Evidence for a cysteine-mediated mechanism of excitation energy regulation in a photosynthetic antenna complex

peer-reviewed · Proceedings of the National Academy of Sciences · 2016

peer-reviewed · Proceedings of the National Academy of Sciences · 2016. Gregory S. Orf et al. Light-harvesting antenna complexes not only aid in the capture of solar energy for photosynthesis, but…
Date 2016-08-02
Type peer-reviewed
Venue Proceedings of the National Academy of Sciences
Publisher National Academy of Sciences
Contribution downstream-application
DOI 10.1073/pnas.1603330113
Citations (OpenAlex) 57
Venue 2-year citedness 8.56

Abstract

Light-harvesting antenna complexes not only aid in the capture of solar energy for photosynthesis, but regulate the quantity of transferred energy as well. Light-harvesting regulation is important for protecting reaction center complexes from overexcitation, generation of reactive oxygen species, and metabolic overload. Usually, this regulation is controlled by the association of light-harvesting antennas with accessory quenchers such as carotenoids. One antenna complex, the Fenna-Matthews-Olson (FMO) antenna protein from green sulfur bacteria, completely lacks carotenoids and other known accessory quenchers. Nonetheless, the FMO protein is able to quench energy transfer in aerobic conditions effectively, indicating a previously unidentified type of regulatory mechanism. Through de novo sequencing MS, chemical modification, and mutagenesis, we have pinpointed the source of the quenching action to cysteine residues (Cys49 and Cys353) situated near two low-energy bacteriochlorophylls in the FMO protein from Chlorobaculum tepidum Removal of these cysteines (particularly removal of the completely conserved Cys353) through N-ethylmaleimide modification or mutagenesis to alanine abolishes the aerobic quenching effect. Electrochemical analysis and electron paramagnetic resonance spectra suggest that in aerobic conditions the cysteine thiols are converted to thiyl radicals which then are capable of quenching bacteriochlorophyll excited states through electron transfer photochemistry. This simple mechanism has implications for the design of bio-inspired light-harvesting antennas and the redesign of natural photosynthetic systems.

Authors

  1. Gregory S. Orf · Washington University in St. Louis
  2. Rafael G. Saer · Washington University in St. Louis
  3. Dariusz M. Niedzwiedzki · Washington University in St. Louis
  4. Hao Zhang · Washington University in St. Louis
  5. Chelsea L. McIntosh · Washington University in St. Louis
  6. Jason W. Schultz · Washington University in St. Louis
  7. Liviu M. Mirica · Washington University in St. Louis
  8. Robert E. Blankenship · Washington University in St. Louis

Methods and tools

  • FMO antenna cysteine quenching: Pinpoints cysteines responsible for aerobic energy quenching in the FMO antenna protein of Chlorobaculum tepidum using de novo sequencing MS, chemical modification and mutagenesis.

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