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Identification of the first steps in charge separation in bacterial photosynthetic reaction centers of Rhodobacter sphaeroides by ultrafast mid-infrared spectroscopy: electron transfer and protein dynamics
Authors:Pawlowicz Natalia P  van Grondelle Rienk  van Stokkum Ivo H M  Breton Jacques  Jones Michael R  Groot Marie Louise
Institution:* Faculty of Sciences, Department of Physics and Astronomy, Vrije Universiteit Amsterdam, Amsterdam, The Netherlands
Service de Bioénergétique, CEA-Saclay, Gif-sur-Yvette, France
Department of Biochemistry, School of Medical Sciences,University of Bristol, University Walk, Bristol, United Kingdom
Abstract:Time-resolved visible pump/mid-infrared (mid-IR) probe spectroscopy in the region between 1600 and 1800 cm−1 was used to investigate electron transfer, radical pair relaxation, and protein relaxation at room temperature in the Rhodobacter sphaeroides reaction center (RC). Wild-type RCs both with and without the quinone electron acceptor QA, were excited at 600 nm (nonselective excitation), 800 nm (direct excitation of the monomeric bacteriochlorophyll (BChl) cofactors), and 860 nm (direct excitation of the dimer of primary donor (P) BChls (PL/PM)). The region between 1600 and 1800 cm−1 encompasses absorption changes associated with carbonyl (Cdouble bond; length as m-dashO) stretch vibrational modes of the cofactors and protein. After photoexcitation of the RC the primary electron donor P excited singlet state (P*) decayed on a timescale of 3.7 ps to the state View the MathML source (where BL is the accessory BChl electron acceptor). This is the first report of the mid-IR absorption spectrum of View the MathML source; the difference spectrum indicates that the 9-keto Cdouble bond; length as m-dashO stretch of BL is located around 1670-1680 cm−1. After subsequent electron transfer to the bacteriopheophytin HL in ∼1 ps, the state View the MathML source was formed. A sequential analysis and simultaneous target analysis of the data showed a relaxation of the View the MathML source radical pair on the ∼20 ps timescale, accompanied by a change in the relative ratio of the View the MathML source and View the MathML source bands and by a minor change in the band amplitude at 1640 cm−1 that may be tentatively ascribed to the response of an amide Cdouble bond; length as m-dashO to the radical pair formation. We conclude that the drop in free energy associated with the relaxation of View the MathML source, is due to an increased localization of the electron hole on the PL half of the dimer and a further consequence is a reduction in the electrical field causing the Stark shift of one or more amide Cdouble bond; length as m-dashO oscillators.
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