Giovanni Consoli, Fiazall Tufail, Ho Fong Leong, Stefania Viola, Geoffry A. Davis, Nicholas Rew, Daniel Medranda, Michael Hofer, Paul Simpson, Marco Sandrin, Benoît Chachuat, Jenny Nelson, Thomas Renger, James W. Murray, Andrea Fantuzzi, A. William Rutherford
The discovery of chlorophyll f–containing photosystems, with their long-wavelength photochemistry, represented a distinct, low-energy paradigm for oxygenic photosynthesis. Structural studies on chlorophyll f–containing photosystem I could identify some chlorophyll f sites, but none among the photochemically active pigments, and thus concluded that chlorophyll f plays no photochemical role. Here, we report two cryo–electron microscopy structures of far-red photosystem I from Chroococcidiopsis thermalis PCC 7203, allowing the assignment of eight chlorophyll f molecules, including the redox active A −1B . Simulations of absorption difference spectra induced by charge separation indicated that the experimental spectra can be reproduced only by considering the presence of a chlorophyll f at the A −1B site. The chlorophyll f locations, wavelength assignments, and conserved far-red–specific residues provide functional insights for efficient use of long-wavelength photons.