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Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I

Photosystem I (PSI) from Chroococcidiopsis thermalis PCC 7203 grown under far-red light (FRL; >725 nm) contains both chlorophyll a and a small proportion of chlorophyll f. Here, we investigated excitation energy transfer and charge separation using this FRL-grown form of PSI (FRL-PSI). We compare...

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Autores principales: Kaucikas, Marius, Nürnberg, Dennis, Dorlhiac, Gabriel, Rutherford, A. William, van Thor, Jasper J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5266252/
https://www.ncbi.nlm.nih.gov/pubmed/28122212
http://dx.doi.org/10.1016/j.bpj.2016.12.022
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author Kaucikas, Marius
Nürnberg, Dennis
Dorlhiac, Gabriel
Rutherford, A. William
van Thor, Jasper J.
author_facet Kaucikas, Marius
Nürnberg, Dennis
Dorlhiac, Gabriel
Rutherford, A. William
van Thor, Jasper J.
author_sort Kaucikas, Marius
collection PubMed
description Photosystem I (PSI) from Chroococcidiopsis thermalis PCC 7203 grown under far-red light (FRL; >725 nm) contains both chlorophyll a and a small proportion of chlorophyll f. Here, we investigated excitation energy transfer and charge separation using this FRL-grown form of PSI (FRL-PSI). We compared femtosecond transient visible absorption changes of normal, white-light (WL)-grown PSI (WL-PSI) with those of FRL-PSI using excitation at 670 nm, 700 nm, and (in the case of FRL-PSI) 740 nm. The possibility that chlorophyll f participates in energy transfer or charge separation is discussed on the basis of spectral assignments. With selective pumping of chlorophyll f at 740 nm, we observe a final ∼150 ps decay assigned to trapping by charge separation, and the amplitude of the resulting P700(+•)A(1)(−•) charge-separated state indicates that the yield is directly comparable to that of WL-PSI. The kinetics shows a rapid 2 ps time constant for almost complete transfer to chlorophyll f if chlorophyll a is pumped with a wavelength of 670 nm or 700 nm. Although the physical role of chlorophyll f is best supported as a low-energy radiative trap, the physical location should be close to or potentially within the charge-separating pigments to allow efficient transfer for charge separation on the 150 ps timescale. Target models can be developed that include a branching in the formation of the charge separation for either WL-PSI or FRL-PSI.
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spelling pubmed-52662522018-01-24 Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I Kaucikas, Marius Nürnberg, Dennis Dorlhiac, Gabriel Rutherford, A. William van Thor, Jasper J. Biophys J Proteins Photosystem I (PSI) from Chroococcidiopsis thermalis PCC 7203 grown under far-red light (FRL; >725 nm) contains both chlorophyll a and a small proportion of chlorophyll f. Here, we investigated excitation energy transfer and charge separation using this FRL-grown form of PSI (FRL-PSI). We compared femtosecond transient visible absorption changes of normal, white-light (WL)-grown PSI (WL-PSI) with those of FRL-PSI using excitation at 670 nm, 700 nm, and (in the case of FRL-PSI) 740 nm. The possibility that chlorophyll f participates in energy transfer or charge separation is discussed on the basis of spectral assignments. With selective pumping of chlorophyll f at 740 nm, we observe a final ∼150 ps decay assigned to trapping by charge separation, and the amplitude of the resulting P700(+•)A(1)(−•) charge-separated state indicates that the yield is directly comparable to that of WL-PSI. The kinetics shows a rapid 2 ps time constant for almost complete transfer to chlorophyll f if chlorophyll a is pumped with a wavelength of 670 nm or 700 nm. Although the physical role of chlorophyll f is best supported as a low-energy radiative trap, the physical location should be close to or potentially within the charge-separating pigments to allow efficient transfer for charge separation on the 150 ps timescale. Target models can be developed that include a branching in the formation of the charge separation for either WL-PSI or FRL-PSI. The Biophysical Society 2017-01-24 2017-01-24 /pmc/articles/PMC5266252/ /pubmed/28122212 http://dx.doi.org/10.1016/j.bpj.2016.12.022 Text en © 2017 Biophysical Society. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Proteins
Kaucikas, Marius
Nürnberg, Dennis
Dorlhiac, Gabriel
Rutherford, A. William
van Thor, Jasper J.
Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title_full Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title_fullStr Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title_full_unstemmed Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title_short Femtosecond Visible Transient Absorption Spectroscopy of Chlorophyll f-Containing Photosystem I
title_sort femtosecond visible transient absorption spectroscopy of chlorophyll f-containing photosystem i
topic Proteins
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5266252/
https://www.ncbi.nlm.nih.gov/pubmed/28122212
http://dx.doi.org/10.1016/j.bpj.2016.12.022
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