Modeling the Impact of Agricultural Mitigation Measures on the Spread of Sharka Disease in Sweet Cherry Orchards
Abstract
1. Introduction
2. Materials and Methods
3. Results
4. Discussion and Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Variable | Description | Units * |
|---|---|---|
| Susceptible trees at time t | T | |
| Exposed trees at time t | T | |
| Infectious symptomatic trees at time t | T | |
| Infectious asymptomatic trees at time t | T | |
| Removed (uprooted) trees at time t | V | |
| Susceptible vectors at time t | V | |
| Infectious vectors at time t | V | |
| Human risk perception to Sharka disease at time t | R |
| Param. | Description | Units * | Baseline | Value | Ref. + |
|---|---|---|---|---|---|
| Tree | |||||
| Transmission rate to tree through vector, on season . | [31] | ||||
| Transmission rate to tree through pruning, on season . | |||||
| Average virus-PPV incubation time. | d | [32] | |||
| Average time until a symptomatic infectious tree is uprooted. | d | C.A. | |||
| Average time until an asymptomatic infectious tree is uprooted. | d | 0 | C.A. | ||
| Transition rate from symptomatic to asymptomatic infectious. | [6] | ||||
| Transition rate from asymptomatic to symptomatic infectious. | [6] | ||||
| Replacement rate of removed trees. | [33] | ||||
| Recruitment rate. | |||||
| Grafting rate. | [34,35] | ||||
| Proportion of infected grafts. | Unitless | C.A. | |||
| Natural mortality rate | [36] | ||||
| Time instants where grafting occurs. | d | 0 | [34,35] | ||
| Time instants where pruning occurs. | d | , | [37] | ||
| Vector | |||||
| Transmission rate to vector, on season . | [31] | ||||
| Vector–host transmission rate reduction due to vector movement. | Unitless | [38,39] | |||
| Average time a vector remains infectious. | d | [40] | |||
| Recruitment rate. | |||||
| Natural mortality rate. | [41,42] | ||||
| Mortality rate increase factor, on season . | Unitless | C.A. | |||
| Time instants where vector control occurs. | d | ; , . | [33] | ||
| Human | |||||
| Rate of resistance to change risk perception. | 0.01 | [29,30,43] | |||
| Per capita reaction rate to change risk perception. | 0.01 | [29,30,43] | |||
| Natural risk perception. | R | 0.5 | [29,30,43] | ||
| Risk perception increase factor. | Unitless | 0.1 | C.A. | ||
| Time instants where educational prevention campaigns occur. | d | , | C.A. | ||
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Gutiérrez-Jara, J.P.; Vogt-Geisse, K.; Correa, M.C.G.; Vilches-Ponce, K.; Pérez, L.M.; Chowell, G. Modeling the Impact of Agricultural Mitigation Measures on the Spread of Sharka Disease in Sweet Cherry Orchards. Plants 2023, 12, 3442. https://doi.org/10.3390/plants12193442
Gutiérrez-Jara JP, Vogt-Geisse K, Correa MCG, Vilches-Ponce K, Pérez LM, Chowell G. Modeling the Impact of Agricultural Mitigation Measures on the Spread of Sharka Disease in Sweet Cherry Orchards. Plants. 2023; 12(19):3442. https://doi.org/10.3390/plants12193442
Chicago/Turabian StyleGutiérrez-Jara, Juan Pablo, Katia Vogt-Geisse, Margarita C. G. Correa, Karina Vilches-Ponce, Laura M. Pérez, and Gerardo Chowell. 2023. "Modeling the Impact of Agricultural Mitigation Measures on the Spread of Sharka Disease in Sweet Cherry Orchards" Plants 12, no. 19: 3442. https://doi.org/10.3390/plants12193442
APA StyleGutiérrez-Jara, J. P., Vogt-Geisse, K., Correa, M. C. G., Vilches-Ponce, K., Pérez, L. M., & Chowell, G. (2023). Modeling the Impact of Agricultural Mitigation Measures on the Spread of Sharka Disease in Sweet Cherry Orchards. Plants, 12(19), 3442. https://doi.org/10.3390/plants12193442

