Using sensitivity analysis to identify key factors for the propagation of a plant epidemic

Author:

Rimbaud Loup1ORCID,Bruchou Claude2,Dallot Sylvie1,Pleydell David R. J.1,Jacquot Emmanuel1,Soubeyrand Samuel2,Thébaud Gaël1

Affiliation:

1. BGPI, INRA, Montpellier SupAgro, University of Montpellier, CIRAD, TA A-54/K, Campus de Baillarguet, Montpellier Cedex 5, 34398, France

2. BioSP, INRA, Avignon, 84914, France

Abstract

Identifying the key factors underlying the spread of a disease is an essential but challenging prerequisite to design management strategies. To tackle this issue, we propose an approach based on sensitivity analyses of a spatiotemporal stochastic model simulating the spread of a plant epidemic. This work is motivated by the spread of sharka, caused by plum pox virus , in a real landscape. We first carried out a broad-range sensitivity analysis, ignoring any prior information on six epidemiological parameters, to assess their intrinsic influence on model behaviour. A second analysis benefited from the available knowledge on sharka epidemiology and was thus restricted to more realistic values. The broad-range analysis revealed that the mean duration of the latent period is the most influential parameter of the model, whereas the sharka-specific analysis uncovered the strong impact of the connectivity of the first infected orchard. In addition to demonstrating the interest of sensitivity analyses for a stochastic model, this study highlights the impact of variation ranges of target parameters on the outcome of a sensitivity analysis. With regard to sharka management, our results suggest that sharka surveillance may benefit from paying closer attention to highly connected patches whose infection could trigger serious epidemics.

Funder

France AgriMer

DGA-MRIS

Sharco

Publisher

The Royal Society

Subject

Multidisciplinary

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