Tester M, Davenport R. Na+ tolerance and Na+ transport in higher plants. Annals of Botany, 2003, 91(5): 503-527.
[6]
Foyer C H, Noctor G. Oxygen processing in photosynthesis: regulation and signaling. New Phytologist, 2000, 146(3): 359-388.
[7]
Yeo A R, Caporn S J M, Flower T J. The effect of salinity upon photosynthesis in rice (Oryza saliva L.); gas exchange by individual leaves in relation to their salt content. Journal of Experimental Botany, 1985, 36: 1240-1248.
[8]
Brugnoli E, Bjorkman O. Growth of cotton under continuous salinity stress: influence on allocation pattern, stomatal and non-stomatal components of photosynthesis and dissipation of excess light energy. Planta, 1992, 187: 335-345.
[9]
Robert H, Marrec C, Blanco C, et al. Glycine betaine, carnitine and choline enhance salinity tolerance and prevent the accumulation of sodium to a level inhibiting growth of Tetragenococcus halaphila. Applied and Environmental Microbiology, 2000, 66: 509-517.
Agafonov A V, Baum B R, Balley L G, et al. Differentiation in the Elymus dahuricus comple (poaceae): evidence from grain proteins, DNA, and crossability. Hereditas, 2001, 135: 277-289.
Wang S M, Wan C G, Wang Y R. The characteristics of Na+, K+ and free proline distribution in several drought resistant plants of the Alxa Desert, China. Journal of Arid Environments, 2004, 56: 525-539.
[28]
Rashmi P, Agarwai R M, Jeevaratam K, et al. Osmotic stress induced alteration in rice (Oryza sativa L.) and recovery on stress release. Plant Growth Regulation, 2004, 42: 79-87.
Schobert B. Is there an osmotic regulatory mechanism in algae and higher plants. Journal of Theory Biology,1997, 68: 17-26.
[33]
Hanson A D, Nelsen C E, Everson E H. Evaluation of free proline accumulation as an index of drought resistance using two contrasting barley cultivars. Crop Science, 1977, 17: 720-726.