Chlorophyll a fluorescence induction kinetics in leaves predicted from a model describing each discrete step of excitation energy and electron transfer associated with photosystem II

被引:239
作者
Zhu, XG
Govindjee
Baker, NR
deSturler, E
Ort, DR
Long, SP [1 ]
机构
[1] Univ Illinois, Dept Plant Biol & Crop Sci, Madigan Lab 379, 1201 W Gregory Dr, Urbana, IL 61801 USA
[2] Univ Illinois, Dept Plant Biol, Urbana, IL 61801 USA
[3] Dept Biochem, Urbana, IL 61801 USA
[4] Univ Essex, Dept Biol Sci, Colchester CO4 3SQ, Essex, England
[5] Univ Illinois, Thomas M Siebel Ctr Comp Sci 4314, Dept Comp Sci, Urbana, IL 61801 USA
关键词
photosynthesis; chlorophyll fluorescence; model; system biology; In silico;
D O I
10.1007/s00425-005-0064-4
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Chlorophyll a fluorescence induction (FI) is widely used as a probe for studying photosynthesis. On illumination, fluorescence emission rises from an initial level O to a maximum P through transient steps, termed J and I. FI kinetics reflect the overall performance of photosystem II (PSII). Although FI kinetics are commonly and easily measured, there is a lack of consensus as to what controls the characteristic series of transients, partially because most of the current models of FI focus on subsets of reactions of PSII, but not the whole. Here we present a model of fluorescence induction, which includes all discrete energy and electron transfer steps in and around PSII, avoiding any assumptions about what is critical to obtaining O J I P kinetics. This model successfully simulates the observed kinetics of fluorescence induction including O J I P transients. The fluorescence emission in this model was calculated directly from the amount of excited singlet-state chlorophyll in the core and peripheral antennae of PSII. Electron and energy transfer were simulated by a series of linked differential equations. A variable step numerical integration procedure (ode15s) from MATLAB provided a computationally efficient method of solving these linked equations. This in silico representation of the complete molecular system provides an experimental workbench for testing hypotheses as to the underlying mechanism controlling the O J I P kinetics and fluorescence emission at these points. Simulations based on this model showed that J corresponds to the peak concentrations of Q(A)(-)Q(B) (Q(A) and Q(B) are the first and second quinone electron acceptor of PSII respectively) and Q(A)(-)Q(B)(-) and I to the first shoulder in the increase in concentration of Q(A)(-)Q(B)(2-). The P peak coincides with maximum concentrations of both Q(A)(-)Q(B)(2-) and PQH(2). In addition, simulations using this model suggest that different ratios of the peripheral antenna and core antenna lead to differences in fluorescence emission at O without affecting fluorescence emission at J, I and P. An increase in the concentration of Q(B)-nonreducing PSII centers leads to higher fluorescence emission at O and correspondingly decreases the variable to maximum fluorescence ratio (F-v/F-m).
引用
收藏
页码:114 / 133
页数:20
相关论文
共 88 条
[1]  
BAAKE E, 1992, B MATH BIOL, V54, P999
[2]  
Baker NR, 2004, ADV PHOTO RESPIRAT, V19, P65
[3]   CHILLING DAMAGE TO PHOTOSYNTHESIS IN YOUNG ZEA-MAYS .2. PHOTOCHEMICAL FUNCTION OF THYLAKOIDS INVIVO [J].
BAKER, NR ;
EAST, TM ;
LONG, SP .
JOURNAL OF EXPERIMENTAL BOTANY, 1983, 34 (139) :189-197
[4]   Crystal structure of plant photosystem I [J].
Ben-Shem, A ;
Frolow, F ;
Nelson, N .
NATURE, 2003, 426 (6967) :630-635
[5]   CHLOROPHYLL FLUORESCENCE AS A PROBE OF THE PHOTOSYNTHETIC COMPETENCE OF LEAVES IN THE FIELD - A REVIEW OF CURRENT INSTRUMENTATION [J].
BOLHARNORDENKAMPE, HR ;
LONG, SP ;
BAKER, NR ;
OQUIST, G ;
SCHREIBER, U ;
LECHNER, EG .
FUNCTIONAL ECOLOGY, 1989, 3 (04) :497-514
[6]   CYTOCHROME-F AND PLASTOCYANIN KINETICS IN CHLORELLA-PYRENOIDOSA .1. OXIDATION-KINETICS AFTER A FLASH [J].
BOUGESBOCQUET, B .
BIOCHIMICA ET BIOPHYSICA ACTA, 1977, 462 (02) :362-370
[7]   REDOX REACTIONS ON THE REDUCING SIDE OF PHOTOSYSTEM-II IN CHLOROPLASTS WITH ALTERED HERBICIDE BINDING-PROPERTIES [J].
BOWES, J ;
CROFTS, AR ;
ARNTZEN, CJ .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1980, 200 (02) :303-308
[8]   BINARY OSCILLATIONS IN THE RATE OF REOXIDATION OF THE PRIMARY ACCEPTOR OF PHOTOSYSTEM-II [J].
BOWES, JM ;
CROFTS, AR .
BIOCHIMICA ET BIOPHYSICA ACTA, 1980, 590 (03) :373-384
[9]   NANOSECOND REDUCTION KINETICS OF PHOTOOXIDIZED CHLOROPHYLL-ALPHA-II (P-680) IN SINGLE FLASHES AS A PROBE FOR THE ELECTRON PATHWAY, H+-RELEASE AND CHARGE ACCUMULATION IN THE O-2-EVOLVING COMPLEX [J].
BRETTEL, K ;
SCHLODDER, E ;
WITT, HT .
BIOCHIMICA ET BIOPHYSICA ACTA, 1984, 766 (02) :403-415
[10]   Fluorescence lifetime, yield, energy transfer and spectrum in photosynthesis, 1950-1960 [J].
Brody, SS .
PHOTOSYNTHESIS RESEARCH, 2002, 73 (1-3) :127-132