Literature DB >> 20585699

Identification of excited-state energy transfer and relaxation pathways in the peridinin-chlorophyll complex: an ultrafast mid-infrared study.

Cosimo Bonetti1, Maxime T A Alexandre, Ivo H M van Stokkum, Roger G Hiller, Marie Louise Groot, Rienk van Grondelle, John T M Kennis.   

Abstract

The peridinin chlorophyll-a protein (PCP) is a water-soluble, trimeric light harvesting complex found in marine dinoflagellates that binds peridinin and Chl-a in an unusual stoichiometric ratio of 4:1. In this paper, the pathways of excited-state energy transfer and relaxation in PCP were identified by means of femtosecond visible-pump, mid-infrared probe spectroscopy. In addition, excited-state relaxation of peridinin dissolved in organic solvent (CHCl(3) and MeOH) was investigated. For peridinin in solution, the transient IR signatures of the low-lying S(1) and intramolecular charge transfer (ICT) states were similar, in line with a previous ultrafast IR study. In PCP, excitation of the optically allowed S(2) state of peridinin results in ultrafast energy transfer to Chl-a, in competition with internal conversion to low-lying optically forbidden states of peridinin. After vibrational relaxation of the peridinin hot S(1) state in 150 fs, two separate low-lying peridinin singlet excited states are distinguished, assigned to an ICT state and to a slowly transferring, vibrationally relaxed S(1) state. These states exhibit different lactone bleaches, indicating that the ICT and S(1) states localize on distinct peridinins. Energy transfer from the peridinin ICT state to Chl-a constitutes the dominant energy transfer channel and occurs with a time constant of 2 ps. The peridinin S(1) state mainly decays to the ground state through internal conversion, in competition with slow energy transfer to Chl-a. The singlet excited state of Chl-a undergoes intersystem crossing (ISC) to the triplet state on the nanosecond timescale, followed by rapid triplet excitation energy transfer (TEET) from Chl-a to peridinin, whereby no Chl-a triplet is observed but rather a direct rise of the peridinin triplet. The latter contains some Chl-a features due to excitonic coupling of the pigments. The peridinin triplet state shows a lactone bleach mode at 1748 cm(-1), while that of the peridinin ICT state is located at 1745 cm(-1), indicating that the main channels of singlet and triplet energy transfer in PCP proceed through distinct peridinins. Our results are consistent with an energy transfer scheme where the ICT state mainly localizes on Per621/611 and Per623/613, the S(1) state on Per622/612 and the triplet state on Per624/614.

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Year:  2010        PMID: 20585699     DOI: 10.1039/b923695c

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  10 in total

1.  Investigation of the S1/ICT equilibrium in fucoxanthin by ultrafast pump-dump-probe and femtosecond stimulated Raman scattering spectroscopy.

Authors:  Kipras Redeckas; Vladislava Voiciuk; Mikas Vengris
Journal:  Photosynth Res       Date:  2016-01-07       Impact factor: 3.573

2.  The nature of the intramolecular charge transfer state in peridinin.

Authors:  Nicole L Wagner; Jordan A Greco; Miriam M Enriquez; Harry A Frank; Robert R Birge
Journal:  Biophys J       Date:  2013-03-19       Impact factor: 4.033

3.  Stark fluorescence spectroscopy on peridinin-chlorophyll-protein complex of dinoflagellate, Amphidinium carterae.

Authors:  Anjue Mane Ara; Md Shakil Bin Kashem; Rienk van Grondelle; Md Wahadoszamen
Journal:  Photosynth Res       Date:  2019-11-25       Impact factor: 3.573

4.  Excited-state dynamics of protochlorophyllide revealed by subpicosecond infrared spectroscopy.

Authors:  Miriam Colindres-Rojas; Matthias M N Wolf; Ruth Gross; Sonja Seidel; Benjamin Dietzek; Michael Schmitt; Jürgen Popp; Gudrun Hermann; Rolf Diller
Journal:  Biophys J       Date:  2011-01-05       Impact factor: 4.033

5.  Molecular adaptation of photoprotection: triplet states in light-harvesting proteins.

Authors:  Andrew Gall; Rudi Berera; Maxime T A Alexandre; Andrew A Pascal; Luc Bordes; Maria M Mendes-Pinto; Sandra Andrianambinintsoa; Katerina V Stoitchkova; Alessandro Marin; Leonas Valkunas; Peter Horton; John T M Kennis; Rienk van Grondelle; Alexander Ruban; Bruno Robert
Journal:  Biophys J       Date:  2011-08-17       Impact factor: 4.033

6.  The Energy Transfer Yield between Carotenoids and Chlorophylls in Peridinin Chlorophyll a Protein Is Robust against Mutations.

Authors:  Francesco Tumbarello; Giampaolo Marcolin; Elisa Fresch; Eckhard Hofmann; Donatella Carbonera; Elisabetta Collini
Journal:  Int J Mol Sci       Date:  2022-05-03       Impact factor: 6.208

Review 7.  The unique photophysical properties of the Peridinin-Chlorophyll-α-Protein.

Authors:  Donatella Carbonera; Marilena Di Valentin; Riccardo Spezia; Alberto Mezzetti
Journal:  Curr Protein Pept Sci       Date:  2014       Impact factor: 3.272

8.  Reaction dynamics of the chimeric channelrhodopsin C1C2.

Authors:  Yusaku Hontani; Marco Marazzi; Katja Stehfest; Tilo Mathes; Ivo H M van Stokkum; Marcus Elstner; Peter Hegemann; John T M Kennis
Journal:  Sci Rep       Date:  2017-08-03       Impact factor: 4.379

9.  Dual Singlet Excited-State Quenching Mechanisms in an Artificial Caroteno-Phthalocyanine Light Harvesting Antenna.

Authors:  Janneke Ravensbergen; Smitha Pillai; Dalvin D Méndez-Hernández; Raoul N Frese; Rienk van Grondelle; Devens Gust; Thomas A Moore; Ana L Moore; John T M Kennis
Journal:  ACS Phys Chem Au       Date:  2021-10-14

10.  Coherence in carotenoid-to-chlorophyll energy transfer.

Authors:  Elena Meneghin; Andrea Volpato; Lorenzo Cupellini; Luca Bolzonello; Sandro Jurinovich; Vincenzo Mascoli; Donatella Carbonera; Benedetta Mennucci; Elisabetta Collini
Journal:  Nat Commun       Date:  2018-08-08       Impact factor: 14.919

  10 in total

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