Effect of calcium on root development and root ion fluxes in salinised barley seedlings

被引:177
作者
Shabala, S
Shabala, L
Van Volkenburgh, E
机构
[1] Univ Tasmania, Dept Agr Sci, Hobart, Tas 7001, Australia
[2] Univ Washington, Dept Bot, Seattle, WA 98195 USA
关键词
calcium; growth; Hordeum; ion flux; membrane; salinity;
D O I
10.1071/FP03016
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The effects of various Na/Ca ratios on root growth, development, and ion acquisition patterns were studied in hydroponic experiments with barley ( Hordeum vulgare L.) plants. In total, interactions between three different levels of salinity ( 1, 50 and 100 mM NaCl) and three different levels of Ca(2+) (0.1, 1 and 10 mM) were studied ( a full factorial experiment). Growth rate and biomass accumulation were significantly lower in salinised roots. In addition to reduction in extension growth, salinity also significantly affected plant developmental processes ( for example reduced root hair density and root thickening). Supplemental Ca(2+) significantly ameliorated those detrimental effects of salinity. Non-invasive, microelectrode ion-flux (MIFE) measurements showed that the onset of salt stress caused rapid and prolonged efflux of H(+), K(+) and NH(4)(+) from the root epidermis. This efflux could be significantly reversed, or completely prevented, by the presence of high Ca(2+) concentration in the bath solution, even after several days of salt stress. Membrane potential measurements in root epidermal cells showed that high Ca(2+) levels in the bath were able to restore ( otherwise depolarised) membrane potential back to control level ( - 120 to - 130 mV). At the same time, no significant impact of Ca(2+) on net Na(+) uptake in plant roots was found. Some limitations of the MIFE technique for study of Na(+) uptake kinetics under saline conditions, as well as possible ionic mechanisms underlying the ameliorating Ca(2+) effects on ion fluxes in roots of salt-stressed plants, are discussed.
引用
收藏
页码:507 / 514
页数:8
相关论文
共 42 条
[11]  
Davenport RJ, 1997, PHYSIOL PLANTARUM, V99, P323, DOI 10.1034/j.1399-3054.1997.990216.x
[12]   Nonselective cation channels in plants [J].
Demidchik, V ;
Davenport, RJ ;
Tester, M .
ANNUAL REVIEW OF PLANT BIOLOGY, 2002, 53 :67-107
[13]  
Demidchik V, 2002, PLANT PHYSIOL, V128, P379, DOI 10.1104/pp.010524
[14]   Critical role of divalent cations and Na+ efflux in Arabidopsis thaliana salt tolerance [J].
Elphick, CH ;
Sanders, D ;
Maathuis, FJM .
PLANT CELL AND ENVIRONMENT, 2001, 24 (07) :733-740
[15]   Breeding for salinity resistance in crop plants: Where next? [J].
Flowers, TJ ;
Yeo, AR .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1995, 22 (06) :875-884
[16]   Growth and ultrastructure of Arabidopsis root hairs: The rhd3 mutation alters vacuole enlargement and tip growth [J].
Galway, ME ;
Heckman, JW ;
Schiefelbein, JW .
PLANTA, 1997, 201 (02) :209-218
[17]   Through form to function: root hair development and nutrient uptake [J].
Gilroy, S ;
Jones, DL .
TRENDS IN PLANT SCIENCE, 2000, 5 (02) :56-60
[18]   A pinch of salt: landowner perception and adjustment to the salinity hazard in Victoria, Australia [J].
Haw, M ;
Cocklin, C ;
Mercer, D .
JOURNAL OF RURAL STUDIES, 2000, 16 (02) :155-169
[19]  
HOAGLAND DR, 1950, 347 CAL AGR EXPT STA
[20]   Responses of growth, morphology, and anatomy to salinity and calcium supply in cultivated and wild barley [J].
Huang, J ;
Redmann, RE .
CANADIAN JOURNAL OF BOTANY-REVUE CANADIENNE DE BOTANIQUE, 1995, 73 (12) :1859-1866