TY - JOUR
T1 - Orientation of chlorophyll transition moments in the higher-plant light- harvesting complex CP29
AU - Simonetto, Roberto
AU - Crimi, Massimo
AU - Sandonà, Dorianna
AU - Croce, Roberta
AU - Cinque, Gianfelice
AU - Breton, Jacques
AU - Bassi, Roberto
PY - 1999/10/5
Y1 - 1999/10/5
N2 - The Q(y) transition dipole moment vectors of all eight chlorophylls in the higher-plant antenna protein CP29 were calculated by an original method on the basis of linear dichroism and absorption spectroscopy. The contribution of individual chromophores was determined from difference spectra between wild type and mutant proteins in which a single chlorophyll has been removed by mutating pigment-binding residues. Recombinant proteins were constructed by overexpressing the apoprotein in bacteria and refolding of the pigment-protein complex in vitro [Bassi, R., Croce, R., Cugini, D., and Sandona, D. (1999) Proc. Natl. Acad. Sci. U.S.A. (in press)]. The spectroscopic data are interpreted on the basis of a protein structural model obtained via the homology with the major antenna complex LHCII [Kuhlbrandt, W., Wang, D. N., and Fujiyoshi, Y. (1994) Nature 367, 614-621]. The results allow us to determine the orientation of six chromophores within the protein structure. The orientations of the two remaining chromophores are inferred by considering the symmetry properties of CP29 and fitting steady state absorption and linear dichroism spectra by independent chlorophyll spectral forms. As a consequence, four 'mixed' sites with different chlorophyll a and b binding affinities are identified in CP29. Geometrical data and the Forster mechanism for energy transfer suggest that excitation energy equilibrates rapidly among chlorophyll 'pure' sites while energy preferentially flows outward from chlorophyll 'mixed' sites. The orientation of the dipole moments of two chlorophyll molecules symmetrically located at the center of the protein and parallel to the carotenoid transition vectors suggests a role in energy transfer from xanthophyll to chlorophyll.
AB - The Q(y) transition dipole moment vectors of all eight chlorophylls in the higher-plant antenna protein CP29 were calculated by an original method on the basis of linear dichroism and absorption spectroscopy. The contribution of individual chromophores was determined from difference spectra between wild type and mutant proteins in which a single chlorophyll has been removed by mutating pigment-binding residues. Recombinant proteins were constructed by overexpressing the apoprotein in bacteria and refolding of the pigment-protein complex in vitro [Bassi, R., Croce, R., Cugini, D., and Sandona, D. (1999) Proc. Natl. Acad. Sci. U.S.A. (in press)]. The spectroscopic data are interpreted on the basis of a protein structural model obtained via the homology with the major antenna complex LHCII [Kuhlbrandt, W., Wang, D. N., and Fujiyoshi, Y. (1994) Nature 367, 614-621]. The results allow us to determine the orientation of six chromophores within the protein structure. The orientations of the two remaining chromophores are inferred by considering the symmetry properties of CP29 and fitting steady state absorption and linear dichroism spectra by independent chlorophyll spectral forms. As a consequence, four 'mixed' sites with different chlorophyll a and b binding affinities are identified in CP29. Geometrical data and the Forster mechanism for energy transfer suggest that excitation energy equilibrates rapidly among chlorophyll 'pure' sites while energy preferentially flows outward from chlorophyll 'mixed' sites. The orientation of the dipole moments of two chlorophyll molecules symmetrically located at the center of the protein and parallel to the carotenoid transition vectors suggests a role in energy transfer from xanthophyll to chlorophyll.
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U2 - 10.1021/bi991140s
DO - 10.1021/bi991140s
M3 - Article
C2 - 10529167
AN - SCOPUS:0032832859
SN - 0006-2960
VL - 38
SP - 12974
EP - 12983
JO - Biochemistry
JF - Biochemistry
IS - 40
ER -