ALUMINUM CAUSES NUTRIENT IMBALANCE AND STRUCTURAL-CHANGES IN THE NEEDLES OF SCOTS PINE WITHOUT INDUCING CLEAR ROOT INJURIES

被引:12
作者
JANHUNEN, S
PALOMAKI, V
HOLOPAINEN, T
机构
[1] Ecological Laboratory, Department of Environmental Sciences, University of Kuopio, Kuopio, FIN-70211
来源
TREES-STRUCTURE AND FUNCTION | 1995年 / 9卷 / 03期
关键词
PINUS SYLVESTRIS L; ALUMINUM; NUTRIENTS; MYCORRHIZA; ULTRASTRUCTURE;
D O I
10.1007/BF02418202
中图分类号
S7 [林业];
学科分类号
0829 ; 0907 ;
摘要
The effects of aluminium chloride (AlCl3) treatments (50 and 150 mg/l) on 3-year-old Scots pine (Pinus sylvestris L.) seedlings were studied in a sand culture during 2 growing periods in an open field experiment. Even by the end of the first growing period, a decline was observed in the concentrations of Ca, Mg and P within the needles, and of Ca and Mg in the roots. After the second growing period, increased N and K concentrations were observed in the needles of Al-treated seedlings. Both the needles and roots of Al-treated seedlings showed, after the second growing period, a decline in growth and increased concentrations of Al as the amount of AlCl3 in the nutrient solution increased. Al-induced changes in needle structure were found to be symptomatic of a nutrient imbalance, particularly of Mg and P. Al-stress did not result in any observable changes in root anatomy or in the number of mycorrhizas. Scots pine proved to be rather resistant to Al-stress, indicating that direct Al-injuries are not likely in the field, though Al-stress may be a contributing factor in the formation of nutrient imbalances.
引用
收藏
页码:134 / 142
页数:9
相关论文
共 45 条
[1]  
Allen S.E., Chemical analysis of ecological materials, (1989)
[2]  
Arovaara H., Ilvesniemi H., The effects of soluble inorganic aluminium and nutrient imbalances on Pinus sylvestris and Picea abies seedlings, Acidification in Finland, pp. 715-733, (1990)
[3]  
Bukovac M.J., Wittwer S.H., Absorption and mobility of foliar applied nutrients, PLANT PHYSIOLOGY, 32, pp. 428-435, (1957)
[4]  
Clarkson D.T., The effect of aluminium and some other trivalent metal cations on cell division in the root apices of Allium cepa, Ann Bot, 29, pp. 309-315, (1965)
[5]  
Cronan C.S., April R., Bartlett R.J., Bloom P.R., Driscoll C.T., Gherini S.A., Henderson G.S., Joslin J.D., Kelly J.M., Newton R.M., Parnell R.A., Patterson H.H., Raynal D.J., Schaedle M., Schofield C.L., Sucoff E.I., Tepper H.B., Thornton F.C., Aluminium toxicity in forests exposed to acidic deposition: the ALBIOS results, Water Air Soil Pollut, 48, pp. 181-192, (1989)
[6]  
Cumming J.R., Weinstein L.H., Aluminium-mycorrhizal interactions in the physiology of pitch pine seedlings, Plant Soil, 125, pp. 7-18, (1990)
[7]  
Cumming J.R., Weinstein L.H., Utilization of ALPO<sub>4</sub> as a phosphorus source by ectomycorrhizal Pinus rigida Mill. seedlings, New Phytologist, 116, pp. 99-106, (1990)
[8]  
Cumming J.R., Weinstein L.H., Nitrogen source effects on Al toxicity in nonmycorrhizal and mycorrhizal pitch pine (Pinus rigida) seedlings. 1. Growth and nutrition, Canadian Journal of Botany, 68, pp. 2644-2652, (1990)
[9]  
Daughtridge A.T., Boese S.R., Pallardy S.G., Garrett H.E., A rapid staining technique for assessment of ectomycorrhizal infection of oak roots, Canadian Journal of Botany, 64, pp. 1101-1103, (1986)
[10]  
Entry J.A., Cromack K., Stafford S., Castellano M.A., The effect of pH and aluminum concentration on ectomycorrhizal formation in Abies balsamea, Canadian Journal of Forest Research, 17, pp. 865-871, (1987)