Thermal energy dissipation in reaction centres and in the antenna of photosystem II protects desiccated poikilohydric mosses against photo-oxidation

被引:78
作者
Heber, Ulrich
Bilger, Wolfgang
Shuvalov, Vladimir A.
机构
[1] Univ Wurzburg, Julius von Sachs Inst Biol Sci, D-97082 Wurzburg, Germany
[2] Univ Kiel, Inst Bot, D-24098 Kiel, Germany
[3] Russian Acad Sci, Inst Basic Biol Problems, Pushchino 142292, Moscow Region, Russia
[4] Moscow MV Lomonosov State Univ, Biophys Lab, Belozersky Inst Chem & Phys Biol, Moscow 119992, Russia
关键词
chlorophyll fluorescence; energy dissipation; mosses; photoprotection; photosystem II; reaction centre; zeaxanthin;
D O I
10.1093/jxb/erl058
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Seasonal differences have been observed in the ability of desiccated mosses to dissipate absorbed light energy harmlessly into heat. During the dry summer season desiccation-tolerant mosses were more protected against photo-oxidative damage in the dry state than during the more humid winter season. Investigation of the differences revealed that phototolerance could be acquired or lost even under laboratory conditions. When a desiccated poikilohydric moss such as Rhytidiadelphus squarrosus is in the photosensitive state, the primary quinone, Q(A), in the reaction centre of photosystem II is readily reduced even by low intensity illumination as indicated by reversibly increased chlorophyll fluorescence. No such reduction is observed even under strong illumination in desiccated mosses after phototolerance has been acquired. In this state, reductive charge stabilization is replaced by energy dissipation. As a consequence, chlorophyll fluorescence is quenched. Different mechanisms are responsible for quenching. One is based on the presence of zeaxanthin provided drying occurs in the light. This mechanism is known to be controlled by a protonation reaction which is based on proton-coupled electron transport while the moss is still hydrated. Another mechanism which also requires light for activation, but no protonation, is activated during desiccation. While water is slowly lost, fluorescence is quenched. In this situation, an absorption band formed at 800 nm in the light is stabilized. It loses reversibility on darkening. Comparable kinetics of fluorescence quenching and 800 nm signals as well as the linear relationship between non-photochemical fluorescence quenching (NPQ) and loss of stable charge separation in photosystem II reaction centres suggested that desiccation-induced quenching is a property of photosystem II reaction centres. During desiccation, quenchers accumulate which are stable in the absence of water but revert to non-quenching molecular species on hydration. Together with zeaxanthin-dependent energy dissipation, desiccation-induced thermal energy dissipation protects desiccated poikilohydric mosses against photo-oxidation, ensuring survival during drought periods.
引用
收藏
页码:2993 / 3006
页数:14
相关论文
共 47 条
[1]   In vitro reconstitution of the activated zeaxanthin state associated with energy dissipation in plants [J].
Aspinall-O'Dea, M ;
Wentworth, M ;
Pascal, A ;
Robert, B ;
Ruban, A ;
Horton, P .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (25) :16331-16335
[2]  
Bjorkman O, 1994, ECOPHYSIOLOGY PHOTOS, P123
[3]  
Buchanan BB., 2015, Biochemistry and Molecular Biology of Plants
[4]   A few molecules of zeaxanthin per reaction centre of photosystem II permit effective thermal dissipation of light energy in photosystem II of a poikilohydric moss [J].
Bukhov, NG ;
Kopecky, J ;
Pfündel, EE ;
Klughammer, C ;
Heber, U .
PLANTA, 2001, 212 (5-6) :739-748
[5]   The structural basis of non-photochemical quenching is revealed? [J].
Cogdell, RJ .
TRENDS IN PLANT SCIENCE, 2006, 11 (02) :59-60
[6]   A mechanism of nonphotochemical energy dissipation, independent from PsbS, revealed by a conformational change in the antenna protein CP26 [J].
Dall'Osto, L ;
Caffarri, S ;
Bassi, R .
PLANT CELL, 2005, 17 (04) :1217-1232
[7]   Changes in chlorophyll a fluorescence, photosynthetic CO2 assimilation and xanthophyll cycle interconversions during dehydration in desiccation-tolerant and intolerant liverworts [J].
Deltoro, VI ;
Calatayud, A ;
Gimeno, C ;
Abadía, A ;
Barreno, E .
PLANTA, 1998, 207 (02) :224-228
[8]   CAROTENOIDS AND PHOTOPROTECTION IN PLANTS - A ROLE FOR THE XANTHOPHYLL ZEAXANTHIN [J].
DEMMIGADAMS, B .
BIOCHIMICA ET BIOPHYSICA ACTA, 1990, 1020 (01) :1-24
[9]  
EICKMEIER WG, 1993, PLANTA, V189, P30
[10]   A zeaxanthin-independent nonphotochemical quenching mechanism localized in the photosystem II core complex [J].
Finazzi, G ;
Johnson, GN ;
Dallosto, L ;
Joliot, P ;
Wollman, FA ;
Bassi, R .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2004, 101 (33) :12375-12380