Xanthophylls in light-harvesting complex II of higher plants: Light harvesting and triplet quenching

被引:111
作者
Peterman, EJG [1 ]
Gradinaru, CC [1 ]
Calkoen, F [1 ]
Borst, JC [1 ]
vanGrondelle, R [1 ]
vanAmerongen, H [1 ]
机构
[1] FREE UNIV AMSTERDAM,INST MOL BIOL SCI,NL-1081 HV AMSTERDAM,NETHERLANDS
关键词
D O I
10.1021/bi9711689
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
A spectral and functional assignment of the xanthophylls in monomeric and trimeric light-harvesting complex IT of green plants has been obtained using HPLC analysis of the pigment composition, laser-flash induced triplet-minus-singlet, fluorescence excitation, and absorption spectra. It is shown that violaxanthin is not present in monomeric preparations, that it has most likely a red-most absorption maximum at 510 nm in the trimeric complex, and that it is involved in both light-harvesting and Chl-triplet quenching. Two xanthophylls (per monomer) have an absorption maximum at 494 nm. These play a major role in both singlet and triplet transfer. These two are most probably the two xanthophylls resolved in the crystal structure, tentatively assigned to lutein, that are close to several chlorophyll molecules [Kuhlbrandt, W., Wang, N. D., & Fujiyoshi, Y. (1993) Nature 367, 614-621]. A last xanthophyll contribution, with an absorption maximum at 486 nm, does not seem to play a significant role in light-harvesting or in Chl-triplet quenching. On the basis of the assumption that the two structurally resolved xanthophylls are lutein, this 486 nm absorbing xanthophyll should be neoxanthin. The measurements demonstrate that violaxanthin is connected to at least one chlorophyll a with an absorption maximum near 670 nm, whereas the xanthophylls absorbing at 494 nm are connected to at least one chlorophyll a with a peak near 675 nm.
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页码:12208 / 12215
页数:8
相关论文
共 27 条
[1]  
Bensasson R.V., 1983, Flash photolysis and pulse radiolysis
[2]   A HIGHLY RESOLVED, OXYGEN-EVOLVING PHOTOSYSTEM-II PREPARATION FROM SPINACH THYLAKOID MEMBRANES - ELECTRON-PARAMAGNETIC-RES AND ELECTRON-TRANSPORT PROPERTIES [J].
BERTHOLD, DA ;
BABCOCK, GT ;
YOCUM, CF .
FEBS LETTERS, 1981, 134 (02) :231-234
[3]   Carotenoid interactions in peridinin chlorophyll a proteins from dinoflagellates - Evidence for optical excitons and triplet migration [J].
Carbonera, D ;
Giacometti, G ;
Segre, U .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS, 1996, 92 (06) :989-993
[4]  
Carbonera D., 1992, REND LINCEI-SCI FIS, V3, P361
[5]   Femtosecond transient absorption study of carotenoid to chlorophyll energy transfer in the light-harvesting complex II of photosystem II [J].
Connelly, JP ;
Muller, MG ;
Bassi, R ;
Croce, R ;
Holzwarth, AR .
BIOCHEMISTRY, 1997, 36 (02) :281-287
[6]  
Davies BH, 1976, CHEMISTRY BIOCHEMIST, P38, DOI DOI 10.1590/S0101-20612001000200017
[7]   Carotenoids in photosynthesis [J].
Frank, HA ;
Cogdell, RJ .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1996, 63 (03) :257-264
[8]   THE LIGHT-HARVESTING CHLOROPHYLL A/B BINDING-PROTEINS [J].
JANSSON, S .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1994, 1184 (01) :1-19
[9]   ATOMIC MODEL OF PLANT LIGHT-HARVESTING COMPLEX BY ELECTRON CRYSTALLOGRAPHY [J].
KUHLBRANDT, W ;
WANG, DN ;
FUJIYOSHI, Y .
NATURE, 1994, 367 (6464) :614-621
[10]   POLARIZED SITE-SELECTION SPECTROSCOPY OF CHLOROPHYLL-A IN DETERGENT [J].
KWA, SLS ;
VOLKER, S ;
TILLY, NT ;
VANGRONDELLE, R ;
DEKKER, JP .
PHOTOCHEMISTRY AND PHOTOBIOLOGY, 1994, 59 (02) :219-228