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Updated: Jun 21, 2026

Ensemble Force Spectroscopy by Shear Forces
Published on: July 26, 2022
Single-molecule force spectroscopy measures structural changes induced by light activation and transducer binding in
Leoni Oberbarnscheidt1, Richard Janissen, Swetlana Martell
1Institut für molekulare physikalische Chemie, Düsseldorf, Germany.
Abstract:
Microbial rhodopsins are a family of seven-helical transmembrane proteins containing retinal as chromophore. Sensory rhodopsin II (SRII) triggers two very different responses upon light excitation, depending on the presence or the absence of its cognate transducer HtrII: Whereas light activation of the NpSRII/NpHtrII complex activates a signalling cascade that initiates the photophobic response, NpSRII alone acts as a proton pump. Using single-molecule force spectroscopy, we analysed the stability of NpSRII and its complex with the transducer in the dark and under illumination. By improving force spectroscopic data analysis, we were able to reveal the localisation of occurring forces within the protein chain with a resolution of about six amino acids. Distinct regions in helices G and F were affected differently, depending on the experimental conditions. The results are generally in line with previous data on the molecular stability of NpSRII. Interestingly, new interaction sites were identified upon light activation, whose functional importance is discussed in detail.
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