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Is orange carotenoid protein photoactivation a single-photon process?

  • Stanisław Niziński
  • , Ilme Schlichting
  • , Jacques Philippe Colletier
  • , Diana Kirilovsky
  • , Gotard Burdzinski
  • , Michel Sliwa
  • Adam Mickiewicz University/Faculty of Biology
  • Laboratoire de Spectrochimie Infrarouge et Raman, Université des Sciences et Technologies de Lille, UMR-CNRS 8516
  • Max Planck Institute for Medical Research
  • LTHE (UMR 5564 CNRS/IRD/Université de Grenoble)
  • Université Paris-Saclay

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

10 Citations (Scopus)

Résumé

In all published photoactivation mechanisms of orange carotenoid protein (OCP), absorption of a single photon by the orange dark state starts a cascade of red-shifted OCP ground-state intermediates that subsequently decay within hundreds of milliseconds, resulting in the formation of the final red form OCPR, which is the biologically active form that plays a key role in cyanobacteria photoprotection. A major challenge in deducing the photoactivation mechanism is to create a uniform description explaining both single-pulse excitation experiments, involving single-photon absorption, and continuous light irradiation experiments, where the red-shifted OCP intermediate species may undergo re-excitation. We thus investigated photoactivation of Synechocystis OCP using stationary irradiation light with a biologically relevant photon flux density coupled with nanosecond laser pulse excitation. The kinetics of photoactivation upon continuous and nanosecond pulse irradiation light show that the OCPR formation quantum yield increases with photon flux density; thus, a simple single-photon model cannot describe the data recorded for OCP in vitro. The results strongly suggest a consecutive absorption of two photons involving a red intermediate with ≈100 millisecond lifetime. This intermediate is required in the photoactivation mechanism and formation of the red active form OCPR.

langue originaleAnglais
Numéro d'article100072
journalBiophysical Reports
Volume2
Numéro de publication3
Les DOIs
étatPublié - 14 sept. 2022
Modification externeOui

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