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As climate change continues to modify temperature and rainfall patterns, risks from pests and diseases may vary as shifting temperature and moisture conditions affect the life history, activity, and distribution of invertebrates and diseases. The potential consequences of changing climate on pest management strategies must be understood for control measures to adapt to new environmental conditions. The redlegged earth mite (RLEM; Halotydeus destructor [Tucker]) is a major economic pest that attacks pastures and grain crops across southern Australia and is typically controlled by pesticides. TIMERITE® is a management strategy that relies on estimating the optimal timing (the TIMERITE® date) for effective chemical control of RLEM populations in spring. In this study, we assessed the efficacy of control at the TIMERITE® date from 1990 to 2020 across southern Australia using a simulation approach that incorporates historical climatic data and field experimental data on life history, seasonal abundance, and population level pesticide responses. We demonstrate that moisture and temperature conditions affect the life history of RLEM and that changes in the past three decades have gradually diminished the efficacy of the TIMERITE® strategy. Furthermore, we show that by incorporating improved climatic data into predictions and shifting the timing of control to earlier in the year, control outcomes can be improved and are more stable across changing climates. This research emphasises the importance of accounting for dynamic environmental responses when developing and implementing pest management strategies to ensure their long-term effectiveness. Suggested modifications to estimating the TIMERITE® date will help farmers maintain RLEM control outcomes amidst increasingly variable climatic conditions.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11266682 | PMC |
http://dx.doi.org/10.1038/s41598-024-67602-9 | DOI Listing |
Pest Manag Sci
September 2025
School of Life Sciences, Genetic Engineering Research Center, Chongqing University, Chongqing, China.
Background: Entomopathogenic fungi show great potential as biological control agents for managing insect pests. However, host defenses have limited the effectiveness of these fungi in practice. Utilizing genetic engineering-based technology could be a promising strategy to enhance the killing efficiency of these fungi against insect pests.
View Article and Find Full Text PDFPest Manag Sci
September 2025
College of Plant Protection, Shenyang Agricultural University, Shenyang, China.
Background: Clubroot, caused by Plasmodiophora brassicae, significantly impacts cruciferous crop production worldwide. Biocontrol is an environmentally friendly and promising approach for clubroot management. Endophytic bacteria are known for their ability to promote plant growth and induce resistance against plant diseases.
View Article and Find Full Text PDFPest Manag Sci
September 2025
CABI, Nairobi, Kenya.
Background: Crop pests cause substantial crop yield and economic losses, food insecurity, and negative impacts on human health and environment globally. Timely provision of pest risk alerts - that is, the optimum time to intervene against key pests before invasion or establishment - to smallholder farmers on pest management could improve farm performance. However, there is little quantitative evidence testing this hypothesis.
View Article and Find Full Text PDFPest Manag Sci
September 2025
IRTA, Postharvest, Fruitcentre, Lleida, Spain.
Background: Almond blossom blight, caused by Monilinia spp., is a notable fungal disease associated with intensified crop management practices. In this study, we aimed to investigate the epidemiology of Monilinia spp.
View Article and Find Full Text PDFJ Econ Entomol
September 2025
Guangxi Key Laboratory for Agro-Environment and Agric-Product Safety, National Demonstration Center for Experimental Plant Science Education, College of Agriculture, Guangxi University, Nanning, Guangxi 530004, People's Republic of China.
Sublethal concentrations of insecticides are commonly encountered in agricultural environments, particularly by pests such as the oriental fruit fly, Bactrocera dorsalis (Hendel) (Diptera: Tephritidae), which primarily infests host plants during the larval stage. Sublethal concentrations of insecticides can elicit a wide range of effects; therefore, it is important to consider the impact of thiamethoxam, a registered control insecticide for B. dorsalis.
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