[47] 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, 1757: 742-749. [48] Sairam RK, Tyagi A. Physiology and molecular biology of salinity stress tolerance in plants. Curr Sci, 2004, 86: 407-421. [49] Farooq M, Aziz T, Basra SMA, Wahid A, Khaliq A, Cheema A. Exploring the role of calcium to improve chilling tolerance in hybrid maize. J Agron Crop Sci, 2008, 194: 350-359. [50] Yang T, Poovaiah BW. Hydrogen peroxide homeostasis: activation of plant catalase by calcium/calmodulin. Proc Natl Acad Sci USA, 002, 99: 4097-4102. [51] Maestri E, Klueva N, Perrotta C, Gulli M, Nguyen HT, Marmiroli N. Molecular genetics of heat tolerance and heat shock proteins in cereals. Plant Mol Biol, 2002, 48:667-681 [52] Larkindale J, Knight MR. Protection against heat stress-induced oxidative damage in Arabidopsis involves calcium, abscisic acid, ethylene and salicylic acid. Plant Physiol, 2002, 128: 682-695. [53] Takahashi S, Murata N. How do environmental stresses accelerate photoinhibition? Trends Plant Sci, 2008, 13(4):178-182. [54] Schroda M, Vallon O, Wollman FA, Beck CF. A chloroplast-targeted heat shock protein 70 (HSP70) contributes to the photoprotection and repair of photosystem during and after photoinhibition. Plant Cell, 1999, 11:1165–178.
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