Large-scale fungicide spray heterogeneity and the regional spread of resistant pathogen strains

被引:38
作者
Parnell, S
van den Bosch, F
Gilligan, CA
机构
[1] Univ Cambridge, Dept Plant Sci, Cambridge CB2 3EA, England
[2] Rothamsted Res, Biomath, Harpenden AL5 2JQ, Herts, England
基金
英国生物技术与生命科学研究理事会;
关键词
fitness cost; fungicide effectiveness;
D O I
10.1094/PHYTO-96-0549
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Most models for the spread Of fungicide resistance in plant pathogens are focused on within-field dynamics, yet regional invasion depends upon the interactions between field Populations. Here, we use a spatially implicit metapopulation model to describe the dynamics of regional spread, in which subpopulations correspond to single fields. We show that the criterion for the regional invasion of pathogens between fields differs from that for invasion within fields. That is, the ability of a fungicide-resistant strain of a pathogen to invade a field Population does not necessarily imply an ability to spread through many fields at the regional scale. This depends upon ail interaction between the fraction of fields that is sprayed and the reproductive capacity of the pathogen. This result is of practical significance and indicates that resistance management strategies which currently target within-field processes. such as the use of mixtures and alternations of fungicides, may be more effective if between-field processes also were targeted; for example. through the restricted deployment of fungicides over large areas. We also show that the fraction of disease-free fields is maximized when the proportion of fields that is sprayed is just below the threshold for invasion of the resistant strain.
引用
收藏
页码:549 / 555
页数:7
相关论文
共 31 条
[1]   POPULATION BIOLOGY OF INFECTIOUS-DISEASES .1. [J].
ANDERSON, RM ;
MAY, RM .
NATURE, 1979, 280 (5721) :361-367
[2]  
[Anonymous], 1988, MATH MODELS BIOL
[3]  
BATEMAN GL, 1990, Z PFLANZENK PFLANZEN, V97, P508
[4]   Changes in populations of the eyespot fungi Tapesia yallundae and T-acuformis under different fungicide regimes in successive crops of winter wheat, 1984-2000 [J].
Bierman, SM ;
Fitt, BDL ;
van den Bosch, F ;
Bateman, GL ;
Jenkyn, JF ;
Welham, SJ .
PLANT PATHOLOGY, 2002, 51 (02) :191-201
[5]  
Brent K. J., 1995, FUNGICIDE RESISTANCE, V1
[6]   Large-scale management of insect resistance to transgenic cotton in Arizona:: Can transgenic insecticidal crops be sustained? [J].
Carrière, Y ;
Dennehy, TJ ;
Pedersen, B ;
Haller, S ;
Ellers-Kirk, C ;
Antilla, L ;
Liu, YB ;
Willott, E ;
Tabashnik, BE .
JOURNAL OF ECONOMIC ENTOMOLOGY, 2001, 94 (02) :315-325
[7]   Modeling the spatial and temporal location of refugia to manage resistance in Bt transgenic crops [J].
Cerda, H ;
Wright, DJ .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2004, 102 (02) :163-174
[8]   A SIMPLE-MODEL OF SELECTION FOR FUNGICIDE RESISTANCE IN PLANT PATHOGEN POPULATIONS [J].
CHIN, KM .
PHYTOPATHOLOGY, 1987, 77 (05) :666-669
[9]   Characterizing resistance risk of Erysiphe graminis f.sp tritici to strobilurins [J].
Chin, KM ;
Chavaillaz, D ;
Kaesbohrer, M ;
Staub, T ;
Felsenstein, FG .
CROP PROTECTION, 2001, 20 (02) :87-96
[10]  
Garthwaite D. G., 2000, PESTICIDE USAGE SURV