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Article; Agriculture and Environmental Biotechnology

Molecular cloning and characterization of ClZE, a zeaxanthin epoxidase gene in watermelon (Citrullus lanatus)

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Pages 259-269 | Received 13 Jun 2016, Accepted 19 Dec 2016, Published online: 23 Jan 2017

References

  • Xu CC, Li LB, Kuang TY. The inhibited xanthophyll cycle is responsible for the increase in sensitivity to low temperature photoinhibition in rice leaves fed with glutathione. Photosynthesis Res. 2000;65:107–114.
  • Takahashi S, Murata N. How do environmental stresses accelerate photoinhibition? Trends Plant Sci. 2008;13:178–182.
  • Han H, Gao S, Dong XC, et al. Overexpression of violaxanthin de-epoxidase gene alleviates photoinhibition of PSII and PSI in tomato during high light and chilling stress. J Plant Physiol. 2010;167:176–183.
  • Zhou B, Deng YS, Kong FY, et al. Overexpression of a tomato carotenoid 3-hydroxylase gene alleviates sensitivity to chilling stress in transgenic tobacco. Plant Physiol Biochem. 2013;70:235–245.
  • Sun XL, Yang S, Wang LY, et al. The unsaturation of phosphatidylglycerol in thylakoid membrane alleviates PSII photoinhibition under chilling stress. Plant Cell Rep. 2011;30:1939–1947.
  • Pokorska B, Zienkiewicz M, Powikrowska M, et al. Differential turnover of the photosystem II reaction centre D1 protein in mesophyll and bundle sheath chloroplasts of maize. Biochim Biophys Acta. 2009;1787:1161–1169.
  • Nishiyama Y, Allakhverdiev SI, Murata N. A new paradigm for the action of reactive oxygen species in the photoinhibition of photosystem II. Biochim Biophys Acta. 2006;757:742–749.
  • Johnson MP, Goral TK, Duffy CDP, et al. Photoprotective energy dissipation involves the reorganization of photosystem II light harvesting complexes in the grana membrane of high plant chloroplasts. Plant Cell. 2011;23:1468–1479.
  • Belgio E, Kapitonova E, Chmeliov J. Economic photoprotection in photosystem II that retains a complete light-harvesting system with slow energy traps. Nature Commun [Internet]. 2014 [ cited 2016 Jul 24];5:4433. Available from: http://www.nature.com/articles/ncomms5433
  • Kalituho L, Beran KC, Jahns P. The transiently generated nonphotochemical quenching of excitation energy in Arabidopsis leaves is modulated by zeaxanthin. Plant Physiol. 2007;143:1861–1870.
  • Reinhold C, Niczyporuk S, Christian K, et al. Short-term down-regulation of zeaxanthin epoxidation in Arabidopsis thaliana in response to photo-oxidative stress conditions. Biochim Biophys Acta. 2008;1777:462–469.
  • Nowicka B, Strzalka W, Strzalka K. New transgenic line of Arabidopsis thaliana with partly disabled zeaxanthin epoxidase activity displays changed carotenoid composition, xanthophyll cycle activity and non-photochemical quenching kinetics. J Plant Physiol. 2009;166:1045–1056.
  • Bugos RC, Hieber AD, Yamamoto HY. Xanthophyll cycle enzymes are members of the lipocalin family, the first identified from plants. J Biol Chem. 1998;273:15321–15324.
  • Lin RC, Xu CC, Li LB, et al. Xanthophyll cycle and its molecular mechanism in photoprotection. Acta Botanica Sinica. 2002;44:379–383.
  • Wang N, Li B, Feng HL, et al. Antisense-mediated suppression of tomato zeaxanthin epoxidase alleviates photoinhibition of PSII and PSI during chilling stress under low irradiance. Photosynthetica. 2010;48:409–416.
  • Xing X, Liu YK, Kong XP, et al. Overexpression of a maize dehydrin gene, ZmDHN2b, in tobacco enhances tolerance to low temperature. Plant Growth Regul. 2011;65:109–118.
  • Yang BY, Liu YT, Hu WJ, et al. Depend on cDNA-AFLP and MSAP technical analysis of homologous diploid and tetraploid watermelon under cold stress. J Plant Genet Res. 2015;16(6):1298–1306.
  • Zhong C, Gallie DR. Violaxanthin de-epoxidase is rate-limiting for non-photochemical quenching under subsaturating light or during chilling in Arabidopsis. Plant Physiol Biochem. 2012;58:66–82.
  • Van Kooten O, Snel JFH. The use of chlorophyll fluorescence nomenclature in plant stress physiology. Photosynthesis Res. 1990;25:147–150.
  • Wang N, Fang W, Han H, et al. Overexpression of zeaxanthin epoxidase gene enhances the sensitivity of tomato PSII photoinhibition to high light and chilling stress. Physiol Plant. 2008;132:384–396.
  • Chongchatuporn U, Ketsa S, van Doorn WG. Chilling injury in mango (Mangifera indica) fruit peel: relationship with ascorbic acid concentrations and antioxidant enzyme activities. Biol Technol. 2013;86:409–417.
  • Zang DD, Wang C, Ji XY. Tamarix hispida zinc finger protein ThZFP1 participates in salt and osmotic stress tolerance by increasing proline content and SOD and POD activities. Plant Sci. 2015;235:111–121.
  • Baroli I, Do AD, Yamane T, et al. Zeaxanthin accumulation in the absence of a functional xanthophyll cycle protects Chlamydomonas reinhardtii from photooxidative stress. Plant Cell. 2003;15:992–1008.
  • Durocher D, Jackson SP. The FHA domain. FEBS Lett. 2002;513:58–66.
  • Hieber AD, Bugos RC, Yamamoto HY. Plant lipocalins: violaxanthin de-epoxidaseand zeaxanthin epoxidase. Biochim Biophys Acta, 2000;482:84–91.
  • Grzyb J, Latowski D, Strzalka K. Lipocalins - a family portrait. Plant Physiol. 2006;163:895–915.
  • Zhang Z, Wang Y, Chang L, et al. MsZEP, a novel zeaxanthin epoxidase gene from alfalfa (Medicago sativa), confers drought and salt tolerance in transgenic tobacco. Plant Cell Rep. 2016;35:439–453.
  • Audran C, Borel C, Frey A, et al. Expression studies of zeanxanthin epoxidase gene in Nicotiana plumbaginifolia. Plant Physiol. 1998;118:1021–1028.
  • North HM, Fry A, Boutin JP, et al. Analysis of xanthophyll cycle gene expression during the adaption of Atabidopsis to excess lihgt dan drought stress: changes in RNA steady-state levels do no contribute to short-term response. Plant Sci. 2005;169:115–124.
  • Schwarz N, Armbruster U, Lven T, et al. Tissue-specific accumulation and regulation of zeaxanthin epoxidase in Arabidopsis reflect the multiple function of the enzyme in plastids. Plant Cell Physiol. 2015;56:346–257.
  • Quaas T, Berteotti S, Ballottari M, et al. Non-photochemical quenching and xanthophyll cycle activities in six green algal species suggest mechanistic differences in the process of excess energy dissipation. J Plant Physiol. 2015;172:92–103.
  • Demmig-Adams B, Adams III WW. Carotenoid composition in sun and shade leaves of plants with different life forms. Plant Cell Environ. 1992;15:411–419.
  • Baker NR. Chlorophyll fluorescence: a probe of photosynthesis in vivo. Annu Rev Plant Biol. 2008;59:89–113.
  • Müller P, Li XP, Niyogi KK. A response to excess light energy non-photochemical quenching. A response to excess light energy. Plant Physiol. 2001;125:1558–1566.
  • Pinnola A, Dall'Osto L, Gerotto C, et al. Zeaxanthin binds to light-harvesting complex stress-related protein to enhance nonphotochemical quenching in Physcomitrella patens. Plant Cell. 2013;25:3519–3534.
  • Johnson MP, Davison PA, Ruban AV, et al. The xanthophyll cycle pool size controls the kinetics of non-photochemical quenching in Arabidopsis thaliana. FEBS Lett. 2008;582:259–263.
  • Johnson MP, Zia A, Horton P, et al. Effect of xanthophyll composition on the chlorophyll excited state lifetime in plant leaves and isolated LHCII. Chem Phys. 2010;373:23–32.
  • Eilers U, Dietzel L, Breitenbach J, et al. Identification of genes coding for functional zeaxanthin epoxidases in the diatom Phaeodactylum tricornutum. J Plant Physiol. 2016;192:64–70.
  • Takahashi S, Murata N. Glycerate-3-phosphate, produced by CO 2 fixation in the Calvin cycle, is critical for the synthesis of the D1 protein of photosystem II. Biochim Biophys Acta. 2006;1757:198–205.
  • Lin KH, Kuo WS, Chiang CM, et al. Study of sponge gourd ascorbate peroxidase and winter squash superoxide dismutase under respective flooding and chilling stresses. Scientia Horticulturae. 2013;162:333–340.
  • Havaux M, Dall'Osto L, Bassi R. Zeaxanthin has enhanced antioxidant capacity with respect to all other xanthophylls in Arabidopsis leaves and functions independent of binding to PSII antennae. Plant Physiol, 2007;1451:1506–1520.
  • Havaux M, Eymery F, Porfirova S, et al. Vitamin E protects against photoinhibition and photooxidative stress in Arabidopsis thaliana. Plant Cell. 2005;17:3451–3469.
  • Nishiyama Y, Allakhverdiev SI, Murata N. Inhibition of the repair of photosystem II by oxidative stress in cyanobacteria. Photosynth Res. 2005;84:1–7.
  • Lupinkova L, Komenda J. Oxidative modifications of the photosystem II D1 protein by reactive oxygen species: from isolated protein to cyanobacterial cells. Photochem Photobiol. 2004;79:152–162.