| Literature DB >> 28755150 |
Reza Ranjbar Choubeh1,2, Ravi R Sonani3,4, Datta Madamwar5, Paul C Struik6, Arjen N Bader1,7, Bruno Robert8, Herbert van Amerongen9,10.
Abstract
Cyanobacteria perform photosynthesis with the use of large light-harvesting antennae called phycobilisomes (PBSs). These hemispherical PBSs contain hundreds of open-chain tetrapyrrole chromophores bound to different peptides, providing an arrangement in which excitation energy is funnelled towards the PBS core from where it can be transferred to photosystem I and/or photosystem II. In the PBS core, many allophycocyanin (APC) trimers are present, red-light-absorbing phycobiliproteins that covalently bind phycocyanobilin (PCB) chromophores. APC trimers were amongst the first light-harvesting complexes to be crystallized. APC trimers have two spectrally different PCBs per monomer, a high- and a low-energy pigment. The crystal structure of the APC trimer reveals the close distance (~21 Å) between those two chromophores (the distance within one monomer is ~51 Å) and this explains the ultrafast (~1 ps) excitation energy transfer (EET) between them. Both chromophores adopt a somewhat different structure, which is held responsible for their spectral difference. Here we used spectrally resolved picosecond fluorescence to study EET in these APC trimers both in crystallized and in solubilized form. We found that not all closely spaced pigment couples consist of a low- and a high-energy pigment. In ~10% of the cases, a couple consists of two high-energy pigments. EET to a low-energy pigment, which can spectrally be resolved, occurs on a time scale of tens of picoseconds. This transfer turns out to be three times faster in the crystal than in the solution. The spectral characteristics and the time scale of this transfer component are similar to what have been observed in the whole cells of Synechocystis sp. PCC 6803, for which it was ascribed to EET from C-phycocyanin to APC. The present results thus demonstrate that part of this transfer should probably also be ascribed to EET within APC trimers.Entities:
Keywords: Allophycocyanin crystals; Cyanobacteria; Excitation energy transfer; Phycobilisome; Time-resolved fluorescence spectroscopy
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Year: 2017 PMID: 28755150 PMCID: PMC5783994 DOI: 10.1007/s11120-017-0417-4
Source DB: PubMed Journal: Photosynth Res ISSN: 0166-8595 Impact factor: 3.573
Fig. 1Absorption spectrum (A, intact line) of purified Phormidium APC. Gaussian decomposition components of the APC absorption spectrum are represented by the dashed lines (1–4)
Fig. 2FLIM image of APC crystals (left) and the corresponding histogram of the lifetimes (right). The FLIM image is made up of 128 × 128 pixels. The image of the crystals roughly contains ~400 pixels. The size of the FLIM image is 246 × 246 μm. The excitation and detection wavelengths are 594 and 645 nm, respectively
Fig. 3a, b DAS obtained from the global analysis of fluorescence data of APC crystals and APC protein solution as measured with the streak camera are shown in a, b, respectively. The excitation wavelength was 590 nm. The DAS were normalized to the maximum of the time-zero spectrum. c, d Selected measured and fitted time traces of APC crystals and APC protein solution. The numbers in the legends indicate the detection wavelength. The solid lines represent the fits to the time traces
Fig. 4Three species-associated spectra (SAS) as obtained from target analysis are shown for APC crystals and protein solutions in a, b, respectively. The model used is shown in the figure inset. Each compartment represents an emitting species and the number written on it is the initial fractional population of excitation. The total initial population is summed to 1. The colour of each SAS corresponds to the colour of each compartment