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19 pages, 1382 KB  
Article
Trait Shifts and Vertical Redistribution Enable Nematode-Trapping Fungi to Adapt to Fire Disturbance
by Rong She, Xin Zhang, Cai-Lian Yuan, Yu Sun, Xiao-Yan Yang and Wen Xiao
J. Fungi 2026, 12(8), 611; https://doi.org/10.3390/jof12080611 - 14 Aug 2026
Viewed by 283
Abstract
Fire rapidly reshapes soil environments, yet direct experimental evidence of how soil microorganisms respond through both functional trait adjustment and spatial redistribution remains limited. Here, we used nematode-trapping fungi (NTF) as a model system to test whether their response to fire is mediated [...] Read more.
Fire rapidly reshapes soil environments, yet direct experimental evidence of how soil microorganisms respond through both functional trait adjustment and spatial redistribution remains limited. Here, we used nematode-trapping fungi (NTF) as a model system to test whether their response to fire is mediated by coordinated changes in functional traits and vertical redistribution. We first compared strains isolated from naturally burned habitats with those from adjacent unburned habitats and identified consistent trait shifts; we then tracked NTF dynamics in artificial soil profiles exposed to simulated fire. Strains from burned habitats produced 53–1114% more trapping structures and exhibited bait-based predation efficiencies 9–41% higher than those from unburned habitats. Conidia of fire-adapted strains were smaller, with reductions in length and width of 0.3–8.0 µm and 0.1–3.4 µm, respectively. Hyphal growth rates increased significantly in Dactylellina and Drechslerella but declined overall in Arthrobotrys. In the soil-profile microcosm experiment, simulated fire completely eliminated Arthrobotrys from the topsoil (0–5 cm), whereas Dactylellina and Drechslerella from deeper layers (10–20 cm) were subsequently detected in upper layers, indicating upward redistribution and recolonization within 7–56 days. Together, these results reveal two complementary mechanisms underlying NTF adaptation to fire: individual-level trait shifts, which likely reflect the reallocation of resources from reproductive structures to predatory traps and hyphal expansion, and community-scale vertical redistribution, which enables recolonization via deep-soil source populations. Our work provides experimental evidence that soil microorganisms cope with abrupt fire disturbance through coordinated trait shifts and vertical spatial redistribution, offering mechanistic insights that may support trait-oriented restoration management of post-fire soil ecosystems. Full article
(This article belongs to the Section Environmental and Ecological Interactions of Fungi)
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21 pages, 5137 KB  
Article
E3 Ubiquitin Ligase Rsp5 Controls Lifestyle Transition and Pathogenicity in Arthrobotrys oligospora
by Xiqi Zhang, Hailong Pu, Runliu He, Yonglan Liu, Na Sha and Xin Wang
J. Fungi 2026, 12(8), 597; https://doi.org/10.3390/jof12080597 - 11 Aug 2026
Viewed by 293
Abstract
Fungi have evolved sophisticated mechanisms to survive in complex environments. Nematode-trapping fungi (NTF) sense and recognize nematode prey to transition from a saprophytic to predatory lifestyle, rendering them promising biocontrol agents against plant-parasitic nematodes. Ubiquitination is essential for eukaryotic cellular homeostasis, yet its [...] Read more.
Fungi have evolved sophisticated mechanisms to survive in complex environments. Nematode-trapping fungi (NTF) sense and recognize nematode prey to transition from a saprophytic to predatory lifestyle, rendering them promising biocontrol agents against plant-parasitic nematodes. Ubiquitination is essential for eukaryotic cellular homeostasis, yet its regulation of NTF development and pathogenicity remains unclear. Here, we identify the conserved E3 ubiquitin ligase AoRsp5 as a critical factor for all major life stages of Arthrobotrys oligospora. Knockout of rsp5 impairs Endosomal Sorting Complex Required for Transport (ESCRT)-mediated endocytosis and compromises plasma membrane integrity. These defects trigger disturbed cellular iron homeostasis and ferroptosis-like cell death, accompanied by global dysregulation of protein phosphorylation and ubiquitination as well as prominent suppression of MAPK cascades, which further attenuate virulence-associated signaling. Overall, our findings reveal a pivotal role for Rsp5-mediated ubiquitination in coordinating cellular homeostasis and developmental transitions in NTF. Full article
(This article belongs to the Section Fungal Cell Biology, Metabolism and Physiology)
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9 pages, 4768 KB  
Communication
Viability and Predatory Capacity of Duddingtonia flagrans After Fourteen Years of Storage in Alginate Pellets
by Vinicius Bastos Salles Segantine, Carolina Magri Ferraz, Juliany Veloso Leal, Jacson Antonio Gil Fagundes, Filippe Elias de Freitas Soares, Jackson Victor de Araújo, Helio Langoni and Fabio Ribeiro Braga
Parasitologia 2026, 6(4), 44; https://doi.org/10.3390/parasitologia6040044 - 6 Aug 2026
Viewed by 181
Abstract
Nematophagous fungi are important biological control agents that naturally reduce nematode populations through specialized predatory mechanisms. This study evaluated the viability and predatory capacity of the nematophagous fungus Duddingtonia flagrans (AC001) after fourteen years of refrigerated storage in sodium alginate pellets. Fungal viability [...] Read more.
Nematophagous fungi are important biological control agents that naturally reduce nematode populations through specialized predatory mechanisms. This study evaluated the viability and predatory capacity of the nematophagous fungus Duddingtonia flagrans (AC001) after fourteen years of refrigerated storage in sodium alginate pellets. Fungal viability was assessed by reactivating the pellets on Corn Meal Agar and Potato Dextrose Agar, with subsequent monitoring of mycelial growth and morphological confirmation by light microscopy. The predatory capacity was determined by means of in vitro assays using Panagrellus redivivus as a model organism. Plates previously colonized by the fungus received approximately 400 nematodes and were compared with fungus-free controls. Predatory activity was evaluated daily for five days by counting live nematodes in random microscopic fields. Final recovery of viable nematodes was performed using a modified Baermann technique. The data were analyzed using Student’s t-test (p < 0.05). Isolate AC001 exhibited successful reactivation, preserved morphological characteristics, and sustained high predatory activity, resulting in reductions in nematode populations ranging from 91% on the first day to 95% on subsequent days, with a final reduction of 67% in nematode recovery. These findings demonstrate that sodium alginate encapsulation combined with refrigeration enables the exceptionally long-term preservation of functional and predatory attributes of nematophagous fungi, supporting its applicability in biological control strategies. Full article
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21 pages, 35267 KB  
Article
Arthrobotrys thaumasia and A. musiformis (Fungi: Orbiliales) as Natural Potential Enemies of Haemonchus contortus (Nematoda: Trichostrongylidae)
by Mariana Cervantes-Martínez, Rosa Isabel Higuera-Piedrahita, Héctor Alejandro de la Crúz-Crúz, Gustavo Pérez-Anzúrez, María Eugenia López-Arellano, Agustín Olmedo-Juárez, Edgar Jesús Delgado-Núñez, Ana Yuridia Ocampo-Gutiérrez and Pedro Mendoza-de Gives
Pathogens 2026, 15(8), 784; https://doi.org/10.3390/pathogens15080784 - 23 Jul 2026
Viewed by 380
Abstract
Haemonchus contortus (Hc) is a parasitic nematode affecting sheep. Arthrobotrys is a group of nematophagous fungi (NF) that capture nematodes with specialized traps. This study evaluated the in vitro predatory ability of Arthrobotrys thaumasia (At) and A. musiformis ( [...] Read more.
Haemonchus contortus (Hc) is a parasitic nematode affecting sheep. Arthrobotrys is a group of nematophagous fungi (NF) that capture nematodes with specialized traps. This study evaluated the in vitro predatory ability of Arthrobotrys thaumasia (At) and A. musiformis (Am), as well as the nematocidal activity of their liquid culture filtrates against Hc. NF isolates were obtained by sprinkling soil onto agar plates containing nematodes. Isolates were identified morphologically and molecularly. The predatory activity (PA) was tested on agar plates inoculated with nematodes and fungi; plates inoculated only with nematodes served as controls. After 10 days at 18 °C and 28 °C, larvae were counted. For nematocidal activity (NA) of LCFs, fungi were grown in Czapek–Dox (CzDB) and potato dextrose broths. Two concentrations (100 mg/mL and 130 mg/mL) were tested. Nematodes and LCFs were incubated for 48 or 72 h. PA was analyzed using unpaired Student’s t-tests, and LCFs were evaluated by ANOVA with Tukey’s post hoc test. Taxonomic procedures confirmed the isolates as Am and At. For PA, effectiveness was 74.64% for Am and 83.53% for At. The highest NA of LCF of Am in CzDB was 51% at 100 mg/mL and 76.7% at 130 mg/mL. That of the LCF of At was 22% at the highest concentration. Both isolates show strong potential as biocontrol agents against haemonchosis. Full article
(This article belongs to the Section Parasitic Pathogens)
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11 pages, 2459 KB  
Article
Non-Target Effects of Trichoderma Spore Suspensions and Secondary Metabolites on Phytoseiid Predatory Mites
by Cihan Aslı, Yunus Korkom, Daniel Carrillo and Ibrahim Cakmak
J. Fungi 2026, 12(6), 382; https://doi.org/10.3390/jof12060382 - 23 May 2026
Viewed by 563
Abstract
Fungi of the genus Trichoderma have attracted attention because of their potential activity against phytophagous mites; however, information regarding their non-target effects on predatory mites remains limited. This study evaluated the effects of spore suspensions and secondary metabolites of Trichoderma afroharzianum Tr132 and [...] Read more.
Fungi of the genus Trichoderma have attracted attention because of their potential activity against phytophagous mites; however, information regarding their non-target effects on predatory mites remains limited. This study evaluated the effects of spore suspensions and secondary metabolites of Trichoderma afroharzianum Tr132 and Trichoderma virens Tvr2 on three predatory mite species widely used in biological control programs: Phytoseiulus persimilis, Neoseiulus californicus, and Amblyseius swirskii. Predator egg hatchability and adult mortality were assessed under laboratory conditions. Spore suspension treatments did not significantly affect egg hatchability, which remained high (97–99%) across all predator species. In contrast, secondary metabolites slightly reduced egg hatchability to 94–96%, compared with 99.5% in the control. Exposure to spore suspensions caused moderate mortality in adult predatory mites, increasing from 10 to 13% at 3 days post-application (dpa) to 15–19% at 6 dpa. Secondary metabolites produced higher mortality that increased over time, reaching 9–11% at 1 dpa, 17–18% at 3 dpa, and up to 22–25% at 6 dpa. Mortality responses were similar among predator species. Overall, Trichoderma applications had minimal effects on predator egg hatchability but caused moderate mortality in adult predatory mites, particularly following exposure to secondary metabolites. These findings highlight the importance of evaluating the compatibility of Trichoderma-based products with beneficial predatory mites before their integration into IPM programs. Full article
(This article belongs to the Section Fungi in Agriculture and Biotechnology)
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14 pages, 3424 KB  
Article
Nutritional Stress and Prey Signals Trigger a Metabolic Shift in Arthrobotrys spp.: Aomae1 Expression Suggests a Role in the Switch Between Saprophytic and Parasitic Lifestyles
by María José Hernández-Vega, Pedro Mendoza-de Gives, David Emanuel Reyes-Guerrero, Gustavo Pérez-Anzúrez, Génesis Andrea Bautista-García, Edgar Jesús Delgado-Núñez, Agustín Olmedo-Juárez, Ana Yuridia Ocampo-Gutiérrez, María Eugenia López-Arellano and Elke von Son-de Fernex
Pathogens 2026, 15(5), 519; https://doi.org/10.3390/pathogens15050519 - 12 May 2026
Viewed by 451
Abstract
Nematode-trapping fungi are saprophytic organisms that can transform their mycelium into a parasitic lifestyle, forming traps to capture and feed on nematodes. Although this transition is triggered by environmental conditions, the genetic regulation of this metabolic shift remains unclear. This study assessed the [...] Read more.
Nematode-trapping fungi are saprophytic organisms that can transform their mycelium into a parasitic lifestyle, forming traps to capture and feed on nematodes. Although this transition is triggered by environmental conditions, the genetic regulation of this metabolic shift remains unclear. This study assessed the effects of nutritional stress on mycochemical synthesis, trap morphogenesis, and Aomae1 gene expression in Arthrobotrys oligospora and Arthrobotrys musiformis. Fungal biomass was subjected to the following three-stage successive culture model: (i) nutrient-rich (Czapek–Dox broth), (ii) nutritional stress (water), and (iii) media enriched with live prey (Haemonchus contortus Hc-L3). Samples were taken for molecular analysis, and liquid culture filtrates (LCFs) were recovered for chromatographic identification of mycochemical groups. To assess trap formation (traps/cm2), mycelia from each culture model was transferred to water agar plates and defied with Hc-L3. Results showed a significant bioenergetic trade-off. Both starvation and larval presence induced a downregulation of mycochemical synthesis, which resulted in the total loss of nematocidal activity in LCfs, while triggering a morphogenetic response. Arthrobotrys musiformis showed the most aggressive phenotype with 3.8-fold increase in trap formation and a massive 429.05-fold overexpression of Aomae1 under predatory challenge. While A. oligospora showed a similar but less pronounced trend (2.4-fold increase in trap formation and 44.48-fold Aomae1 overexpression), our findings suggest that Aomae1 expression plays a critical role in the metabolic switch that regulates and redirects energy resources, prioritizing mechanical trapping mechanisms over secondary metabolism during nutrient scarcity. These findings highlight Aomae1 as a possible key activator for virulence, which offers strategic targets for the optimization of biocontrol agents against gastrointestinal nematodes in livestock. Full article
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17 pages, 3973 KB  
Review
Formulation Strategies for Fungal Biocontrol of Gastrointestinal Helminths in Domestic Animals and Plant-Parasitic Nematodes: A Review
by Júlia dos Santos Fonseca, Tábata Alves do Carmo, Bianca de Oliveira Botelho Vital, Thalita Suelen Avelar Monteiro, Huarlen Marcio Balbino, Huarrisson Azevedo Santos, Vagner Tebaldi de Queiroz, Fabio Ribeiro Braga and Jackson Victor de Araújo
Pathogens 2026, 15(5), 488; https://doi.org/10.3390/pathogens15050488 - 1 May 2026
Viewed by 865
Abstract
Although microbial biopesticides are expanding rapidly, transforming nematophagous fungi into consistent and shelf-stable products remains a challenge. A key limitation is that fungal propagules must remain viable throughout production, storage, and delivery to ensure their efficacy in the field. This review examines formulation [...] Read more.
Although microbial biopesticides are expanding rapidly, transforming nematophagous fungi into consistent and shelf-stable products remains a challenge. A key limitation is that fungal propagules must remain viable throughout production, storage, and delivery to ensure their efficacy in the field. This review examines formulation strategies that improve the stability, deployment, and performance of fungal biocontrol agents against gastrointestinal helminths in domestic animals and plant-parasitic nematodes. In veterinary systems, predatory fungi such as Duddingtonia flagrans primarily target infective larvae after surviving gastrointestinal transit and germination in feces. In contrast, ovicidal fungi, including Pochonia chlamydosporia, Purpureocillium lilacinum, Trichoderma spp., and Mucor spp., primarily act against helminth eggs and coccidian oocysts. This functional complementarity highlights the potential of combined fungal formulations to improve their control efficacy. We also discuss the currently available D. flagrans-based commercial products, BioWorma® and Bioverm®, and the practical challenges associated with dosing, administration, and farm adoption. In agriculture, we show that the Brazilian market is dominated by solid fungal nematicides designed to reduce water activity and prolong shelf life, although liquid- and oil-based systems remain relevant for specific applications. Across both sectors, the review identified formulation design, rather than fungal species alone, as a critical determinant of product performance. Emerging advances, such as microencapsulation, UV-protective matrices, improved seed-coating biopolymers, nanobiotechnology, and fungal-derived bioactive products, indicate that future progress will depend on target-oriented formulations capable of increasing stability, controlled release, and resilience under environmentally variable conditions, including those imposed by climate change. Full article
(This article belongs to the Special Issue Parasitic Helminths and Control Strategies)
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22 pages, 5901 KB  
Review
Advances in Micro- and Macrobiological Strategies for Pest Control in Berry Production Systems: A Critical Review
by Oscar Giovanni Gutiérrez-Cárdenas, Humberto Javier López-Macías, Kolima Peña-Calzada, Gerardo Arias-Robledo, Guadalupe Oyoque-Salcedo, Isaac Zepeda-Jazo, Pedro Damián Loeza-Lara, Martin Heil and Omar Fabián Hernández-Zepeda
Plants 2026, 15(1), 144; https://doi.org/10.3390/plants15010144 - 4 Jan 2026
Cited by 3 | Viewed by 2778
Abstract
Berry crops such as strawberry Fragaria × ananassa (Weston), raspberry Rubus idaeus L., blackberry Rubus ulmifolius Schott, 1818, and blueberry Vaccinium myrtillus L. are economically and nutritionally valuable worldwide. However, the intensive use of synthetic pesticides for pest management in these crops has [...] Read more.
Berry crops such as strawberry Fragaria × ananassa (Weston), raspberry Rubus idaeus L., blackberry Rubus ulmifolius Schott, 1818, and blueberry Vaccinium myrtillus L. are economically and nutritionally valuable worldwide. However, the intensive use of synthetic pesticides for pest management in these crops has led to ecological imbalance, pest resistance, and negative effects on non-target organisms and human health. The integration of biological control agents into sustainable integrated pest management (IPM) systems represents an alternative. This review compiles and evaluates current advances in the application of baculoviruses (BVs), entomopathogenic fungi (EPFs), nematodes (EPNs), predatory mites (PMs), and parasitoid wasps (PWs) for pest suppression in berry crops. Emphasis was placed on their ecological interactions, host specificity, and compatibility within IPM frameworks. The combined use of micro- and macrobiological control agents effectively reduces key pest populations. However, field efficacy remains influenced by abiotic stressors such as UV radiation, temperature fluctuations, and chemical incompatibility. The integration of native micro- and macrobiological control agents of through conservation biological control (CBC) strategies can enhance sustainability in berry production systems. Future efforts should focus on formulation improvements, adaptive management under field conditions, and synergistic interactions among microbial and arthropod natural enemies. Full article
(This article belongs to the Special Issue Translating Ecological Research into Biological Control Strategies)
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18 pages, 346 KB  
Review
Research Progress on Diseases and Pests of Chrysanthemum (2015–2025)
by Yuan Chen, Lihui Han, Tengqing Ye and Chengjian Xie
Int. J. Mol. Sci. 2025, 26(19), 9767; https://doi.org/10.3390/ijms26199767 - 7 Oct 2025
Cited by 1 | Viewed by 3158
Abstract
Chrysanthemum morifolium Ramat. is a major ornamental crop that suffers from diverse fungal, bacterial, viral, and insect pests, causing significant yield and quality losses. Between 2015 and 2025, rapid progress in molecular biology, genomics, and ecological regulation has advanced both fundamental research and [...] Read more.
Chrysanthemum morifolium Ramat. is a major ornamental crop that suffers from diverse fungal, bacterial, viral, and insect pests, causing significant yield and quality losses. Between 2015 and 2025, rapid progress in molecular biology, genomics, and ecological regulation has advanced both fundamental research and applied control strategies. Multi-locus sequencing, multiplex PCR, and next-generation sequencing refined the identification of fungal and bacterial pathogens, while functional studies of WRKY, MYB, and NAC transcription factors revealed key resistance modules. Hormone-mediated signaling pathways, particularly those of salicylic acid, jasmonic acid, and abscisic acid, were shown to play central roles in host defense. Despite these advances, durable genetic resistance against bacterial pathogens and broad-spectrum defense against viruses remains limited. Novel technologies, including virus-free propagation, RNA interference, and spray-induced gene silencing, have shown promising outcomes. For insect pests, studies clarified the damage and virus-vectoring roles of aphids and thrips, and resistance traits linked to trichomes, terpenoids, and lignin have been identified. Biocontrol agents such as Trichoderma spp., Bacillus spp., predatory mites, and entomopathogenic fungi have also demonstrated efficacy. Future efforts should integrate molecular breeding, genome editing, RNA-based tools, and microbiome management to achieve sustainable chrysanthemum protection. Full article
(This article belongs to the Section Molecular Biology)
14 pages, 4791 KB  
Article
Biocontrol Potential of Fungal and Oomycete Phytopathogens by Myxobacterial Strains
by Adnan Ismaiel, Dilip K. Lakshman and Patricia Millner
Appl. Microbiol. 2025, 5(3), 85; https://doi.org/10.3390/applmicrobiol5030085 - 20 Aug 2025
Viewed by 2021
Abstract
Myxobacteria, a group of swarming, predatory soil bacteria, are of interest because of their biocontrol potential. In this study, the inhibitory effects of 13 strains of myxobacteria were examined against four different phytopathogenic fungi, as follows: two isolates of Rhizoctonia solani from different [...] Read more.
Myxobacteria, a group of swarming, predatory soil bacteria, are of interest because of their biocontrol potential. In this study, the inhibitory effects of 13 strains of myxobacteria were examined against four different phytopathogenic fungi, as follows: two isolates of Rhizoctonia solani from different AG groups and one isolate each from Sclerotinia sclerotiorum and the oomycete Pythium ultimum. Inhibition levels varied among phytopathogens, with slow-growers being more susceptible than fast-growers. Myxococcus xanthus BS 248, M. flavus ATCC 29617, and M. coralloides BS249 were the most inhibitory strains tested. non-contact and contact inhibition on agar media between phytopathogens and myxobacteria were visually discernible. This distinction potentially reflects the activity of low-molecular-weight metabolites and high-molecular-weight lytic enzymes, respectively. In a pot soil study, the inhibitory effect of a mixture of two strains of myxobacteria against two strains of R. solani was apparent from the reduced disease in cucumber seedlings compared to controls without myxobacteria. This is the first report of an in vivo inhibitory effect of myxobacteria against Rhizoctonia. The survival of M. xanthus BS248 in sterile soil amended with rabbit manure (1:1) increased up to five weeks compared to one week in soil without the manure, suggesting that organic amendment could enrich myxobacteria in soil. Full article
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14 pages, 3379 KB  
Article
Effects of Isaria cateniannulata and Beauveria bassiana on Buckwheat Growth and Associated Insect Pest
by Xiaona Zhang, Lingdi Gu, Can Liu, Guimin Yang, Xue Yang, Kaifeng Huang and Qingfu Chen
Biomolecules 2025, 15(7), 1039; https://doi.org/10.3390/biom15071039 - 17 Jul 2025
Cited by 2 | Viewed by 1098
Abstract
The Tetranychus urticae Koch (Acari: Tetranychidae) is one of the primary pests affecting buckwheat, and its management has become increasingly critical. Entomopathogenic fungi offer a promising way to solve this problem by providing both pest control and disease resistance, as well as promoting [...] Read more.
The Tetranychus urticae Koch (Acari: Tetranychidae) is one of the primary pests affecting buckwheat, and its management has become increasingly critical. Entomopathogenic fungi offer a promising way to solve this problem by providing both pest control and disease resistance, as well as promoting plant growth through endophytic colonization. This study investigated the effects of applying Isaria cateniannulata (Liang) Samson & Hywel-Jones and Beauveria bassiana (Bals.-Criv.) Vuill. on different buckwheat varieties, and analyzed the physiological indices of buckwheat, the population of T. urticae and Euseius nicholsi (Ehara & Lee). Results showed that the optimum concentration for fungal colonization on buckwheat was 1 × 107 spores/mL. The combined application of I. cateniannulata and B. bassiana significantly enhanced buckwheat growth, with root length, plant height, main stem diameter, fresh weight, and dry weight reaching 63.3 mm, 24.1 cm, 2.1 mm, 2.0 g, and 0.1 g, respectively. The highest escape rate of T. urticae was 76.33%. Furthermore, the combined application of mixed fungal suspension and E. nicholsi had the best control effect on T. urticae, with pest suppression exceeding 97.83% and an oviposition as low as 0.25 eggs per female. This study is the first to demonstrate that the joint application of I. cateniannulata and B. bassiana can promote buckwheat growth and, when combined with predatory mites, effectively control T. urticae. These findings provide a theoretical basis for the development of integrated biocontrol strategies combining entomopathogenic fungi and predatory mites. Full article
(This article belongs to the Special Issue Microbial Biocontrol and Plant-Microbe Interactions)
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17 pages, 2370 KB  
Article
Infective Larvae of Haemonchus contortus (Nematoda: Trichostrongylidae) Are Captured and Destroyed by Nematode-Trapping Fungi Dactylellina spp. (Fungi: Orbiliales)
by Manuel Salvador Balanzar-Aguilera, Enrique Gutiérrez-Medina, Gustavo Pérez-Anzúrez, Edgar Jesús Delgado-Núñez, María Eugenia López-Arellano, Ana Yuridia Ocampo-Gutiérrez and Pedro Mendoza-de Gives
Parasitologia 2025, 5(2), 26; https://doi.org/10.3390/parasitologia5020026 - 3 Jun 2025
Cited by 1 | Viewed by 1958
Abstract
This study aimed to explore and identify soil-dwelling nematophagous fungi (NF) from the “El Texcal” Ecological Reserve in Morelos, Mexico, and evaluate their potential as biological control agents against Haemonchus contortus infective larvae (HcL3), a major parasitic threat in livestock systems. [...] Read more.
This study aimed to explore and identify soil-dwelling nematophagous fungi (NF) from the “El Texcal” Ecological Reserve in Morelos, Mexico, and evaluate their potential as biological control agents against Haemonchus contortus infective larvae (HcL3), a major parasitic threat in livestock systems. The fungi were isolated from soil using the sprinkling of soil on water agar plates. The identification of NF was achieved using morphological identification keys, which was corroborated by molecular procedures using the PCR technique in the ITS4 and ITS5 regions. The nematocidal effects occasioned by these NF were examined through their predatory activity (PA) against HcL3 on water agar plates, and additionally, the larval mortality attributed to their liquid filtrates (LFs) was assessed at three different concentrations (25, 50, and 100 mg/mL) on 96-well microtiter plates. Two NF were identified and classified as two species of Dactylellina genus, namely D. haptospora (Dh) and D. phymatopaga (Dp). The PA exhibited by these NF were 94.79% for Dh and 68.88% for Dp; while their LFs showed 27.83% mortality for Dh and 32.86% for Dp at the highest concentration assessed. While the PA was notably high, the moderate larvicidal effect of the LF suggests that their efficacy may primarily rely on direct physical interaction rather than metabolite-mediated toxicity. The high PA demonstrated by these two isolates of NF indicates that they could be effective candidates for biological control agents against HcL3. Full article
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22 pages, 1362 KB  
Review
Bioprotection of the Button Mushroom from Pests and Diseases
by Dejan Marčić, Svetlana Milijašević-Marčić, Tanja Drobnjaković, Jelena Luković, Ljiljana Šantrić, Nikola Grujić and Ivana Potočnik
Agronomy 2025, 15(6), 1323; https://doi.org/10.3390/agronomy15061323 - 28 May 2025
Cited by 6 | Viewed by 3398
Abstract
Commercial production of the button mushroom, Agaricus bisporus (Lange) Imbach, is threatened by various pests and mycopathogenic microorganisms. Sciarid flies (Sciaridae) of the genus Lycoriella are considered as major pests, while major pathogens include the fungi Lecanicillium fungicola (Preuss), Zare and Gams, Hypomyces perniciosus [...] Read more.
Commercial production of the button mushroom, Agaricus bisporus (Lange) Imbach, is threatened by various pests and mycopathogenic microorganisms. Sciarid flies (Sciaridae) of the genus Lycoriella are considered as major pests, while major pathogens include the fungi Lecanicillium fungicola (Preuss), Zare and Gams, Hypomyces perniciosus Magnus, Cladobotryum spp., and Trichoderma aggressivum Samuels & W. Gams, the causative agents of dry bubble, wet bubble, cobweb, and green mold diseases, respectively. Control of mushroom pests and diseases has long relied on synthetic chemical pesticides. Pesticide resistance and various health and environmental issues have created a need for sustainable and eco-friendly alternatives to the use of synthetic chemical pesticides for mushroom pest and disease control. The concept of bioprotection, which involves using biological control agents (BCAs) and biopesticide products, offers a viable alternative. The entomopathogenic nematode Steinernema feltiae (Filipjev) and predatory mite Stratiolaelaps scimitus (Womersley) are the most important invertebrate BCAs, while the bacteria Bacillus thuringiensis Berliner, B. amyloliquefaciens, and B. velezensis stand out as the most widely used microbial BCAs/biopesticides. Azadirachtin- and pyrethrum-based products are the most important biochemical biopesticides. Bioprotection agents require inclusion in the integrated pest and disease management (IPDM) programs in order to achieve their full effectiveness. Full article
(This article belongs to the Section Pest and Disease Management)
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19 pages, 5333 KB  
Article
Dynamic Changes in Prokaryotic and Eukaryotic Communities and Networks in Minimally Managed Cabbage-Cultivated Field Soils
by Sentaro Ito, Junya Murakami, Mio Suzuki, Yuu Hirose, Takahiro Yamauchi and Toshihiko Eki
Genes 2025, 16(5), 482; https://doi.org/10.3390/genes16050482 - 24 Apr 2025
Cited by 1 | Viewed by 1077
Abstract
Background/Objectives: Taxonomic profiling of soil microbial communities is useful for assessing and monitoring the biological status of agricultural land. In this study, we aimed to investigate changes in the taxonomic structure of soil organisms in minimally managed agricultural fields. Methods: We used DNA [...] Read more.
Background/Objectives: Taxonomic profiling of soil microbial communities is useful for assessing and monitoring the biological status of agricultural land. In this study, we aimed to investigate changes in the taxonomic structure of soil organisms in minimally managed agricultural fields. Methods: We used DNA metabarcoding to investigate both terrestrial prokaryotes and eukaryotes in cabbage-cultivated and uncultivated sites in a minimally managed agricultural field in central Japan from February to August 2021. Analyses of the relative abundances of prokaryotic and eukaryotic sequence variants (SVs) and their β-diversities, and the subsequent redundancy analysis (RDA) clarified the dynamic changes in eukaryotic communities during cultivation. We further investigated taxonomic changes in fungi-, protist-, and animal-derived SVs, abundant SVs in each eukaryotic phylum, as well as the co-occurrence networks of the top 150 SVs. Results: The results revealed that the fractions of predatory or parasitic protists and animals increased, whereas those of fungi and earthworm Enchytraeus spp. decreased. The fractions of abundant SVs derived from diatoms, Ciliophora, the class Vampyrellidae (Cercozoa), and mites increased and subsequently decreased during this period. These findings suggest that predatory protists and animals fed on bacteria and autotrophic eukaryotes (such as diatoms) propagated in spring, followed by their propagation and parasitism to host eukaryotes. The networks also changed, especially prokaryotic networks that markedly changed from April to May, and those of eukaryotes from May to June–August, supporting the observations mentioned above. Conclusions: These findings indicate the dynamic and sequential changes in soil communities in fields with minimal agricultural practices and could be useful for sustainable natural farming. Full article
(This article belongs to the Section Genes & Environments)
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14 pages, 780 KB  
Review
Exploring the Use of Helminthophagous Fungi in the Control of Helminthoses in Horses: A Review
by Tábata Alves do Carmo, Júlia dos Santos Fonseca, Fabio Ribeiro Braga, Adolfo Paz-Silva, Ricardo Velludo Gomes de Soutello and Jackson Victor de Araújo
Animals 2025, 15(6), 864; https://doi.org/10.3390/ani15060864 - 18 Mar 2025
Cited by 4 | Viewed by 2561
Abstract
Equine farming faces growing challenges with helminthoses, aggravated by the indiscriminate use of anthelmintics without technical criteria. This practice favors resistance to these drugs, generates residues in animal products, compromises food safety and human health, and, when excreted in large quantities, negatively impacts [...] Read more.
Equine farming faces growing challenges with helminthoses, aggravated by the indiscriminate use of anthelmintics without technical criteria. This practice favors resistance to these drugs, generates residues in animal products, compromises food safety and human health, and, when excreted in large quantities, negatively impacts environmental health by affecting invertebrates and fecal microorganisms. This highlights the importance of the One Health approach. A promising alternative is biological control with nematophagous or helminthophagous fungi such as Duddingtonia flagrans, Pochonia chlamydosporia, Arthrobotrys oligospora, Monacrosporium thaumasium, Mucor circinelloides and Purpureocillium lilacinum. Due to their different mechanisms of action, ovicidal and predatory fungi, when used together, can act in a complementary and synergistic way in the biological control of helminths, increasing their effectiveness in reducing parasitic infections. The use of these fungi through biosynthesized nanoparticles from fungal filtrates is also emerging as a new approach to nematode control. It can be administered through feed supplementation in commercial formulations. The aim of this review is to explore the use of helminthophagous fungi in the control of helminthiases in horses, highlighting their potential as a biological alternative. It also aims to understand how these fungi can contribute effectively and sustainably to parasite management in horses. Full article
(This article belongs to the Special Issue Advances in the Diagnosis of Parasitic Infections in Animals)
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