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January 22, 20260 citationsOpen Access

Combined Mutational and Spectroscopic Study on the Calcium-Related Kinetic Effects on the VirChR1 Photocycle

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GLGerrit H. U. LammGoethe University FrankfurtDZDmitrii ZabelskiiEuropean X-Ray Free-Electron LaserTBTaras BalandinForschungszentrum Jülich

Key Points

  • The study aims to investigate the effects of calcium on the photocycle of VirChR1 and the role of specific residues.
  • Conducted time-resolved UV/vis spectroscopy on VirChR1 variants S14A, E54A, and N225A.
  • Compared calcium-dependent effects with the wild type to assess the role of key residues.
  • Analyzed photocycle kinetics in the presence and absence of calcium.
  • S14A variant displayed reduced calcium affinity with similar but less pronounced kinetic signals.
  • E54A exhibited nearly calcium-independent photocycle kinetics, indicating its critical role in calcium binding.
  • N225A showed altered photocycle kinetics, underscoring its importance in the central gate formation.

Abstract

The viral rhodopsin 1 subfamily consists of microbial rhodopsins, such as VirChR1, with a light-gated cation channeling functionality, which is inhibited by calcium. For VirChR1, S14, E54, and N225 have been proposed as key residues for calcium binding. They form a highly conserved SEN-triad in channelrhodopsins near the functionally important central gate. Here, we present a time-resolved UV/vis spectroscopic study on the VirChR1 variants S14A, E54A, and N225A in a calcium-dependent manner. Comparison with the calcium-associated effects observed for the wild type shed light on the role of the respective residues for the calcium interaction. While S14A shows less pronounced, yet similar, signals, indicative of a reduced calcium affinity, E54A exhibits nearly calcium-independent photocycle kinetics, highlighting its crucial role for calcium binding. The N225A variant shows altered photocycle kinetics, in both the absence and presence of calcium, demonstrating its critical role in the formation of the functionally important central gate in VirChR1.

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Cite This Study

Lamm et al. (2025) studied this question.

synapsesocial.com/papers/6971bfdff17b5dc6da021f0ahttps://doi.org/10.34734/fzj-2026-00755
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