TY - JOUR
T1 - Temperature dependent LH1 → RC energy transfer in purple bacteria Tch. tepidum with shiftable LH1-Qy band
T2 - A natural system to investigate thermally activated energy transfer in photosynthesis
AU - Ma, Fei
AU - Yu, Long Jiang
AU - Wang-Otomo, Zheng Yu
AU - Van Grondelle, Rienk
N1 - Funding Information:
F.M. and R.v.G. were supported by the VU University and by an Advanced Investigator grant from the European Research Council (No. 267333 , PHOTPROT) to R.v.G. R.v.G. was further supported by the Nederlandse Organisatie voor Wetenschappelijk Onderzoek, Council of Chemical Sciences (NWO-CW) via a TOP-grant ( 700.58.305 ), and by the EU FP7 project PAPETS ( GA 323901 ). R.v.G. gratefully acknowledges his Academy Professor grant from The Netherlands Royal Academy of Sciences (KNAW).
Publisher Copyright:
© 2015 Elsevier B.V. All rights reserved.
PY - 2016/4/1
Y1 - 2016/4/1
N2 - The native LH1-RC complex of the purple bacterium Thermochromatium (Tch.) tepidum has an ultra-red LH1-Qy absorption at 915 nm, which can shift to 893 and 882 nm by means of chemical modifications. These unique complexes are a good natural system to investigate the thermally activated energy transfer process, with the donor energies different while the other factors (such as the acceptor energy, special pair at 890 nm, and the distance/relative orientation between the donor and acceptor) remain the same. The native B915-RC, B893-RC and B882-RC complexes, as well as the LH1-RC complex of Rhodobacter (Rba.) sphaeroides were studied by temperature-dependent time-resolved absorption spectroscopy. The energy transfer time constants, kET- 1, are 65, 45, 46 and 45 ps at room temperature while 225, 58, 85, 33 ps at 77 K for the B915-RC, B893-RC, B882-RC and Rba. sphaeroides LH1-RC, respectively. The dependences of kET on temperature have different trends. The reorganization energies are determined to be 70, 290, 200 and 45 cm- 1, respectively, by fitting kET vs temperature using Marcus equation. The activation energies are 200, 60, 115 and 20 cm- 1, respectively. The influences of the structure (the arrangement of the 32 BChl a molecules) on kET are discussed based on these results, to reveal how the B915-RC complex accomplishes its energy transfer function with a large uphill energy of 290 cm- 1.
AB - The native LH1-RC complex of the purple bacterium Thermochromatium (Tch.) tepidum has an ultra-red LH1-Qy absorption at 915 nm, which can shift to 893 and 882 nm by means of chemical modifications. These unique complexes are a good natural system to investigate the thermally activated energy transfer process, with the donor energies different while the other factors (such as the acceptor energy, special pair at 890 nm, and the distance/relative orientation between the donor and acceptor) remain the same. The native B915-RC, B893-RC and B882-RC complexes, as well as the LH1-RC complex of Rhodobacter (Rba.) sphaeroides were studied by temperature-dependent time-resolved absorption spectroscopy. The energy transfer time constants, kET- 1, are 65, 45, 46 and 45 ps at room temperature while 225, 58, 85, 33 ps at 77 K for the B915-RC, B893-RC, B882-RC and Rba. sphaeroides LH1-RC, respectively. The dependences of kET on temperature have different trends. The reorganization energies are determined to be 70, 290, 200 and 45 cm- 1, respectively, by fitting kET vs temperature using Marcus equation. The activation energies are 200, 60, 115 and 20 cm- 1, respectively. The influences of the structure (the arrangement of the 32 BChl a molecules) on kET are discussed based on these results, to reveal how the B915-RC complex accomplishes its energy transfer function with a large uphill energy of 290 cm- 1.
KW - LH1 → RC energy transfer
KW - Thermally activated energy transfer
KW - Thermochromatium (Tch.) tepidum
KW - Time-resolved absorption spectroscopy
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U2 - 10.1016/j.bbabio.2015.12.006
DO - 10.1016/j.bbabio.2015.12.006
M3 - Article
C2 - 26702949
AN - SCOPUS:84959450563
SN - 0005-2728
VL - 1857
SP - 408
EP - 414
JO - Biochimica et Biophysica Acta - Bioenergetics
JF - Biochimica et Biophysica Acta - Bioenergetics
IS - 4
ER -