The role of beta Arg(-10) in the B800 bacteriochlorophyll and carotenoid pigment environment within the light-harvesting LH2 complex of Rhodobacter sphaeroides

被引:42
作者
Fowler, GJS
Hess, S
Pullerits, T
Sundstrom, V
Hunter, CN
机构
[1] UNIV SHEFFIELD,KREBS INST,DEPT MOL BIOL & BIOTECHNOL,SHEFFIELD S10 2TN,S YORKSHIRE,ENGLAND
[2] LUND UNIV,DEPT CHEM PHYS,S-221 LUND,SWEDEN
关键词
D O I
10.1021/bi9626315
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
Previous work has suggested that the beta Arg(-10) residue forms part of the binding site for the B800 bacteriochlorophyll in the LH2 complex of Rhodobacter sphaeroides [Crielaard, W., Visschers, R. W., Fowler, G. J. S., van Grondelle, R., Hellingwerf, K. J., Hunter, C. N. (1994) Biochim. Biophys. Acta 1183, 473-482], and this is consistent with the X-ray crystallographic data that have been subsequently obtained for the related LH2 complex from Rhodopseudomonas acidophila [McDermott, G., Prince, S. M., Freer, A. A., Hawthornthwaite-Lawless, A. M., Papiz, M. Z., Cogdell, R. J., Isaacs, N. W. (1995) Nature 374, 517-521]. Therefore, in order obtain more information about the B800 binding site and its effect on the B800 absorption band, beta Arg(-10) was replaced by residues Met, His, Asn, Leu, and Lys (in addition to the Glu mutant described in our previous work); these residues were thought to represent a suitable range of amino acid shape, charge, and hydrogen-bonding ability. This new series of beta Arg(-10) mutants, in the form of LH2 complexes in the native membrane, has been characterized using a variety of biochemical and spectroscopic techniques in order to determine the ways in which the mutants differ from wild-type (WT) LH2. For example, most of the mutant LH2 complexes were found to have blueshifted B800 absorption bands ranging from 794 to 783 nm at 77 K; the exception to this trend is the beta Arg(-10) to Met mutant, which absorbs maximally at 798 nm. These blue shifts decrease the spectral overlap between the ''B800'' and B850 pigments, which allowed us to examine the nature of the B800 to B850 transfer step for the beta Arg(-10) mutant LH2 complexes by carrying out a series of room temperature subpicosecond energy transfer measurements. The results of these measurements demonstrated that the reduced overlap leads to a slower B800 to B850 transfer, although the alterations at beta Arg(-10) were found to have little effect on the efficiency of internal energy transfer within LH2, Similarly, carotenoid to bacteriochlorophyll energy transfer was largely unaffected, although shifts in the excitation spectra in the carotenoid region were noted. These beta Arg(-10) mutant complexes provide an opportunity to investigate the structural requirements for the binding of monomeric bacteriochlorophyll and to examine the basis of the red shift seen for bacteriochlorophyll in photosynthetic complexes, in addition to providing new information about the environment of the carotenoid pigments in this complex.
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页码:11282 / 11291
页数:10
相关论文
共 41 条
[1]   ENERGY-TRANSFER DYNAMICS OF ISOLATED B800-850 AND B800-820 PIGMENT-PROTEIN COMPLEXES OF RHODOBACTER-SPHAEROIDES AND RHODOPSEUDOMONAS-ACIDOPHILA [J].
BERGSTROM, H ;
SUNDSTROM, V ;
VANGRONDELLE, R ;
GILLBRO, T ;
COGDELL, R .
BIOCHIMICA ET BIOPHYSICA ACTA, 1988, 936 (01) :90-98
[2]   EXCITATION TRANSFER IN THE CORE LIGHT-HARVESTING COMPLEX (LH-1) OF RHODOBACTER-SPHAEROIDES - AN ULTRAFAST FLUORESCENCE DEPOLARIZATION AND ANNIHILATION STUDY [J].
BRADFORTH, SE ;
JIMENEZ, R ;
VANMOURIK, F ;
VANGRONDELLE, R ;
FLEMING, GR .
JOURNAL OF PHYSICAL CHEMISTRY, 1995, 99 (43) :16179-16191
[3]  
Brunisholz R., 1988, PHOTOSYNTHETIC LIGHT, P103
[4]   PROBING THE B800 BACTERIOCHLOROPHYLL BINDING-SITE OF THE ACCESSORY LIGHT-HARVESTING COMPLEX FROM RHODOBACTER-SPHAEROIDES USING SITE-DIRECTED MUTANTS .1. MUTAGENESIS, EFFECTS ON BINDING, FUNCTION AND ELECTROCHROMIC BEHAVIOR OF ITS CAROTENOIDS [J].
CRIELAARD, W ;
VISSCHERS, RW ;
FOWLER, GJS ;
VANGRONDELLE, R ;
HELLINGWERF, KJ ;
HUNTER, CN .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 1994, 1183 (03) :473-482
[5]   INTERBAND AND INTRABAND ENERGY-TRANSFER IN LH2-ANTENNA COMPLEXES OF PURPLE BACTERIA - A FLUORESCENCE LINE-NARROWING AND HOLE-BURNING STUDY [J].
DECARO, C ;
VISSCHERS, RW ;
VANGRONDELLE, R ;
VOLKER, S .
JOURNAL OF PHYSICAL CHEMISTRY, 1994, 98 (41) :10584-10590
[6]   GENETICALLY MODIFIED PHOTOSYNTHETIC ANTENNA COMPLEXES WITH BLUESHIFTED ABSORBENCY BANDS [J].
FOWLER, GJS ;
VISSCHERS, RW ;
GRIEF, GG ;
VANGRONDELLE, R ;
HUNTER, CN .
NATURE, 1992, 355 (6363) :848-850
[7]   BLUE SHIFTS IN BACTERIOCHLOROPHYLL ABSORBENCY CORRELATE WITH CHANGED HYDROGEN-BONDING PATTERNS IN LIGHT-HARVESTING 2 MUTANTS OF RHODOBACTER-SPHAEROIDES WITH ALTERATIONS AT ALPHA-TYR-44 AND ALPHA-TYR-45 [J].
FOWLER, GJS ;
SOCKALINGUM, GD ;
ROBERT, B ;
HUNTER, CN .
BIOCHEMICAL JOURNAL, 1994, 299 :695-700
[8]  
FOWLER GJS, 1995, J BIOL CHEM, V270, P1
[9]   Pigment-pigment interactions and energy transfer in the antenna complex of the photosynthetic bacterium Rhodopseudomonas acidophile [J].
Freer, A ;
Prince, S ;
Sauer, K ;
Papiz, M ;
HawthornthwaiteLawless, A ;
McDermott, G ;
Cogdell, R ;
Isaacs, NW .
STRUCTURE, 1996, 4 (04) :449-462
[10]  
HANSON LK, 1987, PROGR PHOTOSYNTHESIS, V1, P311