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Keywords = Phytophthora cinnamomi

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17 pages, 3885 KB  
Article
Essential Oils of Thymus Species Against Phytophthora Species: A Structured Review and Novel In Vitro Evaluations
by Chiara Antonelli, Najwa Benfradj and Anna Maria Vettraino
Pathogens 2026, 15(6), 582; https://doi.org/10.3390/pathogens15060582 - 28 May 2026
Viewed by 616
Abstract
Phytophthora species are among the most destructive plant pathogens worldwide, causing severe losses in agricultural, forest, and natural ecosystems. In recent years, the management of Phytophthora diseases has increasingly shifted toward eco-sustainable strategies, with growing interest in plant-derived extracts, particularly essential oils, as [...] Read more.
Phytophthora species are among the most destructive plant pathogens worldwide, causing severe losses in agricultural, forest, and natural ecosystems. In recent years, the management of Phytophthora diseases has increasingly shifted toward eco-sustainable strategies, with growing interest in plant-derived extracts, particularly essential oils, as low-risk alternatives to synthetic fungicides. In this study, a structured review was combined with new in vitro assays to assess the antifungal activity of essential oils from Thymus vulgaris (TV-EO) and T. serpyllum (TS-EO) against P. cinnamomi, P. drechsleri, P. cactorum, P. citrophthora, P. nicotianae, P. palmivora, and P. infestans. Literature searches were conducted in April 2025 using the Web of Science and Scopus databases, following PRISMA guidelines, with the search term “Thymus” or “Thyme” and “Phytophthora”. Twenty studies included in the review demonstrated that the activity of Thymus essential oils against Phytophthora species was highly variable and shaped by chemotype, Thymus species, pathogen, and experimental setup. Additional in vitro assays further confirmed a clear dose-dependent inhibitory effect for both TV-EO and TS-EO. TS-EO consistently exhibited stronger activity than TV-EO, likely reflecting its carvacrol-rich chemotype, while thymol-based TV-EO showed lower but still significant inhibition depending on the pathogen species. Overall, these results highlight the potential of Thymus essential oils as eco-friendly tools for the management of Phytophthora diseases. However, the strong dependence on chemotype, pathogen species, and assay conditions underscores the need for standardized testing, detailed chemical characterization, and in vivo validation. Full article
(This article belongs to the Section Fungal Pathogens)
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19 pages, 6700 KB  
Article
Biochemical Analysis of the Effect of Light on the In Vitro Antagonistic Ability of Clonostachys rosea Against Phytophthora cinnamomi and Phytophthora × cambivora
by Niccolò Conti, Gianni Della Rocca, Sara Barberini, Cecilia Brunetti, Roberto Danti, Giovanni Emiliani, Arcangela Frascella and Valentina Lazazzara
Forests 2026, 17(5), 625; https://doi.org/10.3390/f17050625 - 21 May 2026
Viewed by 371
Abstract
Clonostachys rosea is a promising biological control agent (BCA) against several plant pathogens, but its sensitivity to solar radiation limits its field efficacy. The biochemical changes occurring in C. rosea under light are still unknown, and no studies have assessed its antagonistic potential [...] Read more.
Clonostachys rosea is a promising biological control agent (BCA) against several plant pathogens, but its sensitivity to solar radiation limits its field efficacy. The biochemical changes occurring in C. rosea under light are still unknown, and no studies have assessed its antagonistic potential against Phytophthora cinnamomi and Phytophthora × cambivora, the main causal agents of ink disease in sweet chestnut. In this study, C. rosea was isolated from asymptomatic sweet chestnut plants in a forestry area affected by ink disease. We evaluated its in vitro antagonistic capacity against both oomycetes under dark and light conditions and investigated the metabolomic and volatilomic changes through HPLC-QToF-MS and GC-MS analyses. Under dark conditions, C. rosea exhibited remarkable inhibitory activity against both oomycetes in a dual-culture assay and through secreted secondary metabolites, including sorbicillinol and vertinolide, derivatives known for their biological activities. Light exposure significantly reduced antagonistic efficacy and secondary metabolite diversity. Volatilomic analyses revealed moderated differences between conditions, with volatile compounds whose biological roles remain uncharacterized and warrant further investigation. These findings indicate that light conditions critically affect the antagonistic potential of C. rosea, highlighting the importance of environmental factors in optimizing its use for the biological control of ink disease in chestnut. Full article
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23 pages, 3615 KB  
Article
Identification and Pathogenicity of Botryosphaeriaceae, Colletotrichum, and Phytophthora Species Associated with Avocado Diseases in Italy
by Benedetto T. Linaldeddu, Carlo Bregant, Jacopo Muscas, Lucia Maddau, Laura Vecchio, Giancarlo Polizzi and Dalia Aiello
Agriculture 2026, 16(10), 1035; https://doi.org/10.3390/agriculture16101035 - 10 May 2026
Cited by 1 | Viewed by 997
Abstract
With the rapid expansion of avocado cultivation in southern Italy, growers have had to deal with the emergence of new diseases often caused by invasive and polyphagous pathogens responsible for leaf spot, branch cankers, dieback and fruit and root rot. Given the severity [...] Read more.
With the rapid expansion of avocado cultivation in southern Italy, growers have had to deal with the emergence of new diseases often caused by invasive and polyphagous pathogens responsible for leaf spot, branch cankers, dieback and fruit and root rot. Given the severity of these emerging diseases, a study was conducted in the main avocado growing areas in Sardinia and Sicily (Italy) to isolate and characterize the causal agents. Specifically, a total of 430 symptomatic leaf, fruit, branch, stem and root samples were collected and examined. Isolations performed on both non-selective and selective growth media yielded 22 species (fungi and oomycetes) belonging to the genera Botryosphaeria, Colletotrichum, Diplodia, Dothiorella, Macrophomina, Neofusicoccum and Phytophthora, including 14 new host–pathogen records in Italy. Notably, Neofusicoccum australe, Phytophthora cinnamomi and Phytophthora palmivora emerged as the main pathogens involved in the emerging avocado diseases. The identified pathogens were often isolated simultaneously from the same plants, which exhibited a complex of symptoms. Pathogenicity bioassays have helped to clarify the differences in aggressiveness among the different species and their specificity towards the different plant organs. The results achieved suggest that avocado orchards’ productivity and profitability is threatened by a plethora of unrelated pathogens whose control represents a major challenge for the success of this crop in Italy. Full article
(This article belongs to the Special Issue Emerging Diseases of Tropical and Subtropical Fruits and Nuts)
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17 pages, 1613 KB  
Article
Biostimulant-Mediated Suppression of Phytophthora cinnamomi Rands and Enhancement of Quercus suber Physiology
by Katherine Onoszko, Jesús Campos-Serrano, Antonio Ángel García Mayoral, Roberto Jesús Cabrera-Puerto, Hamada Abdelrahman and Francisco José Ruiz-Gómez
Forests 2026, 17(4), 435; https://doi.org/10.3390/f17040435 - 31 Mar 2026
Viewed by 5542
Abstract
Phytophthora cinnamomi Rands, an oomycete pathogen of global relevance, is a major driver of cork oak (Quercus suber L.) decline and mortality in Mediterranean forests. Its management remains challenging in multifunctional landscapes where forestry and agriculture intersect, such as Mediterranean oak dehesas. [...] Read more.
Phytophthora cinnamomi Rands, an oomycete pathogen of global relevance, is a major driver of cork oak (Quercus suber L.) decline and mortality in Mediterranean forests. Its management remains challenging in multifunctional landscapes where forestry and agriculture intersect, such as Mediterranean oak dehesas. Conventional fungicides are used against P. cinnamomi, but their negative environmental impacts underscore the need for alternative management in agroforestry systems. This study evaluated whether a commercially available microbial biostimulant, VESTA, enhances physiological performance and mitigates pathogen pressure in Q. suber. Seedlings were inoculated with P. cinnamomi and treated with the bioinoculant via fertigation or watering to substrate saturation, under controlled greenhouse conditions. Plant physiological parameters and soil oomycete inoculum concentrations were measured to assess treatment efficacy. Both application methods significantly improved physiological performance in inoculated and mock-inoculated plants. Photosynthesis, stomatal regulation, and water balance were most affected. Quantitative PCR analyses revealed a strong pathogen reduction, with DNA concentrations approximately tenfold lower in treated substrates (~0.001 ng mL−1) than untreated controls (~0.011 ng mL−1). Overall, the product enhanced Q. suber resilience by improving plant physiological responses and reducing pathogen abundance, supporting its potential as a bio-based tool for nurseries and restoration in Mediterranean ecosystems. Field studies are needed to validate these findings under natural variability and optimize long-term application strategies. Full article
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20 pages, 1640 KB  
Article
Cinnamon Bark Essential Oil as a Natural Plant Protection Agent: Chemical Profile, Antimicrobial Activity, and Defence Induction
by Elżbieta Gębarowska, Karolina Budek, Martyna Gębarowska, Anna Kmieć and Antoni Szumny
Molecules 2026, 31(6), 1036; https://doi.org/10.3390/molecules31061036 - 20 Mar 2026
Viewed by 1059
Abstract
Ceylon cinnamon (Cinnamomum verum J. Presl) bark essential oil (CBO) represents a promising source of natural bioactive compounds for biological plant protection. For the first time, the antibacterial and antifungal activity of CBO was systematically evaluated against a curated panel of phytopathogenic [...] Read more.
Ceylon cinnamon (Cinnamomum verum J. Presl) bark essential oil (CBO) represents a promising source of natural bioactive compounds for biological plant protection. For the first time, the antibacterial and antifungal activity of CBO was systematically evaluated against a curated panel of phytopathogenic strains (IOR collection), revealing broad-spectrum efficacy across both bacteria and filamentous pathogens. This study evaluated its chemical composition, antimicrobial activity against phytopathogens, effects on bacterial metabolic activity, and its ability to induce plant defence responses. CBO was dominated by cinnamaldehyde, linalool, and eucalyptol. The oil exhibited strong antibacterial activity against Dickeya dadantii, Pectobacterium carotovorum, Pseudomonas syringae, and Xanthomonas hortorum as well as antifungal activity against Fusarium graminearum, F. culmorum, Rhizoctonia solani and Phytophthora cinnamomi. Metabolic assays revealed a marked reduction in bacterial metabolic activity, indicating that CBO disrupts physiological processes and inhibits growth. In planta experiments showed that foliar application of CBO stimulated PAL activity in wheat leaves without visible phytotoxic symptoms. These findings demonstrate a multifunctional mode of action of CBO, combining direct antimicrobial effects with the elicitation of plant defence responses, and support its potential application in sustainable crop protection. Full article
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19 pages, 903 KB  
Review
Biocontrol Agents for Disease Management in Mediterranean Agroforestry Species Within the Genus Quercus: Holm, Cork, Lusitanian and Pyrenean Oaks
by Alexandra Díez-Méndez, Julio J. Díez and Jorge Poveda
Agriculture 2026, 16(4), 409; https://doi.org/10.3390/agriculture16040409 - 10 Feb 2026
Viewed by 1104
Abstract
Mediterranean agroforestry systems (AFSs), typified by the Iberian Dehesas and Portuguese Montados, are multifunctional landscapes where Quercus species act as ecological keystones sustaining biodiversity, soil fertility, and rural livelihoods. These systems are increasingly affected by complex oak decline syndromes driven by drought, soil [...] Read more.
Mediterranean agroforestry systems (AFSs), typified by the Iberian Dehesas and Portuguese Montados, are multifunctional landscapes where Quercus species act as ecological keystones sustaining biodiversity, soil fertility, and rural livelihoods. These systems are increasingly affected by complex oak decline syndromes driven by drought, soil degradation, and climate-induced pathogen outbreaks. Conventional chemical controls are often ineffective and environmentally detrimental, underscoring the need for ecologically sound management alternatives. This review synthesizes recent advances in the application of microbial biological control agents (MBCAs) to manage diseases in Mediterranean Quercus species, including Q. ilex, Q. suber, Q. faginea, and Q. pyrenaica. We conducted a structured literature review using predefined keyword searches in Web of Science and Scopus, followed by the screening of records to identify 22 relevant peer-reviewed studies on microbial disease control in Mediterranean Quercus species. We identified 20 peer-reviewed studies that reported that MBCAs—primarily from Bacillus, Serratia, Streptomyces, Trichoderma, Simplicillium and Alternaria—exert biocontrol effects through antibiosis, mycoparasitism, competition for ecological niches, and the induction of host defense responses. Although most experiments were conducted in vitro, some demonstrated significant disease suppression in seedlings infected by Phytophthora cinnamomi, Diplodia corticola, and Biscogniauxia mediterranea. Future research should integrate field-based validation and microbiome-oriented forest management approaches to enable the operational use of microbial-based disease control strategies in AFS landscapes. Full article
(This article belongs to the Special Issue Biological Control of Plant Diseases by Beneficial Microbes)
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15 pages, 1585 KB  
Article
Comparative Analysis of Phytochemical Profile and Antioxidant and Antimicrobial Activity of Green Extracts from Quercus ilex and Quercus robur Acorns
by Diego Gonzalez-Iglesias, Francisco Martinez-Vazquez, Laura Rubio, Jesús María Vielba, Trinidad de Miguel and Marta Lores
Molecules 2026, 31(2), 277; https://doi.org/10.3390/molecules31020277 - 13 Jan 2026
Cited by 2 | Viewed by 1257
Abstract
An environmentally friendly extraction strategy based on an MSAT (Medium Scale Ambient Temperature) system was applied to Quercus ilex and Quercus robur acorns with the aim of maximizing polyphenolic yield and antioxidant activity while minimizing solvent consumption. Operational parameters were first optimized for [...] Read more.
An environmentally friendly extraction strategy based on an MSAT (Medium Scale Ambient Temperature) system was applied to Quercus ilex and Quercus robur acorns with the aim of maximizing polyphenolic yield and antioxidant activity while minimizing solvent consumption. Operational parameters were first optimized for Quercus ilex using a BBD-RSM (Box–Behnken response surface methodology), where the optimum working zone corresponds to the values of 200 g of acorn, 100 mL of extracting solvent, and 0.5 dispersant/acorn ratio. Subsequently, these conditions were applied to Quercus robur to enable an interspecific comparison. Extracts were evaluated in terms of total polyphenolic content, antioxidant activity, reducing sugars, proteins, targeted polyphenols quantified by UHPLC-QToF, and antimicrobial activity. Optimal extractions from Quercus ilex reached 25,072 mgGAE L−1 and 162 mmolTE L−1, while Quercus robur extracts showed markedly superior values of 35,822 mgGAE L−1 and 234 mmolTE L−1. Polyphenol quantification revealed higher concentrations of gallotannins in Quercus robur and procyanidins and catechin in Quercus ilex. The extracts showed strong antibacterial activity, especially Quercus ilex against S. aureus with a MIC ≤ 0.63%. Furthermore, it has been demonstrated for the first time that acorn extracts can inhibit the growth of Phytophthora cinnamomi in vitro, with Quercus robur extracts having a MIC ≤ 0.1% and Quercus ilex extracts ≤ 1%. Full article
(This article belongs to the Section Natural Products Chemistry)
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11 pages, 1597 KB  
Article
The Role of Soil Moisture in the Infection of Quercus suber L. Roots by Phytophthora cinnamomi Rands and Pythium spiculum Paul
by Mario González, María Socorro Serrano, María Ángeles Romero and María Esperanza Sánchez
Forests 2026, 17(1), 33; https://doi.org/10.3390/f17010033 - 26 Dec 2025
Viewed by 938
Abstract
The survival of Quercus species in the Mediterranean region is challenged by root diseases caused by Phytophthora cinnamomi Rands and Pythium spiculum Paul, as well as by drought. This study aimed to examine the interaction between both pathogens under varying soil moisture levels. [...] Read more.
The survival of Quercus species in the Mediterranean region is challenged by root diseases caused by Phytophthora cinnamomi Rands and Pythium spiculum Paul, as well as by drought. This study aimed to examine the interaction between both pathogens under varying soil moisture levels. Seedlings were inoculated with P. cinnamomi, Py. spiculum, or both, and exposed to soil moisture conditions ranging from saturation to drought. Results showed that P. cinnamomi caused high levels of root necrosis in saturated-to-moderately dry soils, but it was unable to cause infection under drought conditions. Conversely, Py. spiculum infected roots under drought but not under saturation conditions and was less virulent in wet soils compared to P. cinnamomi. In seedlings inoculated with both pathogens, symptoms were similar to those induced by P. cinnamomi alone, without any synergistic effect. This study highlights that P. cinnamomi and Py. spiculum infect oak roots across a range of soil moistures, with P. cinnamomi being the predominant pathogen in wet-to-moderately dry soils, and Py. spiculum being the predominant pathogen in droughted soils. Under current and projected future water deficit conditions, oak woodlands infected by both pathogens face a significant threat to their survival. Full article
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20 pages, 4205 KB  
Article
Hillslope Morphological Features Modulate Soil Microbial Communities and Chestnut Ink Disease via Clay and Water Redistribution
by William Trenti, Mauro De Feudis, Sara Marinari, Sergio Murolo, Giulia Tabanelli, Federico Puliga, Rosita Marabottini, Alessandra Zambonelli, Fausto Gardini and Livia Vittori Antisari
Appl. Sci. 2025, 15(21), 11695; https://doi.org/10.3390/app152111695 - 1 Nov 2025
Viewed by 914
Abstract
Ink disease, caused by the soil-borne pathogens Phytophthora cambivora and Phytophthora cinnamomi, is threatening sweet chestnut (Castanea sativa) groves across Europe. This study investigates whether the morphology of soil and related properties influence the development of ink disease throughout the [...] Read more.
Ink disease, caused by the soil-borne pathogens Phytophthora cambivora and Phytophthora cinnamomi, is threatening sweet chestnut (Castanea sativa) groves across Europe. This study investigates whether the morphology of soil and related properties influence the development of ink disease throughout the entire soil profile. In a C. sativa stand in Northern Italy, soil pits were excavated near symptomatic (INK1, 978 m a.s.l.) and healthy trees (INK2, 988 m a.s.l.; INK3, 998 m a.s.l.) along an altitudinal transect. The slope gradients at these sites were 3%, 9%, and 30%, respectively. Soils were classified as Luvisols. Results suggest that the lower slope position and gentler gradient of INK1 may have facilitated the downslope transport of clay and water from INK2 and INK3, leading to increased clay accumulation throughout the INK1 soil profiles. This, in turn, enhanced saturated hydraulic conductivity (Ks) and the wilting point (WP), favoring water retention in deeper horizons, where Phytophthora DNA was detected. Indeed, INK1 had a higher WP (14.9%) compared to INK2 (11.7%) and INK3 (8.2%), and exhibited the highest Ks (25.1%), significantly exceeding values in INK2 (4.6%) and INK3 (6.5%). The presence of the pathogen in INK1 appeared to affect microbial functionality, as indicated by the dominance of contact (~20%) and medium-distance ectomycorrhizal (~60%) exploration types over long-distance ones. Overall, our findings highlighted the key role of soil processes, particularly clay and water redistribution, in shaping microbial communities and soil-borne pathogen dynamics through their influence on edaphic properties. Full article
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7 pages, 1800 KB  
Communication
Isolation and Characterization of Globisporangium glomeratum (syn. Pythium glomeratum) from Declining Holm Oak in a Historical Garden
by Anna Maria Vettraino, Michele Narduzzi and Chiara Antonelli
Pathogens 2025, 14(10), 960; https://doi.org/10.3390/pathogens14100960 - 23 Sep 2025
Viewed by 1012
Abstract
Pythium-like organism species are widespread soilborne oomycetes known to cause root diseases in a wide range of plant hosts. However, their involvement in the decline of woody species in historical and urban gardens has received limited attention. This study reports the isolation [...] Read more.
Pythium-like organism species are widespread soilborne oomycetes known to cause root diseases in a wide range of plant hosts. However, their involvement in the decline of woody species in historical and urban gardens has received limited attention. This study reports the isolation and identification of a Pythium-like organism from declining Quercus ilex specimens in a historical garden, where affected trees showed symptoms of root rot and sucker dieback. Integration of morphological observations and molecular analyses of ITS, LSU, and Cox II sequences confirmed the identity of the isolates as Globisporangium glomeratum (formerly Pythium glomeratum). Pathogenicity tests confirmed the aggressiveness of these isolates on Q. ilex seedlings, resulting in significant reductions in plant height and shoot and root biomass. The detection of G. glomeratum in the soil of a historical garden underscores the risk of its unintentional dissemination through nursery stock or soil movement, particularly in urban settings where plant replacement is frequent. This is the first report of G. glomeratum as a pathogen of Q. ilex, emphasizing the importance of phytosanitary monitoring in culturally and ecologically valuable green spaces. Full article
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16 pages, 10263 KB  
Article
Predicting the Potential Geographic Distribution of Phytophthora cinnamomi in China Using a MaxEnt-Based Ecological Niche Model
by Xiaorui Zhang, Haiwen Wang and Tingting Dai
Agriculture 2025, 15(13), 1411; https://doi.org/10.3390/agriculture15131411 - 30 Jun 2025
Cited by 2 | Viewed by 1637
Abstract
Phytophthora cinnamomi is a globally distributed plant-pathogenic oomycete that threatens economically important crops, including Lauraceae, Bromeliaceae, Fabaceae, and Solanaceae. Utilizing species occurrence records and 35 environmental variables (|R| < 0.8), we employed the MaxEnt model and ArcGIS spatial analysis [...] Read more.
Phytophthora cinnamomi is a globally distributed plant-pathogenic oomycete that threatens economically important crops, including Lauraceae, Bromeliaceae, Fabaceae, and Solanaceae. Utilizing species occurrence records and 35 environmental variables (|R| < 0.8), we employed the MaxEnt model and ArcGIS spatial analysis to systematically predict the potential geographical distribution of P. cinnamomi under current (1970–2000) and future (2030S, 2050S, 2070S, 2090S) climate scenarios across three Shared Socioeconomic Pathways (SSPs). The results indicate that currently suitable habitats cover the majority of China’s provinces (>50% of their areas), with only sporadic low-suitability zones in Qinghai, Tibet, and Xinjiang. The most influential environmental variables were the mean diurnal temperature range, mean temperature of the warmest quarter, annual precipitation, precipitation of the driest month, and elevation. Under future climate scenarios, new suitable habitats emerged in high-latitude regions, while the highly suitable area expanded significantly, with the distribution centroid shifting northeastward. This study employs predictive modeling to elucidate the future distribution patterns of P. cinnamomi in China, providing a theoretical foundation for establishing a regional-scale disease early warning system and formulating ecological management strategies. Full article
(This article belongs to the Section Ecosystem, Environment and Climate Change in Agriculture)
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14 pages, 3921 KB  
Article
First Report of Phytophthora mengei Causing Root Rot and Canker in Avocado (Persea americana) in Michoacán, Mexico
by Alejandra Mondragón-Flores, Alejandro Soto-Plancarte, Gerardo Rodríguez-Alvarado, Patricia Manosalva, Salvador Ochoa-Ascencio, Benjamin Hoyt, Nuria Gómez-Dorantes and Sylvia Patricia Fernández-Pavía
Microorganisms 2025, 13(7), 1471; https://doi.org/10.3390/microorganisms13071471 - 24 Jun 2025
Cited by 1 | Viewed by 2452
Abstract
Mexico is the world’s leading producer of avocado (Persea americana); however, its productivity is threatened by various diseases, especially root rot caused by Phytophthora. While P. cinnamomi is the most commonly reported species worldwide, this study identified P. [...] Read more.
Mexico is the world’s leading producer of avocado (Persea americana); however, its productivity is threatened by various diseases, especially root rot caused by Phytophthora. While P. cinnamomi is the most commonly reported species worldwide, this study identified P. mengei for the first time as a causal agent of root rot and trunk canker in avocado orchards in the state of Michoacán, México. The morphological and molecular characterization of four isolates (three from canker and one from root rot) confirmed their identity: semi-papillate sporangia and plerotic oospores with paragynous antheridia, with sequence identities of 99.87% (ITS) and 100% (COI) with type sequences of P. mengei. Pathogenicity tests demonstrated the ability to infect roots, stems, and fruits, although with a low reisolation percentage in roots (10%), suggesting an opportunistic pathogen behavior. Sensitivity tests to potassium phosphite (EC50 of 3.67 μg/mL−1 a.i.) and metalaxyl-M (0.737 μg/mL−1 a.i.) revealed possible limitations for chemical control. These findings position P. mengei as an emerging pathogen with important implications for integrated crop management. To the best of our knowledge, this is the first report of P. mengei causing root rot and trunk canker in avocado in Michoacán, Mexico. Full article
(This article belongs to the Special Issue Feature Papers in Plant–Microbe Interactions in North America)
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12 pages, 3074 KB  
Article
Multiple Botryosphaeriaceae and Phytophthora Species Involved in the Etiology of Holm Oak (Quercus ilex L.) Decline in Southern Italy
by Carlo Bregant, Francesca Carloni, Gaia Borsetto, Angelo G. Delle Donne, Benedetto T. Linaldeddu and Sergio Murolo
Forests 2025, 16(7), 1052; https://doi.org/10.3390/f16071052 - 24 Jun 2025
Cited by 4 | Viewed by 1475
Abstract
In recent years, severe decline and mortality events have been observed in holm oak (Quercus ilex L.) ecosystems in different Italian regions, including Puglia (southern Italy). Given the landscape and ecological relevance of holm oak forests in Apulia, a study was conducted [...] Read more.
In recent years, severe decline and mortality events have been observed in holm oak (Quercus ilex L.) ecosystems in different Italian regions, including Puglia (southern Italy). Given the landscape and ecological relevance of holm oak forests in Apulia, a study was conducted to identify the causal agents related to this complex disease syndrome. The surveys, conducted in winter 2024 in three different woodlands, revealed the widespread occurrence of mature holm oak trees showing sudden death, crown thinning, shoot and branch dieback, sunken cankers, and root rot symptoms. Isolations performed from symptomatic samples collected from both stem and small roots yielded fungal and fungal-like colonies representing two distinct families: Botryosphaeriaceae and Peronosporaceae. Analysis of morphological and DNA sequence data allowed us to identify six distinct species, including Diplodia corticola and D. quercivora (Botryosphaeriaceae), Phytophthora cinnamomi, P. multivora, P. psychrophila, and P. asparagi (Peronosporaceae). For P. asparagi and P. psychrophila, isolated for the first time from declining holm oak trees in Italy, Koch’s postulates were satisfied by inoculating 1-year-old seedlings at the collar in controlled conditions. Thirty days after inoculation, all plants showed the same symptoms observed in the field. Overall, the data obtained highlights the co-occurrence of multiple Botryosphaeriaceae and Phytophthora species on declining holm oak trees and the discovery of a new haplotype of Diplodia quercivora. Full article
(This article belongs to the Section Forest Health)
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15 pages, 3743 KB  
Article
Expression and Antagonistic Activity Against Plant Pathogens of the Phage Tail-like Protein from Burkholderia multivorans WS-FJ9
by Tong-Yue Wen, Xing-Li Xie, Wei-Liang Kong and Xiao-Qin Wu
Microorganisms 2025, 13(4), 853; https://doi.org/10.3390/microorganisms13040853 - 9 Apr 2025
Cited by 1 | Viewed by 1366
Abstract
Microorganisms exert antagonistic effects on pathogens through different mechanisms, thereby achieving biological control of plant diseases. Many Burkholderia strains can produce complex secondary metabolites and substances that have toxic effects on host cells. The phage tail-like bacteriocins (tailocins) is a compound with antibacterial [...] Read more.
Microorganisms exert antagonistic effects on pathogens through different mechanisms, thereby achieving biological control of plant diseases. Many Burkholderia strains can produce complex secondary metabolites and substances that have toxic effects on host cells. The phage tail-like bacteriocins (tailocins) is a compound with antibacterial activity. However, its function in B. multivorans has not yet been reported. This article explores the ability of B. multivorans WS-FJ9 to antagonise plant pathogenic fungi and oomycetes, screening the potential tailocins in the strain WS-FJ9 and verifying their function, to reveal its novel antimicrobial mechanisms. We found that WS-FJ9 had strong antagonistic effects on the plant pathogenic fungi Phomopsis macrospore and Sphaeropsis sapinea, and the pathogenic oomycete Phytophthora cinnamomi. The phage tail-like protein Bm_67459 was predicted from the WS-FJ9 strain genome. The Bm_67459 cDNA encoded 111 amino acid sequence, and the relative molecular weight was approximately 11.69 kDa, the theoretical isoelectric point (pI) was 5.49, and it was a hydrophilic protein. Bm_67459 had no transmembrane helix region or signal peptide, and it belonged to the Phage_TAC_7 super family. qRT-PCR results showed that Bm_67459 gene expression was significantly upregulated during contact between WS-FJ9 and P. cinnamomi. The purified Bm_67459 protein significantly inhibited P. cinnamomi mycelial growth at 10 μg·mL−1. In summary, the WS-FJ9 strain had broad-spectrum anti-phytopathogenic activity, and the tailocin Bm_67459 was an important effector against the plant pathogen P. cinnamomi, which helps to reveal the antagonistic mechanism of this strain at the molecular level and provides excellent strain resources for the biological control of plant diseases. Full article
(This article belongs to the Section Antimicrobial Agents and Resistance)
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12 pages, 2953 KB  
Article
The Heterogeneity of Ornamental Plants in Nurseries Increases the Chance of Finding New Hosts for Phytophthora
by Alejandro Soto-Plancarte, Marlene Díaz-Celaya, Gerardo Rodríguez-Alvarado, Yolanda Leticia Fernández-Pavía, Hilda Victoria Silva-Rojas, Martha Elena Pedraza-Santos, Rafael Salgado-Garciglia, Tyler Baldwin Bourret and Sylvia Patricia Fernández-Pavía
J. Fungi 2025, 11(3), 187; https://doi.org/10.3390/jof11030187 - 27 Feb 2025
Cited by 3 | Viewed by 1894
Abstract
The production of ornamental plants in Mexico represents a job-generating activity that has grown in recent years; however, it is adversely affected by phytosanitary issues, notably those induced by Phytophthora. Studies of Phytophthora in ornamental nurseries are scarce in Mexico. The aim [...] Read more.
The production of ornamental plants in Mexico represents a job-generating activity that has grown in recent years; however, it is adversely affected by phytosanitary issues, notably those induced by Phytophthora. Studies of Phytophthora in ornamental nurseries are scarce in Mexico. The aim in this study was to identify Phytophthora species from selected ornamental plant nurseries in Mexico as potential new hosts. Samples of 13 genera diseased plant tissue and soil were collected from eight nurseries in Mexico during 2009–2010. Based on morphology and sequences of ITS rDNA, the 19 isolates obtained were identified as P. cactorum, P. capsici, P. cinnamomi, P. drechsleri, P. kelmanii, P. nicotianae, and P. tropicalis. Additional loci were sequenced to support species determinations within the P. capsici species complex; some of these isolates could not be confirmed as belonging to any described species, and one appeared to be an interspecific hybrid. This is the first report of P. kelmanii in Mexico; this is noteworthy due to being a broad host range, similar to most of the other species encountered. Evidence of nursery-grown plants serving as a Phytophthora vector to a home garden has been reported for the first time in Mexico. Cestrum nocturnum and Solanum ovigerum are new hosts for Phytophthora worldwide. Full article
(This article belongs to the Special Issue Diversity of Microscopic Fungi)
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