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Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway

[Image: see text] Six light-harvesting-2 complexes (LH2) from genetically modified strains of the purple photosynthetic bacterium Rhodobacter (Rb.) sphaeroides were studied using static and ultrafast optical methods and resonance Raman spectroscopy. These strains were engineered to incorporate carot...

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Autores principales: Dilbeck, Preston L., Tang, Qun, Mothersole, David J., Martin, Elizabeth C., Hunter, C. Neil, Bocian, David F., Holten, Dewey, Niedzwiedzki, Dariusz M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2016
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4921951/
https://www.ncbi.nlm.nih.gov/pubmed/27285777
http://dx.doi.org/10.1021/acs.jpcb.6b03305
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author Dilbeck, Preston L.
Tang, Qun
Mothersole, David J.
Martin, Elizabeth C.
Hunter, C. Neil
Bocian, David F.
Holten, Dewey
Niedzwiedzki, Dariusz M.
author_facet Dilbeck, Preston L.
Tang, Qun
Mothersole, David J.
Martin, Elizabeth C.
Hunter, C. Neil
Bocian, David F.
Holten, Dewey
Niedzwiedzki, Dariusz M.
author_sort Dilbeck, Preston L.
collection PubMed
description [Image: see text] Six light-harvesting-2 complexes (LH2) from genetically modified strains of the purple photosynthetic bacterium Rhodobacter (Rb.) sphaeroides were studied using static and ultrafast optical methods and resonance Raman spectroscopy. These strains were engineered to incorporate carotenoids for which the number of conjugated groups (N = N(C=C) + N(C=O)) varies from 9 to 15. The Rb. sphaeroides strains incorporate their native carotenoids spheroidene (N = 10) and spheroidenone (N = 11), as well as longer-chain analogues including spirilloxanthin (N = 13) and diketospirilloxantion (N = 15) normally found in Rhodospirillum rubrum. Measurements of the properties of the carotenoid first singlet excited state (S(1)) in antennas from the Rb. sphaeroides set show that carotenoid-bacteriochlorophyll a (BChl a) interactions are similar to those in LH2 complexes from various other bacterial species and thus are not significantly impacted by differences in polypeptide composition. Instead, variations in carotenoid-to-BChl a energy transfer are primarily regulated by the N-determined energy of the carotenoid S(1) excited state, which for long-chain (N ≥ 13) carotenoids is not involved in energy transfer. Furthermore, the role of the long-chain carotenoids switches from a light-harvesting supporter (via energy transfer to BChl a) to a quencher of the BChl a S(1) excited state B850*. This quenching is manifested as a substantial (∼2-fold) reduction of the B850* lifetime and the B850* fluorescence quantum yield for LH2 housing the longest carotenoids.
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spelling pubmed-49219512016-07-01 Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway Dilbeck, Preston L. Tang, Qun Mothersole, David J. Martin, Elizabeth C. Hunter, C. Neil Bocian, David F. Holten, Dewey Niedzwiedzki, Dariusz M. J Phys Chem B [Image: see text] Six light-harvesting-2 complexes (LH2) from genetically modified strains of the purple photosynthetic bacterium Rhodobacter (Rb.) sphaeroides were studied using static and ultrafast optical methods and resonance Raman spectroscopy. These strains were engineered to incorporate carotenoids for which the number of conjugated groups (N = N(C=C) + N(C=O)) varies from 9 to 15. The Rb. sphaeroides strains incorporate their native carotenoids spheroidene (N = 10) and spheroidenone (N = 11), as well as longer-chain analogues including spirilloxanthin (N = 13) and diketospirilloxantion (N = 15) normally found in Rhodospirillum rubrum. Measurements of the properties of the carotenoid first singlet excited state (S(1)) in antennas from the Rb. sphaeroides set show that carotenoid-bacteriochlorophyll a (BChl a) interactions are similar to those in LH2 complexes from various other bacterial species and thus are not significantly impacted by differences in polypeptide composition. Instead, variations in carotenoid-to-BChl a energy transfer are primarily regulated by the N-determined energy of the carotenoid S(1) excited state, which for long-chain (N ≥ 13) carotenoids is not involved in energy transfer. Furthermore, the role of the long-chain carotenoids switches from a light-harvesting supporter (via energy transfer to BChl a) to a quencher of the BChl a S(1) excited state B850*. This quenching is manifested as a substantial (∼2-fold) reduction of the B850* lifetime and the B850* fluorescence quantum yield for LH2 housing the longest carotenoids. American Chemical Society 2016-06-10 2016-06-23 /pmc/articles/PMC4921951/ /pubmed/27285777 http://dx.doi.org/10.1021/acs.jpcb.6b03305 Text en Copyright © 2016 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Dilbeck, Preston L.
Tang, Qun
Mothersole, David J.
Martin, Elizabeth C.
Hunter, C. Neil
Bocian, David F.
Holten, Dewey
Niedzwiedzki, Dariusz M.
Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title_full Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title_fullStr Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title_full_unstemmed Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title_short Quenching Capabilities of Long-Chain Carotenoids in Light-Harvesting-2 Complexes from Rhodobacter sphaeroides with an Engineered Carotenoid Synthesis Pathway
title_sort quenching capabilities of long-chain carotenoids in light-harvesting-2 complexes from rhodobacter sphaeroides with an engineered carotenoid synthesis pathway
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4921951/
https://www.ncbi.nlm.nih.gov/pubmed/27285777
http://dx.doi.org/10.1021/acs.jpcb.6b03305
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