Putting the insect into the birch-insect interaction

被引:97
作者
Haukioja, E [1 ]
机构
[1] Univ Turku, Dept Biol, Sect Ecol, Turku 20014, Finland
关键词
birch; herbivory; compensatory feeding; water; phenolics;
D O I
10.1007/s00442-003-1238-z
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Leaf maturation in mountain birch (Betula pubescens ssp. czerepanovii) is characterized by rapid shifts in the types of dominant phenolics: from carbon-economic flavonoids aglycons in flushing leaves, via hydrolysable tannins and flavonoid glycosides, to carbon-rich proanthocyanidins (condensed tannins) in mature foliage. This shift accords with the suggested trade-offs between carbon allocation to plant defense and growth, but may also relate to the simultaneous decline in nutritive leaf traits, such as water, proteins and sugars, which potentially limit insect growth. To elucidate how birch leaf quality translates into insect growth, I introduce a simple model that takes into account defensive compounds but also acknowledges insect demand for nutritive compounds. The effects of defensive compounds on insect growth depend strongly on background variation in nutritive leaf traits: compensatory feeding on low nutritive diets increases the intake of defensive compounds, and the availability of growth-limiting nutritive compounds may modify the effects of defenses. The ratio of consumption to larval growth (both in dry mass) increases very rapidly with leaf maturation: from 2.9 to 9.8 over 2 weeks in June-July, and to 15 by August. High concentrations in mature birch leaves of 'quantitative' defenses, such as proanthocyanidins (15-20% of dry mass), presumably prevent further consumption. If the same compounds had also protected half-grown leaves (which supported the same larval growth with only one third of the dry matter consumption of older leaves), the same intake of proanthocyanidins would have demanded improbably high concentrations (close to 50%) in young leaves. The model thus suggests an adaptive explanation for the high levels of 'quantitative' defenses, such as proanthocyanidins, in low-nutritive but not in high-nutritive leaves because of the behavioral responses of insect feeding to leaf nutritive levels.
引用
收藏
页码:161 / 168
页数:8
相关论文
共 62 条
[1]  
[Anonymous], 1975, Coevolution of Animals and Plants
[2]   PLANT TANNINS AND INSECT HERBIVORES - AN APPRAISAL [J].
BERNAYS, EA .
ECOLOGICAL ENTOMOLOGY, 1981, 6 (04) :353-360
[3]   Plant secondary compounds and grasshoppers: Beyond plant defenses [J].
Bernays, EA ;
Chapman, RF .
JOURNAL OF CHEMICAL ECOLOGY, 2000, 26 (08) :1773-1794
[4]   Mechanisms of Douglas-fir resistance to western spruce budworm defoliation: bud burst phenology, photosynthetic compensation and growth rate [J].
Chen, Z ;
Kolb, TE ;
Clancy, KM .
TREE PHYSIOLOGY, 2001, 21 (16) :1159-1169
[5]  
CLANCY KM, 1993, FOREST SCI, V39, P78
[6]   Rethinking the role of many plant phenolics - protection from photodamage not herbivores? [J].
Close, DC ;
McArthur, C .
OIKOS, 2002, 99 (01) :166-172
[7]   Polyphenol oxidase from hybrid poplar. Cloning and expression in response to wounding and herbivory [J].
Constabel, CP ;
Yip, L ;
Patton, JJ ;
Christopher, ME .
PLANT PHYSIOLOGY, 2000, 124 (01) :285-295
[8]  
EHRLICH PR, 1964, EVOLUTION, V18, P586, DOI 10.1111/j.1558-5646.1964.tb01674.x
[9]  
Feeny PP, 1976, RECENT ADV PHYTOCHEM, V10, P1, DOI DOI 10.1007/978-1-4684-2646-5_1
[10]   IMPACT OF OXIDIZED PLANT PHENOLICS ON THE NUTRITIONAL QUALITY OF DIETARY-PROTEIN TO A NOCTUID HERBIVORE, SPODOPTERA-EXIGUA [J].
FELTON, GW ;
DONATO, KK ;
BROADWAY, RM ;
DUFFEY, SS .
JOURNAL OF INSECT PHYSIOLOGY, 1992, 38 (04) :277-285