Abstract
A method was developed to quantify the fraction of photosystem I (PSI) centers that operate according to the cyclic or linear mode, respectively. P(700) and plastocyanin oxidation were analyzed under a weak far-red excitation (approximately eight photons per s(-1) per PSI) that induces P(700) oxidation in approximately 20 s and approximately 3 s in dark-adapted and preilluminated leaves, respectively. This finding implies that, in dark-adapted leaves, most of the electrons formed on the stromal side of PSI are transferred back to PSI through an efficient cyclic chain, whereas in preilluminated leaves, electrons are transferred to NADP and then to the Benson-Calvin cycle. Preillumination thus induces a transition from the cyclic to the linear mode. A reverse transition occurs in the dark in a time that increases with the duration and intensity of preillumination. After a approximately 10-min illumination under strong light that activates the Benson-Calvin cycle, the transition from the linear to the cyclic mode is completed in >1 h (t(1/2) approximately 30 min). The fraction of PSI involved in the cyclic process in dark-adapted leaves can be close to 100%. An apparent equilibrium constant of approximately 4 between P(700) and plastocyanin was measured during the course of the far-red illumination. This value is much lower than that computed from the midpoint redox potential of the two carriers (approximately 30). These results are interpreted assuming that chloroplasts include isolated compartments defined on the basis of the structural organization of the photosynthetic chain proposed by Albertsson [Albertsson, P. A. (2001) Trends Plant Sci. 6, 349-354].
MeSH Terms
Chlorophyll/metabolism
Darkness
Electron Transport/physiology
Fluorescence
Kinetics
Oxidation-Reduction
Peas
Photic Stimulation
Photosynthesis/physiology
Photosystem I Protein Complex/metabolism,physiology
Plant Leaves/metabolism
Plastocyanin/metabolism
Spinacia oleracea
Thylakoids/metabolism
Time Factors
Chemicals
Photosystem I Protein Complex
Chlorophyll
chlorophyll P 700
Plastocyanin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Joliot Pierre
Institut de Biologie PhysicoChimique, Centre National de la Recherche Scientifique, Unité Propre de Recherche 1261, 13 Rue Pierre et Marie Curie, 75005 Paris, France.
[email protected]
Joliot Anne
References (23)
23 references, click to expand
-
Role of chloroplast ferredoxin in the energy conversion process of photosynthesis.
Proc Natl Acad Sci U S A. 1963 Apr;49:567-72
PMID: 13980171
-
Cyclic electron transfer in plant leaf.
Proc Natl Acad Sci U S A. 2002 Jul 23;99(15):10209-14
PMID: 12119384
-
The structure and function of the chloroplast photosynthetic membrane - a model for the domain organization.
Photosynth Res. 1995 Nov;46(1-2):141-9
PMID: 24301576
-
Control of the photosynthetic electron transport by PQ diffusion microdomains in thylakoids of higher plants.
Biochim Biophys Acta. 2000 Jul 20;1459(1):148-68
PMID: 10924908
-
An atypical haem in the cytochrome b(6)f complex.
Nature. 2003 Nov 27;426(6965):413-8
PMID: 14647374
-
Granum revisited. A three-dimensional model--where things fall into place.
Trends Plant Sci. 2003 Mar;8(3):117-22
PMID: 12663221
-
Structure of the cytochrome b6f complex of oxygenic photosynthesis: tuning the cavity.
Science. 2003 Nov 7;302(5647):1009-14
PMID: 14526088
-
Vitamin K as a cofactor of photosynthetic phosphorylation.
Biochim Biophys Acta. 1955 Apr;16(4):607-8
PMID: 14389292
-
Role of subunits in eukaryotic Photosystem I.
Biochim Biophys Acta. 2001 Oct 30;1507(1-3):41-60
PMID: 11687207
-
Dark-interval relaxation kinetics (DIRK) of absorbance changes as a quantitative probe of steady-state electron transfer.
Photosynth Res. 2000;66(1-2):145-58
PMID: 16228416
-
The relationship between CO2 assimilation and electron transport in leaves.
Photosynth Res. 1990 Sep;25(3):213-24
PMID: 24420351
-
Role of cyclic electron transport in photosynthesis as measured by the photoinduced turnover of P700 in vivo.
Biochemistry. 1976 Sep 7;15(18):3975-81
PMID: 963015
-
The PSI-E subunit of photosystem I binds ferredoxin:NADP+ oxidoreductase.
FEBS Lett. 1992 Oct 19;311(2):169-73
PMID: 1397306
-
Cyclic electron flow under saturating excitation of dark-adapted Arabidopsis leaves.
Biochim Biophys Acta. 2004 Jun 7;1656(2-3):166-76
PMID: 15178478
-
Cyclic electron flow around photosystem I in C(3) plants. In vivo control by the redox state of chloroplasts and involvement of the NADH-dehydrogenase complex.
Plant Physiol. 2002 Feb;128(2):760-9
PMID: 11842179
-
Quantification of photosystem I and II in different parts of the thylakoid membrane from spinach.
Biochim Biophys Acta. 2004 Jan 30;1608(1):53-61
PMID: 14741585
-
Kinetic evidence for the PsaE-dependent transient ternary complex photosystem I/Ferredoxin/Ferredoxin:NADP(+) reductase in a cyanobacterium.
Biochemistry. 1999 Sep 28;38(39):12735-46
PMID: 10504244
-
Plastocyanin redox kinetics in spinach chloroplasts: evidence for disequilibrium in the high potential chain.
Biochim Biophys Acta. 2004 Nov 4;1659(1):63-72
PMID: 15511528
-
Restricted diffusion in photosynthetic membranes.
Trends Biochem Sci. 1991 Apr;16(4):129-34
PMID: 1877087
-
A quantitative model of the domain structure of the photosynthetic membrane.
Trends Plant Sci. 2001 Aug;6(8):349-58
PMID: 11495787
-
Ferredoxin:NADP+ oxidoreductase is a subunit of the chloroplast cytochrome b6f complex.
J Biol Chem. 2001 Oct 12;276(41):38159-65
PMID: 11483610
-
Identification of a functional respiratory complex in chloroplasts through analysis of tobacco mutants containing disrupted plastid ndh genes.
EMBO J. 1998 Feb 16;17(4):868-76
PMID: 9463365
-
Analysis of the interactions between the two photosystems in isolated chloroplasts.
Biochim Biophys Acta. 1968 Apr 2;153(3):635-52
PMID: 5650407