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21 pages, 2045 KB  
Article
Microbial-Assisted Phytoremediation of Glyphosate-Contaminated Soil by Medicago sativa: Biochemical and Detoxification Responses, Gene Expression, and Dissipation Kinetics
by Ahmed A. A. Aioub, Ahmed Fayez Omar, Ahmed S. Hashem, Hosny Kesba, Sherif El-Ganainy, Wael Elmenofy, Mohamed El-Mogy, Mostafa Almaghaslah, Mustafa Shukry, Zhang Lijun, Qichun Zhang and Sarah I. Z. Abdel Wahab
Toxics 2026, 14(7), 621; https://doi.org/10.3390/toxics14070621 - 16 Jul 2026
Viewed by 525
Abstract
Glyphosate (GLY), one of the most extensively applied broad-spectrum herbicides worldwide, frequently contaminates soil and aquatic ecosystems, posing serious threats to human health, non-target organisms, soil microbial communities, and environmental sustainability. In the present study, phytoremediation using Medicago sativa (MS) was evaluated for [...] Read more.
Glyphosate (GLY), one of the most extensively applied broad-spectrum herbicides worldwide, frequently contaminates soil and aquatic ecosystems, posing serious threats to human health, non-target organisms, soil microbial communities, and environmental sustainability. In the present study, phytoremediation using Medicago sativa (MS) was evaluated for the removal of GLY from contaminated soil under greenhouse conditions, with remediation efficiency enhanced through inoculation with two bacterial bioagents, Bacillus sp. h10 (BS) and Pseudomonas aeruginosa KZFS4 (PA). Biochemical parameters, including superoxide dismutase (SOD), catalase (CAT), hydrogen peroxide (H2O2), and malondialdehyde (MDA), together with detoxification-related gene expression, were investigated in the roots and leaves of MS exposed to GLY stress. The combined application of MS with BS + PA, followed by MS + PA and MS + BS, significantly decreased GLY residues in soil and increased GLY accumulation in plant roots and leaves after 1, 3, 7, and 10 days compared with MS treatment alone. In vitro batch equilibrium experiments demonstrated that BS and PA desorbed 33.63 and 40.56 µg g−1 of GLY, respectively, thereby enhancing its removal from soil. The persistence of GLY was highest in contaminated soil without treatment, exhibiting a half-life (t1/2) of 52.66 days, whereas the shortest half-life (6.69 days) was recorded in soil treated with MS combined with BS and PA relative to sterilized contaminated soil. Furthermore, inoculation with BS and PA markedly increased SOD and CAT activities in MS tissues, while significantly reducing H2O2 and MDA accumulation, indicating alleviation of oxidative stress. GLY exposure also triggered substantial upregulation of detoxification-associated genes, including cytochrome P450, glutathione S-transferases (GST), glycosyltransferases (GTs), and ABC transporters in MS. These findings demonstrate that the integration of BS and PA with phytoremediation effectively accelerates GLY dissipation and reduces pesticide-associated toxicity in contaminated soils and plants. Full article
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20 pages, 8428 KB  
Article
Field-Realistic Pendimethalin Exposure Induces Sublethal Alterations in the Gut and Malpighian Tubules of a Beneficial Ground Beetle
by Maria Luigia Vommaro, Piero Giulio Giulianini and Anita Giglio
Environments 2026, 13(7), 394; https://doi.org/10.3390/environments13070394 - 10 Jul 2026
Viewed by 510
Abstract
Herbicides are widely used in modern agriculture to control weeds and maintain crop productivity, but their persistence in soil raises concerns about unintended effects on non-target organisms. Pendimethalin, a dinitroaniline herbicide extensively applied to cereal and vegetable crops, is designed to target plant [...] Read more.
Herbicides are widely used in modern agriculture to control weeds and maintain crop productivity, but their persistence in soil raises concerns about unintended effects on non-target organisms. Pendimethalin, a dinitroaniline herbicide extensively applied to cereal and vegetable crops, is designed to target plant microtubules and is generally considered unlikely to pose genotoxic risks to animals. However, information on its sublethal effects on beneficial soil arthropods remains limited. In this study, we investigated the cytotoxic and histopathological effects of a commercial pendimethalin-based formulation on the ground beetle Pterostichus melas italicus, an ecologically relevant predatory species in agroecosystems. Adult males collected from an organic farm were exposed under laboratory conditions to soil treated at the recommended field dose and maintained for up to 7 days, corresponding to subchronic exposure. Individuals were sampled after 2 and 7 days, and the midgut and Malpighian tubules were analysed using histological and transmission electron microscopy. Exposure induced marked but non-lethal ultrastructural alterations, particularly in the Malpighian tubules, including reduction in the basal labyrinth, cytoplasmic vacuolisation, mitochondrial swelling, increased phagolysosome abundance, and nuclear karyorrhexis. These effects were transient under laboratory conditions and occurred without detectable impacts on survival, highlighting the Malpighian tubules as sensitive targets for the early detection of herbicide-induced physiological disturbances. However, the observed recovery may reflect compensatory physiological processes that could entail energetic costs and, under field conditions characterized by multiple concurrent stressors, potentially compromise physiological performance and predatory efficiency. Consequently, this study underscores the necessity of integrating sublethal ultrastructural biomarkers into environmental risk assessment frameworks for non-target beneficial insects. Full article
(This article belongs to the Section Environmental Pollution, Toxicology and Restoration)
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35 pages, 4848 KB  
Review
Mycotoxins as an Underestimated Honeybee Stressor: Aflatoxin, Contaminated Pollen, and Colony-Level Risk
by Zunair Ahsan, Mokhtar Rejili and Kang Wang
Biology 2026, 15(13), 1027; https://doi.org/10.3390/biology15131027 - 27 Jun 2026
Viewed by 332
Abstract
Pollinators play a critical role in agricultural productivity and the maintenance of flowering plant diversity, yet their health is increasingly threatened by multiple environmental stressors. While research has traditionally focused on pathogens, pesticides, habitat loss, and nutritional limitation, fungal secondary metabolites, mycotoxins, remain [...] Read more.
Pollinators play a critical role in agricultural productivity and the maintenance of flowering plant diversity, yet their health is increasingly threatened by multiple environmental stressors. While research has traditionally focused on pathogens, pesticides, habitat loss, and nutritional limitation, fungal secondary metabolites, mycotoxins, remain an underappreciated risk factor. This review synthesizes current knowledge on the presence, exposure pathways, and biological impacts of key mycotoxins, including aflatoxin B1, ochratoxin A, deoxynivalenol, zearalenone, and T-2 toxin, in bee-collected pollen and bee bread. We discuss how contaminated food matrices act as reservoirs of chronic exposure, linking forager activity, nurse bee physiology, brood development, and colony-level outcomes. Evidence from laboratory studies highlights sublethal effects on survival, hypopharyngeal gland development, immunity, and gut microbiota, with potential interactions with pathogens, nutritional stress, pesticides, and climate change. Furthermore, we extend these insights to wild pollinators, emphasizing differences in colony size, diet breadth, and detoxification capacity. Analytical methods for detecting mycotoxins, including HPLC, LC-MS/MS, and ELISA, are evaluated in terms of sensitivity, specificity, and relevance to field exposure. By integrating environmental concentrations with laboratory toxicity thresholds, this review identifies critical knowledge gaps and proposes a mechanistic framework linking mycotoxin exposure to colony-level risk. The findings underscore the need for targeted monitoring, improved risk assessment, and multi-stressor evaluation to safeguard both managed and wild pollinator populations. Full article
(This article belongs to the Section Evolutionary Biology)
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31 pages, 2301 KB  
Review
Molecular, Microbial, and Ecological Drivers of Duckweed Phytoremediation in Aquatic Environments
by Doni Thingujam, Antonino Malacrinò, Karolina M. Pajerowska-Mukhtar and M. Shahid Mukhtar
Biology 2026, 15(12), 963; https://doi.org/10.3390/biology15120963 - 19 Jun 2026
Viewed by 314
Abstract
Aquatic ecosystems are under severe stress from a diverse combination of contaminants, including heavy metals, pesticides, pharmaceuticals, and microplastics, driven by rapid industrialization, intensive agriculture, and urbanization. Globally, 80% of wastewater remains untreated, and conventional systems often fail to address emerging contaminants. Consequently, [...] Read more.
Aquatic ecosystems are under severe stress from a diverse combination of contaminants, including heavy metals, pesticides, pharmaceuticals, and microplastics, driven by rapid industrialization, intensive agriculture, and urbanization. Globally, 80% of wastewater remains untreated, and conventional systems often fail to address emerging contaminants. Consequently, toxic heavy metals like lead and mercury can persist in water sources for decades. In response, phytoremediation has emerged as a scalable, eco-friendly, nature-based alternative. Among phytoremediation agents, duckweeds are increasingly recognized for their rapid growth, simple morphology, and continuous water-column contact. This review outlines the landscape of duckweed-based remediation, detailing molecular detoxification pathways and the synergistic role of associated microbiomes in enhancing environmental cleanup. Evidence indicates that contaminant removal is often supported by plant-microbe interactions. Despite extensive laboratory validation, field-scale implementation remains constrained by environmental complexity, pollutant mixtures, and variable climatic conditions. Furthermore, while duckweed systems hold promise within circular bioeconomy frameworks, converting wastewater into nutrient-rich biomass, contaminant accumulation in plant tissues raises concerns about biomass utilization and contaminant carryover. Addressing these challenges requires an integrative approach that links molecular detoxification, ecological interactions, and engineered system design to realize the full potential of duckweeds for sustainable aquatic pollution management. Full article
(This article belongs to the Section Microbiology)
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68 pages, 16361 KB  
Review
Microplastics as Vectors Influencing Oxidative Stress, Inflammation, and Endocrine Function During Early Development
by Natalia Kurhaluk, Renata Kołodziejska, Anna Rymuszka, Rafał Bilski, Karolina Kaczorowska-Bilska, Vladimir Tomin, Piotr Kamiński and Halina Tkaczenko
Int. J. Mol. Sci. 2026, 27(12), 5452; https://doi.org/10.3390/ijms27125452 - 16 Jun 2026
Viewed by 632
Abstract
Microplastics and nanoplastics (MNPLs) are increasingly recognized as dynamic vectors capable of transporting a wide range of environmental contaminants, as well as acting as physical particulates. Their small size, high surface reactivity and strong sorption capacity allow them to carry metals, pesticides, pharmaceuticals [...] Read more.
Microplastics and nanoplastics (MNPLs) are increasingly recognized as dynamic vectors capable of transporting a wide range of environmental contaminants, as well as acting as physical particulates. Their small size, high surface reactivity and strong sorption capacity allow them to carry metals, pesticides, pharmaceuticals and endocrine-active compounds into biological systems. This narrative review examines how these particle-contaminant complexes influence oxidative stress, inflammatory signaling and endocrine function during early development. Relevant literature was identified through structured searches of PubMed, Scopus, Web of Science and Google Scholar, with a focus on the physicochemical properties of plastics, sorption mechanisms, gut barrier physiology and developmental toxicology. Early developmental stages are particularly sensitive, as immature mucus layers, permeable epithelial junctions and underdeveloped detoxification pathways facilitate the uptake and systemic distribution of MNPLs. Once internalized, these particles and their chemical cargo promote the generation of reactive oxygen species through redox-active contaminants, surface-catalysed reactions and mitochondrial dysfunction. The resulting oxidative imbalance activates stress-responsive pathways, including Nrf2–Keap1 signaling, and promotes lipid peroxidation, DNA damage and cellular dysfunction. MNPLs also stimulate inflammatory cascades by activating pattern-recognition receptors, altering cytokine profiles and disrupting epithelial homeostasis. These responses are intensified in the presence of sorbed pollutants, leading to sustained inflammatory states that can be particularly detrimental during organogenesis and immune maturation. Endocrine function is likewise affected, as MNPLs transport hormonally active chemicals and can interfere with hormone-responsive pathways through oxidative and inflammatory mechanisms. These interactions may disrupt thyroid signaling, metabolic regulation and the development of the reproductive axis, with potential long-term physiological consequences. Integrating evidence from polymer chemistry, contaminant behavior and developmental physiology, this review shows that MNPLs act as biologically active vectors that may increase oxidative, inflammatory and endocrine disturbances during early development. These findings highlight the importance of considering particle–contaminant interactions as a critical component of early-life risk assessment. Full article
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20 pages, 2616 KB  
Article
Transcriptomic Insights into the Synergistic Mechanism of Spinosad–Indoxacarb Mixtures Against Cnaphalocrocis medinalis
by Hong-Shuang Li, Meng-Zhen Wang, Ji-Yang Xing, Cong-Fen Gao and Shun-Fan Wu
Insects 2026, 17(6), 598; https://doi.org/10.3390/insects17060598 - 7 Jun 2026
Viewed by 402
Abstract
The rice leaffolder, Cnaphalocrocis medinalis, has developed widespread resistance to conventional insecticides, severely threatening rice production. Pesticide combination is a critical strategy for enhancing efficacy and delaying resistance evolution. In this study, binary mixtures with distinct modes of action were screened against [...] Read more.
The rice leaffolder, Cnaphalocrocis medinalis, has developed widespread resistance to conventional insecticides, severely threatening rice production. Pesticide combination is a critical strategy for enhancing efficacy and delaying resistance evolution. In this study, binary mixtures with distinct modes of action were screened against C. medinalis neonates. Bioassays indicated that mixtures of spinosad and indoxacarb exhibited significant synergism, while several other combinations showed antagonism. To elucidate the synergistic mechanism of the optimal 1:1 mixture, comparative transcriptomic analyses were performed. Results revealed a time-dependent dual-phase response. At 6 h, the mixture induced broader upregulation of detoxification genes and activated stress signaling pathways due to competitive enzyme saturation, impairing metabolic clearance and amplifying neurotoxicity. At 24 h, massive transcriptional reprogramming uniquely activated lysosome, autophagy, lipid metabolism, and neurodegenerative disease pathways. This study demonstrates that the synergism arises from early competitive inhibition of detoxification and late overactivation of the autophagy–lysosomal system associated with cellular damage. These findings provide transcriptomic evidence for the dynamic synergistic mechanism and offer a scientific basis for rational resistance management of C. medinalis. Full article
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24 pages, 12362 KB  
Review
Soil Biofilms in Pollutant Dynamics and Detoxification
by Mohd Faheem Khan
Processes 2026, 14(11), 1776; https://doi.org/10.3390/pr14111776 - 29 May 2026
Cited by 1 | Viewed by 526
Abstract
Soil biofilms are structured, dynamic microbial consortia embedded within extracellular polymeric substances that regulate microscale physicochemical heterogeneity and drive biogeochemical transformations in soils. Despite increasing interest in biofilm-mediated remediation, current reviews have largely examined microbial ecology, engineered biofilm functions, and predictive modelling independently, [...] Read more.
Soil biofilms are structured, dynamic microbial consortia embedded within extracellular polymeric substances that regulate microscale physicochemical heterogeneity and drive biogeochemical transformations in soils. Despite increasing interest in biofilm-mediated remediation, current reviews have largely examined microbial ecology, engineered biofilm functions, and predictive modelling independently, limiting systems-level understanding of pollutant fate in complex soils. This review, therefore, proposes a revised conceptual framework integrating biofilm ecology, synthetic biology, and AI-driven predictive modelling to improve mechanistic and predictive understanding of emerging pollutant detoxification. Emerging pollutants, including pharmaceuticals, pesticides, per- and polyfluoroalkyl substances, micro- and nanoplastics, and heavy metals, exhibit persistence, bioaccumulation, and mixture-dependent effects that challenge conventional remediation strategies. Biofilm matrices function as reactive interfaces facilitating adsorption, sequestration, and enzymatic transformation, while steep redox and nutrient gradients support metabolically diverse processes such as cometabolism, syntrophic degradation, and biomineralisation. Increasing evidence indicates that quorum sensing, horizontal gene transfer, and low-abundance microbial taxa contribute significantly to adaptive responses and functional plasticity within biofilms. Advances in high-resolution imaging, spatial multi-omics, and microfluidic platforms have resolved previously inaccessible biofilm architectures and processes; however, integration with machine learning and process-based modelling remains limited, restricting field-scale prediction of pollutant behaviour and remediation outcomes. Synthetic biology enables targeted optimisation of biofilm functions, whereas AI-driven models enhance prediction of contaminant transport, transformation, and detoxification. Soil biofilms function both as sinks and catalytic hotspots, and resolving this duality through a predictive, systems-level framework represents a major advance beyond existing descriptive reviews. Full article
(This article belongs to the Section Biological Processes and Systems)
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31 pages, 3363 KB  
Review
Genetic and Molecular Mechanisms of Detoxification and Immunity in Honeybees (Apis mellifera)
by Zunair Ahsan, Faouzi Haouala, Usama Abdullah, Umar Sajid Kayani and Mokhtar Rejili
Insects 2026, 17(6), 559; https://doi.org/10.3390/insects17060559 - 28 May 2026
Viewed by 642
Abstract
Honeybee (Apis mellifera) health is governed by the integrated action of detoxification, immunity, and microbiota within complex environmental contexts. The coordinated detoxification system (DETOXome), primarily active in the midgut, fat body, and Malpighian tubules, includes cytochrome P450s, glutathione S transferases, carboxylesterases, [...] Read more.
Honeybee (Apis mellifera) health is governed by the integrated action of detoxification, immunity, and microbiota within complex environmental contexts. The coordinated detoxification system (DETOXome), primarily active in the midgut, fat body, and Malpighian tubules, includes cytochrome P450s, glutathione S transferases, carboxylesterases, and ABC transporters, and functions in concert with innate immune pathways such as Toll, Imd, Jak/STAT, JNK, antimicrobial peptides, and RNA interference. Cellular maintenance mechanisms, including heat shock proteins, proteostasis, and antioxidant defenses, support these systems under chemical, thermal, and pathogen-induced stress. Multi-stressor exposures encompassing pesticides, pathogens, nutritional limitations, and climate variations interact to affect physiological resilience, behavior, and colony function. This review synthesizes molecular, organ-specific, and colony-level evidence to provide a mechanistic framework connecting environmental stressors to detoxification and immune responses. Predictive markers derived from transcriptomic, proteomic, and microbiome analyses offer early detection of sublethal stress, while genomic and selective breeding strategies hold the potential to enhance honeybee resilience. By integrating stress pathways across biological scales, this review advances a unified model of honeybee health that moves beyond descriptive lists to highlight cross-system interactions driving colony survival. Full article
(This article belongs to the Special Issue Bees: Physiology, Immunity and Developmental Biology)
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27 pages, 1506 KB  
Review
Micro- and Nanoplastics as Drivers and Modulators of Hepatotoxicity in Zebrafish (Danio rerio): Interactions with Environmental Co-Contaminants and Molecular Mechanisms
by Alexandra Szilagyi, Alexandra Jităreanu, Alina Iliuța Olărița and Carmen Solcan
Toxics 2026, 14(6), 475; https://doi.org/10.3390/toxics14060475 - 28 May 2026
Viewed by 771
Abstract
Micro- and nanoplastics (MNPs) have emerged as pervasive contaminants in aquatic ecosystems, raising concerns regarding their biological impacts on aquatic organisms. The liver plays a central role in metabolism, detoxification, and immune regulation, making it particularly vulnerable to MNP-induced toxicity. Importantly, MNPs also [...] Read more.
Micro- and nanoplastics (MNPs) have emerged as pervasive contaminants in aquatic ecosystems, raising concerns regarding their biological impacts on aquatic organisms. The liver plays a central role in metabolism, detoxification, and immune regulation, making it particularly vulnerable to MNP-induced toxicity. Importantly, MNPs also function as vectors and modulators of co-occurring environmental contaminants, including heavy metals, pesticides, antibiotics, PFASs, algal toxins, and polycyclic aromatic hydrocarbons (PAHs), thereby influencing contaminant bioavailability and hepatic toxicity. This narrative review synthesizes current evidence on hepatic alterations induced by micro- and nanoplastic exposure in zebrafish (Danio rerio), with emphasis on histopathological changes and underlying mechanisms. Relevant peer-reviewed studies were identified through systematic searches of Web of Science, Scopus, PubMed, and ScienceDirect, covering the period 2013–2026, and screened according to predefined inclusion criteria focusing on hepatic endpoints in zebrafish exposed to micro- and nanoplastics. Across the available literature, MNPs consistently accumulate in hepatic tissue and induce structural alterations, including hepatocellular vacuolization, steatosis, inflammatory infiltration, and necrosis. Mechanistically, these pathological changes are closely linked to oxidative stress, impairment of antioxidant defense systems, reprogramming of lipid and glucose metabolism, and activation of inflammatory and regulated cell death signaling pathways. In addition, interactions with co-occurring environmental contaminants—such as heavy metals, pesticides, antibiotics, and algal toxins—frequently exacerbate hepatic injury through synergistic toxicological mechanisms. Disruption of the gut–liver axis and intestinal microbiota has also emerged as an important contributor to systemic metabolic and inflammatory responses. Overall, zebrafish studies demonstrate that the liver represents a critical target organ for MNP toxicity. Future research should prioritize environmentally realistic exposure scenarios, standardized particle characterization, and integrated multi-omics approaches to improve ecological and human health risk assessment. Full article
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13 pages, 1274 KB  
Article
Contrasting Toxicity Classes Differentially Affect Gut Microbiota Composition in Honey Bees
by Yunchao Kan, Ruoke Wang, Bing Zhang, Yu Liu, Runqiang Liu, Zhongyin Zhang, Zhaonan Zhang, Camilo Ayra-Pardo and Dandan Li
Insects 2026, 17(4), 437; https://doi.org/10.3390/insects17040437 - 20 Apr 2026
Viewed by 965
Abstract
Honey bees rely on a specialized gut microbiota for nutrition, detoxification, and immune function, yet the effects of emerging insecticides on this symbiotic system remain poorly understood. We compared the acute toxicity and short-term gut microbiota responses of Apis mellifera ligustica workers exposed [...] Read more.
Honey bees rely on a specialized gut microbiota for nutrition, detoxification, and immune function, yet the effects of emerging insecticides on this symbiotic system remain poorly understood. We compared the acute toxicity and short-term gut microbiota responses of Apis mellifera ligustica workers exposed to two insecticides with contrasting toxicity classes: the highly toxic emamectin benzoate-lufenuron (EB-LFR) and the low-toxicity ecdysone agonist RH-5849. EB-LFR was associated with observed reductions in core gut symbionts (Gilliamella, Snodgrassella, Lactobacillus), a transient increase in Bifidobacterium, and the detection of opportunistic taxa such as Serratia marcescens and Enterobacter hormaechei. In contrast, RH-5849 was associated with broad reductions in beneficial bacteria without detectable pathogen emergence, suggesting a more moderate alteration of microbiota composition. Because microbiota analyses were based on single pooled samples per treatment, these results represent exploratory, qualitative insights into early microbial responses. Together with acute toxicity data, the findings suggest that insecticides with contrasting toxicity classes may differentially affect gut microbiota composition in honey bees and highlight the value of incorporating gut microbiota endpoints into pesticide risk-assessment frameworks to better anticipate sublethal effects on pollinator health. Full article
(This article belongs to the Section Social Insects and Apiculture)
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15 pages, 5227 KB  
Article
Atmospheric Cold Plasma Degradation of Fenvalerate Residues on Shiitake Mushrooms: Mechanisms, Toxicity Evolution, and Quality Effects
by Hu Shi, Ziwen Cheng, Shiwei Dong, Yang Jiao and Hongru Liu
Foods 2026, 15(7), 1229; https://doi.org/10.3390/foods15071229 - 3 Apr 2026
Cited by 1 | Viewed by 520
Abstract
Fenvalerate residues on edible mushrooms pose significant risks to food safety and aquatic ecosystems. This study investigated the efficiency, degradation mechanisms, toxicity evolution, and quality effects of atmospheric cold plasma (ACP) for removing fenvalerate from shiitake mushrooms. Fenvalerate degradation increased with ACP treatment [...] Read more.
Fenvalerate residues on edible mushrooms pose significant risks to food safety and aquatic ecosystems. This study investigated the efficiency, degradation mechanisms, toxicity evolution, and quality effects of atmospheric cold plasma (ACP) for removing fenvalerate from shiitake mushrooms. Fenvalerate degradation increased with ACP treatment voltage and exposure time, reaching a maximum efficiency of 82.5% at 80 kV for 15 min. Quantum chemical calculations based on Fukui functions and frontier molecular orbitals identified phenoxy and chlorophenyl moieties as primary reactive sites. High-performance liquid chromatography–tandem mass spectrometry revealed degradation pathways dominated by hydroxylation, ester bond cleavage, and oxidative transformations. Toxicity assessment using ECOSAR predictions and yeast bioassays demonstrated substantial reductions in acute and chronic toxicity by ACP treatment, although some intermediates retained residual toxicity. In addition, ACP preserved mushroom quality during refrigerated storage. Overall, ACP represents a promising non-thermal strategy for pesticide detoxification while preserving edible mushroom quality. Full article
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16 pages, 4289 KB  
Article
Dietary p-Coumaric Acid Modulates Non-Core Gut Microbiota and Sucrose Solution Consumption in Apis cerana
by Haodong Wu, Conghui Ji, Kun Dong, Ruisheng Wang, Lijiao Gao, Wenhua Luo and Jialin Liu
Insects 2026, 17(4), 371; https://doi.org/10.3390/insects17040371 - 1 Apr 2026
Viewed by 771
Abstract
As the predominant native pollinator across Asia, Apis cerana is essential for the maintenance of biodiversity and agricultural productivity. The gut microbiota of honeybees plays a central role in host nutrition, detoxification, and immune function. p-Coumaric acid, a widespread phenolic acid enriched [...] Read more.
As the predominant native pollinator across Asia, Apis cerana is essential for the maintenance of biodiversity and agricultural productivity. The gut microbiota of honeybees plays a central role in host nutrition, detoxification, and immune function. p-Coumaric acid, a widespread phenolic acid enriched in pollen and nectar, has been reported to promote honeybee health by prolonging lifespan and increasing the expression of detoxification-related genes, hence improving tolerance to pesticides. Its influence on gut microbial communities, however, remains insufficiently characterized in A. cerana. This study evaluated the effects of dietary p-coumaric acid on survival, sucrose solution consumption, and gut microbiome composition in A. cerana workers using absolute quantification sequencing. Bees were provided sucrose solutions containing p-coumaric acid at concentrations of 41.0, 82.0, and 164.0 mg/L for durations of 5 and 10 days. The results indicated no effect on survival but revealed time-dependent changes in sucrose solution consumption. p-Coumaric acid exposure altered the abundance of non-core bacterial taxa, including Bombella and Apilactobacillus, whereas the core gut microbiota (Lactobacillus, Gilliamella, Snodgrassella, Apibacter, and Bifidobacterium) remained stable. These results suggest that p-coumaric acid modulates sucrose solution consumption and selectively influences non-core gut bacteria without disrupting survival or core microbiota stability, underscoring its role in regulating host–microbe interactions in honeybees. Full article
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26 pages, 2294 KB  
Review
How Environmental and Ecological Stressors Reprogram Honey Bee Chemistry Through the Microbiome–Metabolome Axis
by Yahya Al Naggar, Hamed A. Ghramh, Amira Elfarnawany and Amr Mohamed
Insects 2026, 17(3), 336; https://doi.org/10.3390/insects17030336 - 19 Mar 2026
Cited by 2 | Viewed by 1688
Abstract
Honey bees are exposed to a wide range of environmental and ecological stressors that threaten individual health and colony sustainability. Growing evidence suggests that many of these stressors converge on a common target: the gut microbiome and its metabolic functions. The honey bee [...] Read more.
Honey bees are exposed to a wide range of environmental and ecological stressors that threaten individual health and colony sustainability. Growing evidence suggests that many of these stressors converge on a common target: the gut microbiome and its metabolic functions. The honey bee microbiome–metabolome axis represents a central regulatory system linking microbial symbionts with host nutrition, detoxification, immune competence, neural signaling, and social behavior. This review synthesizes current knowledge on how major stressors—including pesticides, antibiotics, pathogens, nutritional imbalance, thermal stress, habitat change, and environmental contaminants—reprogram honey bee chemistry by disrupting microbial community structure and, importantly, microbial and host metabolic pathways. We highlight recurring patterns consistent with functional dysbiosis, characterized by impaired energy metabolism, reduced production of short-chain fatty acids, altered amino acid and lipid metabolism, compromised antioxidant and detoxification capacity, and weakened immune regulation. However, much of the current evidence is correlative and derived from short-term or laboratory-focused studies; longitudinal and multi-site field validation of causal links remains limited. Importantly, emerging multi-omics studies suggest that profound metabolic disturbances can occur even when taxonomic changes in the microbiome are modest, emphasizing the need to move beyond descriptive community profiling toward functional and mechanistic assessments. We further discuss how stress-induced metabolic reprogramming at the individual level scales up to influence behavior, division of labor, and colony-level resilience. Finally, we propose a conceptual model illustrating how diverse stressors converge to disrupt the microbiome–metabolome axis, potentially leading to functional dysbiosis and host impairment. Full article
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38 pages, 3421 KB  
Review
Pesticides Drive Liver Diseases Through Non-Apoptotic Regulated Cell Death Pathways
by Zamza Khairullina, Saulesh Kurmangaliyeva, Rustam Yussupov, Elmira Kelimberdiyeva, Liliya Tryfonyuk, Nasriddin Shapambayev, Aizat Seidakhmetova, Talgat Medetbekov and Anton Tkachenko
Diseases 2026, 14(3), 96; https://doi.org/10.3390/diseases14030096 - 5 Mar 2026
Cited by 1 | Viewed by 2045
Abstract
A compelling body of evidence links pesticide exposure to human diseases. The liver plays a central role in the detoxification of pesticides, suggesting intense pesticide–liver cell interactions. A growing body of studies highlighted in this review supports the contribution of pesticides of various [...] Read more.
A compelling body of evidence links pesticide exposure to human diseases. The liver plays a central role in the detoxification of pesticides, suggesting intense pesticide–liver cell interactions. A growing body of studies highlighted in this review supports the contribution of pesticides of various chemical classes to the development of non-alcoholic fatty liver disease (NAFLD), alcohol-associated liver disease (ALD), liver cirrhosis, viral hepatitis, hepatocellular carcinoma, etc., via disrupting lipid and carbohydrate metabolism and redox homeostasis, promoting endoplasmic reticulum stress and mitochondrial dysfunction, as well as stimulating apoptosis, fibrosis, and inflammation. In this review, we systematically illustrated an underappreciated mechanism of pesticide-induced overall and hepatic toxicity, i.e., the ability to induce non-apoptotic regulated cell death (RCD) pathways such as ferroptosis, necroptosis, and pyroptosis. Our analysis indicates that pesticides are implicated in driving liver diseases by inducing ferroptosis, necroptosis, and pyroptosis. Non-apoptotic RCDs mediate pesticide-induced liver steatosis and fibrosis. Furthermore, these cell death modalities fuel inflammation through the promotion of pro-inflammatory cytokine production and the generation of damage-associated molecular patterns. Understanding of deeper mechanisms of pesticide-induced effects on the non-apoptotic cell death machinery and subsequent immunogenic effects in liver pathology might help develop novel preventive strategies to reduce liver damage. Full article
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24 pages, 2531 KB  
Review
Deciphering Pesticide Stress Responses in Rice Through Integrated Multi-Omic Assessment
by Azam Safarnejad, Joaquim Jaumot and Stefan Platikanov
Toxics 2026, 14(3), 210; https://doi.org/10.3390/toxics14030210 - 28 Feb 2026
Viewed by 1447
Abstract
Pesticides are widely used in rice cultivation for pest control to guarantee crop productivity. Intensive use of these chemicals causes harmful effects on rice plants, such as physiological and biochemical stress responses. Such stress is often expressed as oxidative damage, disruption of metabolic [...] Read more.
Pesticides are widely used in rice cultivation for pest control to guarantee crop productivity. Intensive use of these chemicals causes harmful effects on rice plants, such as physiological and biochemical stress responses. Such stress is often expressed as oxidative damage, disruption of metabolic balance, and a reduction in plant resilience to environmental challenges. In recent years, omic technologies (such as transcriptomics, epigenomics, proteomics, and metabolomics) have contributed to identifying molecular pathways affected by pesticide exposure. However, no comprehensive synthesis of rice-specific omic evidence currently exists, limiting translational applications. These omic studies revealed activation of detoxification-related enzymes and transporters, alongside changes in antioxidant defenses, hormone-mediated signaling, and membrane remodeling. This review presents current omic-based approaches used to investigate pesticide-induced stress in rice. It focuses on molecular responses including changes in gene expression, enzymatic detoxification, metabolic reprogramming, and stress signaling pathways. The review also highlights how multi-omic integration can contribute to a more holistic understanding of these stress responses, combining cross-layer evidence that connects gene regulation, protein activity, and metabolic remodeling. Despite these advancements, there are still challenges, particularly in the interpretation of complex datasets, the integration of multiple omic layers and the translation of results to real agricultural conditions. Finally, the review also discusses biotechnological approaches that may improve rice tolerance to pesticide exposure. In summary, the role of omic approaches to elucidate pesticide toxicity in rice and to contribute to more resilient crop production systems is critically reviewed. Full article
(This article belongs to the Section Agrochemicals and Food Toxicology)
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