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In many natural systems, animal populations are exposed to increasing levels of stress. Stress levels tend to fluctuate, and long-term increases in average stress levels are often accompanied by greater amplitudes of such fluctuations. Micro-evolutionary adaptation may allow populations to cope with gradually increasing stress levels but may not prevent their extirpation during acute stress events unless adaptation to low stress levels also increases their tolerance to acute stress. We tested this idea, here called 'micro-evolutionary priming', by exposing populations of the monogonont rotifer species Brachionus calyciflorus to four levels of copper stress (control, low, intermediate and high) during a multigenerational selection experiment. Subsequently, in a common garden experiment, we exposed randomly selected subsets of genotypes (clones) of each of these populations to low, intermediate and high copper levels and assessed their population growth performance across multiple generations. Compared to populations with an exposure history to copper, genotypes of control populations suffered strong growth reductions when exposed to intermediate and high levels of copper, mainly as a result of high mortality rates. Remarkably, when exposed to low copper levels, fitness differences between genotypes of control populations and populations adapted to these low levels were very small, whereas the latter strongly outperformed the former at intermediate and high copper levels. These results highlight the potentially strong but hitherto largely ignored impact of micro-evolutionary priming on the performance of populations in a changing environment. We discuss the potential consequences of micro-evolutionary priming for the persistence of populations and the spatial eco-evolutionary dynamics of metapopulations.
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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC12056352 | PMC |
http://dx.doi.org/10.1111/1365-2656.70012 | DOI Listing |
Neurotherapeutics
September 2025
Department of Neurology, Peking University Third Hospital, Beijing, 100191, China; Beijing Key Laboratory of Biomarker and Translational Research in Neurodegenerative Diseases, Beijing, 100191, China; Key Laboratory for Neuroscience, National Health Commission/Ministry of Education, Peking Universit
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View Article and Find Full Text PDFPestic Biochem Physiol
November 2025
Zhejiang Provincial Key Laboratory of Biometrology and Inspection & Quarantine, Key Laboratory of Microbiological Metrology, Measurement & Bio-product Quality Security, State Administration for Market Regulation, School of Life Sciences, China Jiliang University, Hangzhou 310018, China. Electronic a
The brown planthopper (BPH) Nilaparvata lugens is one of the most destructive pests of rice, and its management has primarily relied on chemical insecticides. Currently, the chemical management of BPH is facing challenges due to the development of pesticide resistance. RNA interference (RNAi) provides attractive alternative to chemical insecticides, provided that suitable target genes are identified.
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November 2025
State Key Laboratory of Green Pesticide, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Center for R&D of Fine Chemicals of Guizhou University, Guiyang 550025, China. Electronic address:
Given the widespread presence of imidacloprid in aquatic environments and the limited research on its impact on amphibian renal health, in this study, we investigated the effects of this commonly used neonicotinoid insecticide on kidney function and molecular mechanisms in Xenopus laevis. Employing a 28-day exposure model, histopathological changes and enzymatic responses induced by two concentrations of imidacloprid were examined, along with gene expression alterations and metabolic disruptions at environmentally relevant levels. The results highlighted significant renal histopathological damage and changes in key enzymes involved in oxidative stress and neurotoxicity, such as superoxide dismutase, glutathione S-transferase, and acetylcholinesterase.
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November 2025
Yantai Academy of Agricultural Sciences, Yantai 265500, China. Electronic address:
The diamide insecticide cyantraniliprole (CYA) and the triazole fungicide difenoconazole (DIF) are frequently co-detected in bee-related matrices. However, the interactive effects of these compounds on honey bee (Apis mellifera L.) physiology remain insufficiently elucidated.
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November 2025
Department of GreenBio Science, Gyeongsang National University, Jinju 52725, Republic of Korea. Electronic address:
Bromuconazole, a widely used triazole-based pesticide, effectively controls fungal diseases in agriculture. Bromuconazole cause a potential toxic effect to non-target organisms and can have a negative impact on reproductive health in women, due to its long half-life and bioaccumulation ability. This study identifies the cytotoxicity and adverse effects of bromuconazole on trophoblastic cells (HTR-8/SVneo) and human endometrial cells (T HESCs), which are involved in implantation processes.
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