An integrated approach towards extracting structural characteristics of chlorosomes from a bchQ mutant of Chlorobaculum tepidum

Lolita Dsouza,Xinmeng Li, Vesna Eric,Annemarie Huijser, Thomas L. C. Jansen, Alfred R. Holzwarth,Francesco Buda,Donald A. Bryant,Salima Bahri,Karthick Babu Sai Sankar Gupta, G. J. Agur Sevink,Huub J. M. de Groot

PHYSICAL CHEMISTRY CHEMICAL PHYSICS(2024)

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摘要
Chlorosomes, the photosynthetic antenna complexes of green sulfur bacteria, are paradigms for light-harvesting elements in artificial designs, owing to their efficient energy transfer without protein participation. We combined magic angle spinning (MAS) NMR, optical spectroscopy and cryogenic electron microscopy (cryo-EM) to characterize the structure of chlorosomes from a bchQ mutant of Chlorobaculum tepidum. The chlorosomes of this mutant have a more uniform composition of bacteriochlorophyll (BChl) with a predominant homolog, [8Ethyl, 12Ethyl] BChl c, compared to the wild type (WT). Nearly complete C-13 chemical shift assignments were obtained from well-resolved homonuclear C-13-C-13 RFDR data. For proton assignments heteronuclear C-13-H-1 (hCH) data sets were collected at 1.2 GHz spinning at 60 kHz. The CHHC experiments revealed intermolecular correlations between 13(2)/3(1), 13(2)/3(2), and 12(1)/3(1), with distance constraints of less than 5 angstrom. These constraints indicate the syn-anti parallel stacking motif for the aggregates. Fourier transform cryo-EM data reveal an axial repeat of 1.49 nm for the helical tubular aggregates, perpendicular to the inter-tube separation of 2.1 nm. This axial repeat is different from WT and is in line with BChl syn-anti stacks running essentially parallel to the tube axis. Such a packing mode is in agreement with the signature of the Qy band in circular dichroism (CD). Combining the experimental data with computational insight suggests that the packing for the light-harvesting function is similar between WT and bchQ, while the chirality within the chlorosomes is modestly but detectably affected by the reduced compositional heterogeneity in bchQ.
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