Structural characteristics and chemical composition of birch (Betula pendula) leaves are modified by increasing CO2 and ozone

被引:97
作者
Oksanen, E
Riikonen, J
Kaakinen, S
Holopainen, T
Vapaavuori, E
机构
[1] Univ Joensuu, Dept Biol, FI-80101 Joensuu, Finland
[2] Univ Kuopio, Dept Ecol & Environm Sci, FI-70211 Kuopio, Finland
[3] Suonenjoki Res Stn, Finnish Forest Res Inst, FI-77600 Suonenjoki, Finland
关键词
anatomy; Betula pendula; birch; cell wall chemistry; CO2; interaction; nutrient content; ozone; ultrastructure;
D O I
10.1111/j.1365-2486.2005.00938.x
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Impacts of ozone and CO2 enrichment, alone and in combination, on leaf anatomical and ultrastructural characteristics, nutrient status and cell wall chemistry in two European silver birch (Betula pendula Roth) clones were studied. The young soil-growing trees were exposed in open-top chambers over three growing seasons to 2 x ambient CO2 and/or ozone concentrations in central Finland. The trees were measured for changes in altogether 35 variables of leaf structure, nutrients and cell wall chemistry of green leaves, and 20 of the measured variables were affected by CO2 and/or O-3. Elevated CO2 increased the size of chloroplasts and starch grains, number of mitochondria, P : N ratio, and contents of cell wall hemicellulose. Elevated CO2 decreased the total leaf thickness, specific leaf area, concentrations of N, K, Cu, S and Fe, and contents of cell wall alpha-cellulose, uronic acids, acid-soluble lignin and acetone-soluble extractives. Elevated ozone led to thinner leaves, higher palisade to spongy ratio, increased number of peroxisomes and mitochondria, reduced content of Mn, Zn, Cu, hemicellulose and uronic acids, and lower Mn : N and Zn : N ratios. In the combined exposure, interactions were antagonistic. Ultrastructural changes became more evident towards the end of the exposure. Young leaves were tolerant against ozone-caused oxidative stress, whereas oxidative H2O2 accumulation was found in older leaves. CO2 enrichment improved ozone tolerance not only through increased photosynthesis rates, but also through changes in cell wall chemistry (hemicellulose, in particular). However, nutrient imbalances due to ozone and/or CO2 may predispose the trees to other biotic and abiotic stresses. Down-regulation and up-regulation of photosynthesis under elevated CO2 through anatomical changes is discussed.
引用
收藏
页码:732 / 748
页数:17
相关论文
共 53 条
[1]  
[Anonymous], 2003, SPSS 12 0 1 WIND
[2]   Effects of long-term nutrient optimisation on stem wood chemistry in Picea abies [J].
Anttonen, S ;
Manninen, AM ;
Saranpaa, P ;
Kainulainen, P ;
Linder, S ;
Vapaavuori, E .
TREES-STRUCTURE AND FUNCTION, 2002, 16 (06) :386-394
[3]   Seasonal ozone response of mature beech trees (Fagus sylvatica) at high altitude in the Bavarian forest (Germany) in comparison with young beech grown in the field and in phytotrons [J].
Baumgarten, M ;
Werner, H ;
Häberle, KH ;
Emberson, LD ;
Fabian, P ;
Matyssek, R .
ENVIRONMENTAL POLLUTION, 2000, 109 (03) :431-442
[4]   Localization of hydrogen peroxide accumulation during the hypersensitive reaction of lettuce cells to Pseudomonas syringae pv phaseolicola [J].
Bestwick, CS ;
Brown, IR ;
Bennett, MHR ;
Mansfield, JW .
PLANT CELL, 1997, 9 (02) :209-221
[5]   Lignification in beech (Fagus sylvatica) grown at elevated CO2 concentrations:: interaction with nutrient availability and leaf maturation [J].
Blaschke, L ;
Forstreuter, M ;
Sheppard, LJ ;
Leith, IK ;
Murray, MB ;
Polle, A .
TREE PHYSIOLOGY, 2002, 22 (07) :469-477
[6]  
Brett C, 1996, PHYSL BIOCH PLANT CE
[7]   Condensed lignins are synthesized in poplar leaves exposed to ozone [J].
Cabané, M ;
Pireaux, JC ;
Léger, E ;
Weber, E ;
Dizengremel, P ;
Pollet, B ;
Lapierre, C .
PLANT PHYSIOLOGY, 2004, 134 (02) :586-594
[8]   Elevated CO2 reduces the nitrogen concentration of plant tissues [J].
Cotrufo, MF ;
Ineson, P ;
Scott, A .
GLOBAL CHANGE BIOLOGY, 1998, 4 (01) :43-54
[9]  
Coûteaux MM, 1999, TREE PHYSIOL, V19, P301
[10]   Reactive oxygen species, antioxidant systems and nitric oxide in peroxisomes [J].
del Río, LA ;
Corpas, FJ ;
Sandalio, LM ;
Palma, JM ;
Gómez, M ;
Barroso, JB .
JOURNAL OF EXPERIMENTAL BOTANY, 2002, 53 (372) :1255-1272