 2018.

Investigating light-driven structural changes

“Light-sensitive biomolecules such as phytochromes from plants are interesting for various applications, for example in agriculture, where a change in phytochrome could optimise the growth habits of plants, or for optogenetic tools that make it possible to control the activity of genetically modified cells in the living body with light,” says Enrica Bordignon, head of Bochum’s EPR Spectroscopy Working Group. Insights into how the photoreceptors change their spatial structure when exposed to light could advance these applications. “So far, however, it has been a challenge to decipher these processes with atomic resolution,” explains doctoral researcher Tufa Assafa.

Universal mechanism

The researchers analysed a phytochrome molecule from cyanobacteria using a special form of mass spectrometry and a spectroscopic method called electron spin resonance. In contrast to other methods, they were able to study the molecule in solution and track its structural changes without having to crystallise it. They observed several characteristic structural changes in the light-sensitive segment of the phytochrome and created a model that shows the light-triggered conversion steps. In addition, the team showed that, for different phytochromes, there is a universal mechanism for the transformation from the dark-adapted to the light-adapted state.

Funding

The work was financially supported by the Loewe Center for Synthetic Microbiology and the German Research Foundation as part of the ES152/10 project, the SPP1601 priority programme, and the Ruhr Explores Solvation (EXC 1069) Cluster of Excellence.

Original publication

Tufa E. Assafa, Katrin Anders, Uwe Linne, Lars-Oliver Essen, Enrica Bordignon: Light-Driven Domain Mechanics of a Minimal Phytochrome Photosensory Module Studied by EPR, in: Structure, 2018, DOI: 10.1016/j.str.2018.08.003

Press contact

Prof. Dr. Enrica Bordignon
EPR Spectroscopy Working Group
Faculty of Chemistry and Biochemistry
Ruhr-Universität Bochum
Germany
Phone: +49 234 32 26239
Email: enrica.bordignon@rub.de

Download high-resolution images
Der Download der gewählten Bilder erfolgt als ZIP-Datei. Bildzeilen und Bildnachweise finden Sie nach dem Entpacken in der enthaltenen HTML-Datei.
Nutzungsbedingungen
Die Verwendung der Bilder ist unter Angabe des entsprechenden Copyrights für die Presse honorarfrei. Die Bilder dürfen ausschließlich für eine Berichterstattung mit Bezug zur Ruhr-Universität Bochum verwendet werden, die sich ausschließlich auf die Inhalte des Artikels bezieht, der den Link zum Bilderdownload enthält. Mit dem Download erhalten Sie ein einfaches Nutzungsrecht zur einmaligen Berichterstattung. Eine weitergehende Bearbeitung, die über das Anpassen an das jeweilige Layout hinausgeht, oder eine Speicherung der Bilder für weitere Zwecke, erfordert eine Erweiterung des Nutzungsrechts. Sollten Sie die Fotos daher auf andere Weise verwenden wollen, kontaktieren Sie bitte redaktion@ruhr-uni-bochum.de

Published

Tuesday
09 October 2018
9:01 am

By

Julia Weiler

Translated by

Lund Languages

Share