Circular dichroism of green bacterial chlorosomes

Photosynthesis Research - Tập 24 - Trang 253-263 - 1990
Daniel C. Brune1, Paolo D. Gerola2, John M. Olson1
1Institute of Biochemistry, Odense University, Odense M, Denmark
2Dipartimento di Ecologia, Universita della Calabria, (Cosenza), Italy

Tóm tắt

Positive and negative bands in previously measured circular dichroism (CD) spectra of Chlorobium limicola chlorosomes appeared to be sign-reversed relative to those of Chloroflexus aurantiacus chlorosomes in the 740–750 nm spectral region where bacteriochlorophyll (BChl) c absorbs maximally. It was not clear, however, whether this difference was intrinsic to the chlorosomes or was due to differences in the procedures used to prepare them. We therefore repeated the CD measurements using chlorosomes isolated from both Cb. limicola f. thiosulfatophilum and Cf. aurantiacus using the method of Gerola and Olson (1986, Biochim. Biophys. Acta 848: 69–76). Contrary to the earlier results, both types of chlorosomes had very similar CD spectra, suggesting that both have similar arrangements of BChl c molecules. The previously reported difference between the CD spectra of Chlorobium and Chloroflexus chlorosomes is due to the instability of Chlorobium chlorosomes, which can undergo a hypsochromic shift in their near infrared absorption maximum accompanied by an apparent inversion in their near infrared CD spectrum during isolation. Treating isolated chlorosomes with the strong ionic detergent sodium dodecylsulfate, which removes BChl a, does not alter the arrangement of BChl c molecules in either Chloroflexus or Chlorobium chlorosomes, as indicated by the lack of an effect on their CD spectra.

Tài liệu tham khảo

Betti JA, Blankenship RE, Natarajan LV, Dickinson LC and Fuller RC (1982) Antenna organization and evidence for the function of a new pigment species in the green photosynthetic bacterium Chloroflexus aurantiacus. Biochim Biophys Acta 680: 194–201 Blankenship RE, Brune DC and Wittmershaus BP (1988a) Chlorosome antennas in green photosynthetic bacteria. In: Stevens SEJr. and Bryant DA (eds) Light-Energy Transduction in Photosynthesis: Higher Plant and Bacterial Models, pp 32–46, Rockville, MD, American Society of Plant Physiologists Blankenship RE, Brune DC, Freeman JM, King GH, McManus JD, Nozawa T, Trost JT and Wittmershaus BP (1988b) Energy trapping and electron transfer in Chloroflexus aurantiacus. In: Olson JM, Ormerod JG, Amesz J, Stackebrandt E and Trüper HG (eds) Green Photosynthetic Bacteria, pp 57–68. New York: Plenum Press Brune DC, King GH and Blankenship RE (1988) Interactions between bacteriochlorophyll molecules in oligomers and chlorosomes of green bacteria. In: Scheer H and Schneider S (eds) Photosynthetic Light-Harvesting Systems, pp 141–151. Berlin: Walter de Gruyter Brune DC, Nozawa T and Blankenship RE (1987) Antenna organization in green photosynthetic bateria. 1. Oligomeric bacteriochlorophyll c as a model for the 740 nm absorbing bacteriochlorophyll c in Chloroflexus aurantiacus. Biochem 26: 8644–8652 Bystrova MI, Mal'gosheva IN and Krasnovskii AA (1979) Study of molecular mechanism of self-assembly of aggregated forms of BChl c. Mol Biol 13: 582–594 Castenholz R and Pierson BK (1981) Isolation of members of the family Chloroflexaceae. In: Starr MP, Stolp H, Trüper HG, Balows A and Schlegel HG (eds) The Prokaryotes, A Handbook on Habitats, Isolation and Identification of Bacteria, Vol 1, pp 290–298. Berlin: Springer-Verlag Clayton RK (1980) Photosynthesis: Physical Mechanisms and Chemical Patterns. Cambridge: Cambridge University Press Cox RP, Jensen MT, Miller M and Pedersen JP (1988) Spin label studies on chlorosomes from green bacteria. In: Olson JM, Ormerod JG, Amesz J, Stackebrandt E and Trüper HG (eds) Green Photosynthetic Bacteria, pp 15–21. New York: Plenum Press Feick RG and Fuller RC (1984) Topography of the photosynthetic apparatus of Chloroflexus arantiacus. Biochem 23: 3693–3700 Gerola PD, Højrup P and Olson JM (1988) A comparison of the bateriochlorophyll c-binding proteins of Chlorobium and Chloroflexus. In: Scheer H and Schneider S (eds) Photosynthetic Light-Harvesting Systems, pp 129–139. Berlin: Walter de Gruyter Gerola PD and Olson JM (1986) A new bacteriochlorophyll a-protein complex associated with chlorosomes of green sulfur bacteria. Biochim Biophys Acta 848: 69–76 Griebenow K and Holzwarth AR (1989) Pigment organization and energy transfer in green bacteria. 1. Isolation of native chlorosomes free of bacteriochlorophyll a from Chloroflexus aurantiacus by gel-electrophoretic filtration. Biochim Biophys Acta 973: 235–240 Griebenow K and Holzwarth AR (1990) Biochemical evidence for chromophore-chromophore interactions as the main organizational principle in chlorosomes of Chloroflexus aurantiacus. In: Drews G (ed) Molecular Biology of Membrane-Bound Complexes in Phototrophic Bacteria. New York: Plenum Press, in press Lutz M and van Brakel G (1988) Ground-state molecular interactions of bacteriochlorophyll c in chlorosomes of green bacteria and in model systems: a resonance Raman study. In: Olson JM, Ormerod JG, Amesz J, Stackebrandt E and Trüper HG (eds) Green Photosynthetic Bacteria, pp 23–34. New York: Plenum Press Olson JM (1980) Chlorophyll organization in green photosynthetic bateria. Biochim Biophys Acta 594: 33–51. Olson JM, Gerola PD, van Brakel GH, Meiburg RF and Vasmel H (1985) Bateriochlorophyll a-and c-protein complexes from chlorosomes of green sulfur bacteria compared with bacteriochlorophyll c aggregates in CH2Cl2-hexane. In: Michel-Bayerle ME (ed) Antenas and Reaction Centers of Photosynthetic Bacteria, pp 67–73. Berlin: Springer-Verlag Olson JM and Pedersen JP (1988) Bacteriochlorophyll c aggregates in carbon tetrachloride as models for chlorophyll organization in green photosynthetic bacteria. In: Scheer H and Schneider S (eds) Photosynthetic Light-Harvesting Systems, pp 365–373. Berlin: Walter de Gruyter Olson JM, Philipson KD and Sauer K (1973) Circular dichroism and absorption spectra of bacteriochlorophyll-protein and reaction center complexes from Chlorobium thiosulfatophilum. Biochim Biophys Acta 292: 206–217 Olson JM and Pierson BK (1987) Evolution of reaction centers in photosynthetic prokaryotes. Int Rev Cytol 108: 209–248 Reader J and Corliss CH (eds) (1982) Line spectra of the elements. In: Weast RC and Astle MJ (eds) CRC Handbook of Chemistry and Physics, 63rd Edn, pp E-204-E-333. Boca Raton, Florida: CRC Press Sauer K and Austin LA (1978) Bacteriochlorophyll-protein complexes from the light-harvesting antenna of photosynthetic bacteria. Biochem 17: 2011–2019 Scherz A and Parson WW (1984) Exciton interactions in dimers of bacteriochlorophyll and related molecules. Biochim Biophys Acta 766: 666–678 Smith KM, Kehres LA and Fajer J (1983) Aggregation of the bacteriochlorophylls c, d and e. Models for the antenna chlorophylls of green and brown photosynthetic bacteria. J Am Chem Soc 105: 1387–1389 Sprague SG, Staehelin LA, DiBartolomeis MJ and Fuller RC (1981) Isolation and development of chlorosomes in the green bacterium Chloroflexus aurantiacus. J Bacteriol 147: 1021–1031 Staehelin LA, Golecki JR and Drews G (1980) Supramolecular organization of chlorosomes (Chlorobium vesicles) and of their membrane attachment sites in Chlorobium limicola. Biochim Biophys Acta 589: 30–45 van Dorssen RJ, Vasmel H and Amesz J (1986) Pigment organization and energy transfer in the green photosynthetic bacterium Chloroflexus aurantiacus. II. The chlorosome. Photosynth Res 9: 33–45 Wagner-Huber R, Brunisholz R, Frank G and Zuber H (1988) The BChl c/e-binding polypeptides from chlorosomes of green photosynthetic bacteria. FEBS Lett 239: 8–12 Wechsler T, Suter F, Fuller RC and Zuber H (1985) The complete amino acid sequence of the bacteriochlorophyll c-binding polypeptide from chlorosomes of the green photosynthetic bacterium Chloroflexus aurantiacus. FEBS Lett 181: 173–178 Woese CR (1987) Bacterial evolution. Microbiol Revs 51: 221–271 Worcester DL, Michalski TJ and Katz JJ (1986) Small-angle neutron scattering studies of chlorophyll micelles: models for bacterial antenna chlorophyll. Proc Natl Acad Sci USA 83: 3791–3795