The ecological concept of costs of induced systemic resistance (ISR)

被引:81
作者
Heil, M [1 ]
机构
[1] Biozentrum, Lehrstuhl Zool 3, D-97074 Wurzburg, Germany
[2] CNRS, Ctr Ecol Fonct & Evolut, F-34293 Montpellier 5, France
关键词
growth differentiation balance-hypothesis; fitness costs; induced defence; plant-pathogen interaction; SAR; systemic acquired resistance;
D O I
10.1023/A:1008793009517
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Plant defence is thought to provide benefits for the defended plants. Theoretical concepts must, therefore, explain why there is variation in defensive traits, which naively might be assumed to be present constitutively in fixed high amounts. Explanations are mainly based on the assumption of fitness costs. Investment in defence is thought to reduce the fitness of plants in enemy-free environments. Fitness costs often result from allocation costs, i.e. allocation of limited resources to defence, which then cannot be used for growth or other fitness-relevant processes. This theoretical concept can provide a useful tool for the interpretation of induced plant responses against pathogens, named induced systemic (or systemic acquired) resistance (ISR or SAR). Phenotypic plasticity, leading to induced responses, might have evolved mainly to reduce costs, since investment in defence is restricted to situations actually requiring defence. ISR can incur allocation costs and other, indirect costs, which ultimately may lead to fitness costs. Evolution of any defensive trait depends on both what a plant ideally 'should do' and what it actually 'is able to do'. Costs of defence constrain its expression. This might have important influences on the evolution of plant defensive traits, as well as on the exploitation of natural defences in agricultural crop protection.
引用
收藏
页码:137 / 146
页数:10
相关论文
共 108 条
[1]  
Agrawal A. A., 1999, INDUCIBLE PLANT DEFE
[2]  
Agrawal AA, 1999, EVOLUTION, V53, P1093, DOI 10.2307/2640814
[3]   Induced responses to herbivory in wild radish: Effects on several herbivores and plant fitness [J].
Agrawal, AA .
ECOLOGY, 1999, 80 (05) :1713-1723
[4]  
Agrawal Anurag A., 1999, P45
[5]   Systemic acquired resistance in tomato against Phytophthora infestans by pre-inoculation with tobacco necrosis virus [J].
Anfoka, G ;
Buchenauer, H .
PHYSIOLOGICAL AND MOLECULAR PLANT PATHOLOGY, 1997, 50 (02) :85-101
[6]   A NEW ELICITOR OF THE HYPERSENSITIVE RESPONSE IN TOBACCO - A FUNGAL GLYCOPROTEIN ELICITS CELL-DEATH, EXPRESSION OF DEFENSE GENES, PRODUCTION OF SALICYLIC-ACID, AND INDUCTION OF SYSTEMIC ACQUIRED-RESISTANCE [J].
BAILLIEUL, F ;
GENETET, I ;
KOPP, M ;
SAINDRENAN, P ;
FRITIG, B ;
KAUFFMANN, S .
PLANT JOURNAL, 1995, 8 (04) :551-560
[7]   ACTIVE OXYGEN IN PLANT PATHOGENESIS [J].
BAKER, CJ ;
ORLANDI, EW .
ANNUAL REVIEW OF PHYTOPATHOLOGY, 1995, 33 :299-321
[8]   Jasmonate-induced responses of Nicotiana sylvestris results in fitness costs due to impaired competitive ability for nitrogen [J].
Baldwin, IT ;
Hamilton, W .
JOURNAL OF CHEMICAL ECOLOGY, 2000, 26 (04) :915-952
[9]   The eco-physiological complexity of plant responses to insect herbivores [J].
Baldwin, IT ;
Preston, CA .
PLANTA, 1999, 208 (02) :137-145
[10]   THE ALKALOIDAL RESPONSES OF WILD TOBACCO TO REAL AND SIMULATED HERBIVORY [J].
BALDWIN, IT .
OECOLOGIA, 1988, 77 (03) :378-381