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The xanthophyll cycle and antioxidative defense system are enhanced in the wheat hybrid subjected to high light stress
Authors:Chen Xiaoying  Li Wei  Lu Qingtao  Wen Xiaogang  Li Hongwei  Kuang Tingyun  Li Zhensheng  Lu Congming
Institution:a Photosynthesis Research Center, Key Laboratory of Photobiology, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China
b The State Key Laboratory of Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China
Abstract:Although the wheat hybrids have often shown higher grain yields, the physiological basis of the higher yields remains unknown. Previous studies suggest that tolerance to photoinhibition in the hybrid may be one of the physiological bases (Yang et al., 2006, Plant Sci 171:389-97). The objective of this study was to further investigate the possible mechanism responsible for tolerance to photoinhibition in the hybrid. Photosystem II (PSII) photochemistry, the xanthophyll cycle, and antioxidative defense system were compared between the hybrid and its parents subjected to high light stress (1500 μmol m−2 s−1). The analyses of oxygen-evolving activity, chlorophyll fluorescence, and protein blotting demonstrated that the higher tolerance in the hybrid than in its parents was associated with its higher tolerance of PSII to photoinhibition. High light induced an increase in non-photochemical quenching, and this increase was greater in the hybrid than in its parents. There were no differences in the pool size of the xanthophyll cycle between the hybrid and its parents. The content of violaxanthin decreased significantly, whereas the content of zeaxanthin + antherxanthin increased considerably during high light treatments. However, the decrease in violaxanthin content and the increase in zeaxanthin + antherxanthin content were greater in the hybrid than in its parents. High light resulted in a significant accumulation of H2O2, O2 and catalytic Fe, and this accumulation was less in the hybrid than in its parents. High light induced a significant increase in the activities of superoxide dismutase, catalase, ascorbate peroxidase, glutathione reductase, dehydroascorbate reductase, and monodehydroascorbate reductase, and these increases were greater in the hybrid than its parents. These results suggest that the higher tolerance to photoinhibition in the hybrid may be associated with its higher capacity for antioxidative defense metabolism and the xanthophyll cycle.
Keywords:A  antherxanthin  APX  ascorbate peroxidase  CAT  catalase  DHAR  dehydroascorbate reductase  _method=retrieve&  _eid=1-s2  0-S017616171100280X&  _mathId=si1  gif&  _pii=S017616171100280X&  _issn=01761617&  _acct=C000054348&  _version=1&  _userid=3837164&  md5=decbed3fca1ab9841dc4350d6b63c1d3')" style="cursor:pointer  Fo" target="_blank">" alt="Click to view the MathML source" title="Click to view the MathML source">Fo  F&prime  o  minimal fluorescence in dark- and light-adapted leaves  respectively  _method=retrieve&  _eid=1-s2  0-S017616171100280X&  _mathId=si2  gif&  _pii=S017616171100280X&  _issn=01761617&  _acct=C000054348&  _version=1&  _userid=3837164&  md5=c3d709c609ee99a20f53b6c9f11ec394')" style="cursor:pointer  Fm" target="_blank">" alt="Click to view the MathML source" title="Click to view the MathML source">Fm  F&prime  m  maximal fluorescence in dark- and light-adapted leaves  respectively  _method=retrieve&  _eid=1-s2  0-S017616171100280X&  _mathId=si3  gif&  _pii=S017616171100280X&  _issn=01761617&  _acct=C000054348&  _version=1&  _userid=3837164&  md5=6ceee86f647a28f771eacd77baf3f809')" style="cursor:pointer  Fv" target="_blank">" alt="Click to view the MathML source" title="Click to view the MathML source">Fv  F&prime  v  maximum variable fluorescence in dark- and light-adapted leaves  respectively  Fs  steady-state fluorescence yield  Fv/Fm  maximum efficiency of PSII photochemistry  ΦPSII  actual PSII efficiency  GR  glutathione reductase  MDHAR  monodehydroascorbate reductase  qP  photochemical quenching coefficient  NPQ  non-photochemical quenching  SOD  superoxide dismutase  ROS  reactive oxygen species  V  violaxanthin  Z  zeaxanthin
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