Literature DB >> 21381708

Exciton delocalization and energy transport mechanisms in R-phycoerythrin.

Jordan M Womick1, Haoming Liu, Andrew M Moran.   

Abstract

Energy transport mechanisms in R-Phycoerythrin (RPE), a light harvesting protein located at the top of the phycobilisome antenna in red algae, are investigated using nonlinear optical spectroscopies and theoretical models. The RPE hexamer possesses a total of 30 bilin pigments, which can be subdivided into three classes based on their molecular structures and electronic resonance frequencies. Of particular interest to this study is the influence of exciton delocalization on the real-space paths traversed by photoexcitations as they concentrate on the lowest energy pigment sites. Transient grating measurements show that significant nuclear relaxation occurs at delay times less than 100 fs, whereas energy transport spans a wide range of time scales depending on the proximity of the initial and final states involved in the process. The fastest energy transport dynamics within the RPE complex are close to 1 ps; however, evidence for sub-100 fs exciton self-trapping is also obtained. In addition, photon echo experiments reveal vibronic interactions with overdamped and underdamped nuclear modes. To establish signatures of exciton delocalization, energy transport is simulated using both modified Redfield and Förster theories, which respectively employ delocalized and localized basis states. We conclude that exciton delocalization occurs between six pairs of phycoerythrobilin pigments (i.e., dimers) within the protein hexamer. It is interesting that these dimers are bound in locations analogous to the well-studied phycocyanobilin dimers of cyanobacterial allophycocyanin and c-phycocyanin in which wave function delocalization is also known to take hold. Strong conclusions regarding the electronic structures of the remaining pigments cannot be drawn based on the present experiments and simulations due to overlapping resonances and broad spectroscopic line widths, which prevent the resolution of dynamics at particular pigment sites.

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Year:  2011        PMID: 21381708     DOI: 10.1021/jp111720a

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  4 in total

Review 1.  Coherent phenomena in photosynthetic light harvesting: part two-observations in biological systems.

Authors:  Harry W Rathbone; Jeffery A Davis; Katharine A Michie; Sophia C Goodchild; Neil O Robertson; Paul M G Curmi
Journal:  Biophys Rev       Date:  2018-09-22

2.  In silico model of an antenna of a phycobilisome and energy transfer rates determination by theoretical Förster approach.

Authors:  Maximiliano Figueroa; José Martínez-Oyanedel; Adelio R Matamala; Jorge Dagnino-Leone; Claudia Mella; Rubén Fritz; José Sepúlveda-Ugarte; Marta Bunster
Journal:  Protein Sci       Date:  2012-11-06       Impact factor: 6.725

3.  Excitation energy transfer and vibronic coherence in intact phycobilisomes.

Authors:  Sourav Sil; Ryan W Tilluck; Nila Mohan T M; Chase H Leslie; Justin B Rose; Maria Agustina Domínguez-Martín; Wenjing Lou; Cheryl A Kerfeld; Warren F Beck
Journal:  Nat Chem       Date:  2022-09-19       Impact factor: 24.274

4.  Simulating Quantum Vibronic Dynamics at Finite Temperatures With Many Body Wave Functions at 0 K.

Authors:  Angus J Dunnett; Alex W Chin
Journal:  Front Chem       Date:  2021-01-07       Impact factor: 5.221

  4 in total

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