Augmenting light coverage for photosynthesis through YFP-enhanced charge separation at the Rhodobacter sphaeroides reaction centre.
Katie J GraysonKaitlyn M FariesXia HuangPu QianPreston DilbeckElizabeth C MartinAndrew HitchcockCvetelin VasilevJonathan M YuenDariusz M NiedzwiedzkiGraham J LeggettDewey HoltenChristine KirmaierChristopher Neil HunterPublished in: Nature communications (2017)
Photosynthesis uses a limited range of the solar spectrum, so enhancing spectral coverage could improve the efficiency of light capture. Here, we show that a hybrid reaction centre (RC)/yellow fluorescent protein (YFP) complex accelerates photosynthetic growth in the bacterium Rhodobacter sphaeroides. The structure of the RC/YFP-light-harvesting 1 (LH1) complex shows the position of YFP attachment to the RC-H subunit, on the cytoplasmic side of the RC complex. Fluorescence lifetime microscopy of whole cells and ultrafast transient absorption spectroscopy of purified RC/YFP complexes show that the YFP-RC intermolecular distance and spectral overlap between the emission of YFP and the visible-region (QX) absorption bands of the RC allow energy transfer via a Förster mechanism, with an efficiency of 40±10%. This proof-of-principle study demonstrates the feasibility of increasing spectral coverage for harvesting light using non-native genetically-encoded light-absorbers, thereby augmenting energy transfer and trapping in photosynthesis.
Keyphrases
- energy transfer
- quantum dots
- optical coherence tomography
- high resolution
- induced apoptosis
- single molecule
- affordable care act
- healthcare
- high throughput
- magnetic resonance
- magnetic resonance imaging
- oxidative stress
- signaling pathway
- cell proliferation
- high speed
- cell death
- solid state
- brain injury
- endoplasmic reticulum stress
- single cell
- living cells
- cerebral ischemia