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Keywords = M. enterolobii

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11 pages, 427 KB  
Article
Host Suitability of Winter Cover Crops for Meloidogyne enterolobii
by Churamani Khanal, Sagar GC, Homan Regmi and David Harshman
Agronomy 2026, 16(12), 1171; https://doi.org/10.3390/agronomy16121171 - 16 Jun 2026
Viewed by 310
Abstract
The guava root-knot nematode (Meloidogyne enterolobii) is a highly aggressive species of root-knot nematode that is not manageable with currently existing nematode management methods. This study was conducted to evaluate the suppressive ability of winter cover crops against M. enterolobii. [...] Read more.
The guava root-knot nematode (Meloidogyne enterolobii) is a highly aggressive species of root-knot nematode that is not manageable with currently existing nematode management methods. This study was conducted to evaluate the suppressive ability of winter cover crops against M. enterolobii. Eleven winter cover crops (rye, wheat, barley, triticale, oat, Austrian winter pea, crimson clover, balansa clover, hairy vetch, purple top turnip, and daikon radish) were evaluated against M. enterolobii in a growth room environment. Root-knot nematode-susceptible tomato (Solanum lycopersicum cv. Rutgers) was used as a control. Nematode reproduction on cover crops ranged from 1 to 501,373 eggs/g root, with oat supporting the least nematode reproduction and crimson clover supporting the greatest nematode reproduction. The crops significantly suppressing egg production on roots and second-stage juveniles in the soil relative to the control were oat, winter pea, wheat, barley, rye, and triticale. Hairy vetch, purple turnip, daikon radish, and crimson clover were good hosts, while balansa clover, wheat, winter pea, barley, rye, triticale and oat were poor or non-hosts, with the latter four crops producing substantial biomasses. Employment of these cover crops that suppress or do not support M. enterolobii reproduction while adding substantial biomass to the soil may lead to sustainable nematode management. Full article
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15 pages, 245 KB  
Article
Root-Knot Nematode Resistance Sources for Kenaf: Multi-Genotype Screening Across Five Meloidogyne Species
by Conner C. Austin, Stephen Brooks Parrish, Laís Romero Paula and David G. Clark
Agriculture 2026, 16(3), 351; https://doi.org/10.3390/agriculture16030351 - 1 Feb 2026
Viewed by 774
Abstract
Kenaf (Hibiscus cannabinus) is a versatile fiber crop known for rapid growth and high biomass productivity that is often cultivated in warm-season regions where root-knot nematodes (RKNs) are prevalent. Here, we compared eight kenaf genotypes with Hibiscus acetosella and Hibiscus sabdariffa [...] Read more.
Kenaf (Hibiscus cannabinus) is a versatile fiber crop known for rapid growth and high biomass productivity that is often cultivated in warm-season regions where root-knot nematodes (RKNs) are prevalent. Here, we compared eight kenaf genotypes with Hibiscus acetosella and Hibiscus sabdariffa to evaluate resistance versus susceptibility to five RKN (Meloidogyne spp.) populations in two replicated greenhouse trials. The nematode panel comprised globally dominant species (M. incognita races 2 and 4, M. javanica) and emerging high-impact threats in warm-season systems (M. floridensis and M. enterolobii), which overlap geographically with current and potential kenaf production. Reproduction and galling were quantified using eggs per system, eggs per gram of root, egg masses, gall index, and reproduction factor, and genotypic differences were assessed by nonparametric rank-based tests at α = 0.05. Across nematode species, H. acetosella and H. sabdariffa showed minimal reproduction and galling, whereas most kenaf genotypes were highly susceptible. Susceptibility was most pronounced to M. enterolobii and M. floridensis, and several kenaf lines (‘Whitten’, ‘G 14’, ‘G 32’, ‘Yue 74-3’) had the highest egg counts and near-maximal egg masses and galling. M. incognita race 2 and race 4 produced strong contrasts, with H. acetosella and H. sabdariffa remaining resistant while multiple kenaf lines exhibited heavy reproduction and severe galling. M. javanica followed a similar pattern, with ‘G 32’, ‘Yue 74-3’, ‘Whitten’, ‘G 14’, and ‘74200 I4’ being highly susceptible. These results identify H. acetosella ‘PI 500707’ and H. sabdariffa ‘X17’ as robust donors of RKN resistance and highlight the susceptibility of cultivated kenaf genotypes, underscoring urgent breeding and integrated management needs for kenaf in warm-season production regions. Full article
(This article belongs to the Section Crop Genetics, Genomics and Breeding)
21 pages, 4454 KB  
Article
The Chemical Composition and Nematicidal Activity of Wasabi (Eutrema japonicum) Rhizome Extract Against Meloidogyne enterolobii
by Jiali Wang, Zhiwen Li, Ying Wei, Jiguang Luo, Xiaoli Dou, Meiying Fu, Xiangping Zeng, Bao Wang, Zhixiang Zhao, Huifang Wang and Baibi Zhu
Plants 2025, 14(21), 3310; https://doi.org/10.3390/plants14213310 - 30 Oct 2025
Cited by 2 | Viewed by 1733
Abstract
Eutrema japonicum is a perennial herb belonging to the Eutrema genus in the crucifer family. In recent years, numerous substances with notable pharmacological activities have been successfully isolated from E. japonicum. Despite significant advancements in related research, the efficacy of the rhizome [...] Read more.
Eutrema japonicum is a perennial herb belonging to the Eutrema genus in the crucifer family. In recent years, numerous substances with notable pharmacological activities have been successfully isolated from E. japonicum. Despite significant advancements in related research, the efficacy of the rhizome extract of E. japonicum against root-knot nematodes remains unknown. In this study, the rhizome extract of E. japonicum was used as raw material to demonstrate the inhibitory and nematicidal effects of the extract on Meloidogyne enterolobii. The results showed that the LC50 of the E. japonicum rhizome extract on second-stage juveniles (J2s) was 69.590 mg/mL and 22.336 mg/mL at 24 h and 48 h after treatment, respectively. The mortality rate of J2s reached 88.93% at 48 h post-treatment when the concentration was 200 mg/mL, and the inhibition rate of single-egg hatching reached 88.14%. This study analyzed the chemical composition of the ethanol extract of E. japonicum, and 10 organosulfur compounds and lipid compounds with insecticidal and antibacterial effects were preliminarily screened out. Among them, sec-butyl isothiocyanate and geraniol were further investigated for their nematicidal activity, demonstrating high efficacy against M. enterolobii. Moreover, we conducted network pharmacology analysis and RT-qPCR analysis to predict the potential inhibitory mechanisms of sec-butyl isothiocyanate and geraniol on M. enterolobii. These findings offer a scientific foundation and theoretical framework for utilizing E.japonicum as a potential raw material for developing novel natural plant nematicides. Full article
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19 pages, 4130 KB  
Article
The Effect of Host-Induced Me-chs-1 Gene Silencing on the Pathogenicity of Meloidogyne enterolobii
by Shanquan Duan, Jinying Gu, Xuelan Wang, Wentao Wu, Songmei Chen, Yuezhang Guan, Qian Gao and Yang Wang
Horticulturae 2025, 11(10), 1265; https://doi.org/10.3390/horticulturae11101265 - 20 Oct 2025
Viewed by 1260
Abstract
Meloidogyne enterolobii, is a devastating pathogen capable of overcoming conventional resistance genes. This study presents the first investigation into targeting the chitin synthase gene Me-chs-1 in M. enterolobii using host-induced gene silencing (HIGS). Our results demonstrate that HIGS effectively suppresses Me-chs-1 expression, [...] Read more.
Meloidogyne enterolobii, is a devastating pathogen capable of overcoming conventional resistance genes. This study presents the first investigation into targeting the chitin synthase gene Me-chs-1 in M. enterolobii using host-induced gene silencing (HIGS). Our results demonstrate that HIGS effectively suppresses Me-chs-1 expression, leading to a drastic reduction in nematode reproductive capacity, with the most effective transgenic line showing over 82% decrease in total egg production. Additionally, notable developmental deformities were observed in the nematodes. This study confirms Me-chs-1 as a promising target for controlling M. enterolobii and lays a solid foundation for developing novel resistance breeding strategies and eco-friendly nematicides. Full article
(This article belongs to the Special Issue Biological and Integrated Pest Management of Horticulture Crops)
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19 pages, 1545 KB  
Review
Emerging Threat of Meloidogyne enterolobii: Pathogenicity Mechanisms and Sustainable Management Strategies in the Context of Global Change
by Mingming Shi, Rui Liu, D. U. Nilunda Madhusanka, Yonggang Liu, Ning Luo, Wei Guo, Jianlong Zhao, Huixia Li and Zhenchuan Mao
Microbiol. Res. 2025, 16(8), 165; https://doi.org/10.3390/microbiolres16080165 - 22 Jul 2025
Cited by 7 | Viewed by 3676
Abstract
Meloidogyne enterolobii, a highly virulent and broad-host-range plant-parasitic nematode, poses an increasing threat to global agricultural production. By inducing the formation of nutrient-rich giant cells in host roots and deploying a diverse array of effector proteins to modulate plant immune responses, this [...] Read more.
Meloidogyne enterolobii, a highly virulent and broad-host-range plant-parasitic nematode, poses an increasing threat to global agricultural production. By inducing the formation of nutrient-rich giant cells in host roots and deploying a diverse array of effector proteins to modulate plant immune responses, this nematode achieves efficient colonization and invasion, resulting in impaired crop growth and significant economic losses. In recent years, global climate warming combined with the rapid development of protected agriculture has broken the traditional geographical limits of tropical and subtropical regions, thereby increasing the risk of M. enterolobii occurrence in temperate and high-latitude areas. Concurrently, conventional chemical control methods are increasingly limited by environmental pollution and the development of resistance, steering research toward green control strategies. This review systematically summarizes the latest research progress of M. enterolobii in terms of ecological diffusion trends, pathogenic mechanisms, and green control, and explored the feasibility of integrating multidisciplinary technologies to construct an efficient and precise control system. The ultimate aim is to provide theoretical support and technical supports for green and sustainable development of global agriculture. Full article
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13 pages, 1974 KB  
Article
Development of Enzyme-Mediated Duplex Exponential Amplification Assay for Detection and Identification of Meloidogyne enterolobii in Field
by Bingxue Sun, Bo Gao, Rongyan Wang, Shulong Chen, Xiuhua Li, Yonghao Dong and Juan Ma
Microorganisms 2025, 13(6), 1353; https://doi.org/10.3390/microorganisms13061353 - 11 Jun 2025
Cited by 5 | Viewed by 1245
Abstract
The root-knot nematode Meloidogyne enterolobii has emerged as a devastating pathogen in global agricultural systems. Its geographic distribution is progressively expanding from tropical to temperate zones, leading to difficulties in discerning the symptoms it causes from those of congeners such as M. incognita [...] Read more.
The root-knot nematode Meloidogyne enterolobii has emerged as a devastating pathogen in global agricultural systems. Its geographic distribution is progressively expanding from tropical to temperate zones, leading to difficulties in discerning the symptoms it causes from those of congeners such as M. incognita. Currently, some molecular diagnostic technologies (e.g., qPCR) have been established for detecting M. enterolobii, but these methods fail to meet field-based detection demands due to their reliance on laboratory-grade thermocyclers. We thus developed a method for detecting M. enterolobii based on enzyme-mediated duplex exponential amplification (EmDEA) technologies to address this issue. The EmDEA detection method demonstrated strict specificity for the target species, showing no amplification in 13 non-target nematodes or host tissue samples. Sensitivity analyses revealed detection limits of 3.6 × 10−4 ng/μL (purified DNA), 1/1000 of an individual nematode (single-organism detection), 8.97 nematodes/g sweet potato, and 4.08 nematodes/100 g soil, achieving equivalent performance to qPCR. Field validation confirmed successful on-site detection, with significantly higher nematode loads in root tissues (50.41–97.62 nematodes/g) than in rhizospheric soil (1.07–1.28 nematodes/g). The established detection method employs a 42 °C isothermal amplification technology paired with a palm-sized thermal module, enabling field-deployable detection. Its unique duplex exponential amplification mechanism achieves threshold determination 10 cycles (~10 min) faster than conventional qPCR. When integrated with rapid DNA extraction protocols, the entire workflow is completed within 40 min, improving detection efficiency. This study provides a molecular tool for the precise monitoring of M. enterolobii, offering critical support for formulating targeted control strategies. Full article
(This article belongs to the Special Issue Microorganisms in Agriculture, 2nd Edition)
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18 pages, 4090 KB  
Article
Spice Defense: Resistance, Capsaicin, and Photosynthesis in Diverse Capsicum Genotypes Under Root-Knot Nematode Stress
by Kansiree Jindapunnapat, Pornthip Sroisai, Nichaphat Auangaree, Nawarat Pornsopin, Suchila Techawongstien and Tanyarat Tarinta
Horticulturae 2025, 11(6), 607; https://doi.org/10.3390/horticulturae11060607 - 29 May 2025
Cited by 2 | Viewed by 2485
Abstract
Meloidogyne enterolobii is an aggressive root-knot nematode that poses a significant threat to global chili (Capsicum spp.) production. This study evaluated the resistance levels, physiological responses, and capsaicin accumulation patterns of diverse Capsicum genotypes—including C. annuum, C. chinense, C. frutescens [...] Read more.
Meloidogyne enterolobii is an aggressive root-knot nematode that poses a significant threat to global chili (Capsicum spp.) production. This study evaluated the resistance levels, physiological responses, and capsaicin accumulation patterns of diverse Capsicum genotypes—including C. annuum, C. chinense, C. frutescens, and C. baccatum—under nematode-infested and non-infested conditions. Resistance was assessed using the gall index (GI), egg per g of root, and reproductive factor (Rf). Among these evaluated parameters, Rf and egg count consistently reflected nematode reproductive success, whereas the GI proved less reliable for resistance classification. Several genotypes—notably from C. chinense and C. frutescens—exhibited strong resistance (Rf < 1), suggesting their potential for nematode-infection cultivar development. Physiological assessments revealed variable photosynthetic responses, with some genotypes showing increased photosynthetic rates of post-infection, indicating potential compensatory mechanisms. In contrast, capsaicin accumulation was influenced by nematode stress and genetic background, indicating their roles in capsaicin biosynthesis. These findings highlight the genotype-specific biochemical and physiological responses of Capsicum species to M. enterolobii infection and underscore the value of integrating physiological, biochemical, and molecular data in breeding programs. Future research should focus on dissecting hormonal signaling pathways and post-infection metabolic shifts to accelerate the development of robust, high-yielding cultivars with durable resistance. Full article
(This article belongs to the Section Plant Pathology and Disease Management (PPDM))
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12 pages, 228 KB  
Article
Effect of Non-Fumigant Nematicides on Reproduction of Recently Detected Meloidogyne Species in Georgia Under Greenhouse Conditions in Tomato
by Nabin Poudel, Luis Torres, Richard F. Davis, Ganpati B. Jagdale, Theodore McAvoy and Intiaz A. Chowdhury
Horticulturae 2025, 11(1), 36; https://doi.org/10.3390/horticulturae11010036 - 3 Jan 2025
Cited by 1 | Viewed by 3099
Abstract
Root-knot nematodes (Meloidogyne spp.; RKNs) are among the most destructive soil-borne pathogens affecting tomato production. Recently, aggressive species such as M. enterolobii, M. floridensis, and M. haplanaria have been reported in several tomato fields across the southern United States. Host [...] Read more.
Root-knot nematodes (Meloidogyne spp.; RKNs) are among the most destructive soil-borne pathogens affecting tomato production. Recently, aggressive species such as M. enterolobii, M. floridensis, and M. haplanaria have been reported in several tomato fields across the southern United States. Host resistance in tomato, effective against commonly prevalent M. incognita, is ineffective against these emerging species, making chemical nematicides the primary management approach. However, studies on the efficacy of chemical nematicides on these emerging RKN species remain limited. This study evaluated the efficacy of four non-fumigant nematicides—fluazaindolizine, fluensulfone, fluopyram, and oxamyl—on the reproduction of these emerging species and M. incognita. Fluensulfone consistently suppressed nematode reproduction by over 90.0% across all species. Fluopyram reduced reproduction by over 50.0% in most species but was less effective against M. enterolobii, with suppression of only 24.3%. Similarly, fluazaindolizine suppressed egg counts by more than 50.0% across all species except M. enterolobii, where it suppressed only 41.1%. Oxamyl suppressed egg counts in M. floridensis and M. incognita by more than 50.0%, but reductions in M. enterolobii and M. haplanaria were lower at 23.2% and 38.7%, respectively. These results highlight species-specific differences in nematicide efficacy and provide a crucial baseline for future research for the management of specific RKN species. Full article
(This article belongs to the Section Plant Pathology and Disease Management (PPDM))
9 pages, 1381 KB  
Article
Biocontrol Efficacy of Bacillus thuringiensis Strain 00-50-5 Against the Root-Knot Nematode Meloidogyne enterolobii in Pepper
by Yanfang Sun, Yuan Guo, Yueling Pei, Yuan Chen, Tuizi Feng and Haibo Long
Agriculture 2024, 14(11), 1920; https://doi.org/10.3390/agriculture14111920 - 29 Oct 2024
Cited by 2 | Viewed by 2747
Abstract
The root-knot nematode Meloidogyne enterolobii is a major constraint to pepper production in tropical regions. In the long-term practice of root-knot nematode management, bacterial nematicides have attracted increasing attention as effective biocontrol agents. In this study, we evaluated the efficacy of Bacillus thuringiensis [...] Read more.
The root-knot nematode Meloidogyne enterolobii is a major constraint to pepper production in tropical regions. In the long-term practice of root-knot nematode management, bacterial nematicides have attracted increasing attention as effective biocontrol agents. In this study, we evaluated the efficacy of Bacillus thuringiensis strain 00-50-5 (Bt 00-50-5) against M. enterolobii through in vitro, greenhouse and field trials. The cell-free supernatant of Bt 00-50-5 exhibited potent nematicidal activity against second-stage juveniles (J2s) of M. enterolobii, with mortality rates of 98.0% and 100% after 24 h and 36 h of exposure, respectively. In addition, Bt 00-50-5 showed inhibitory effects on the hatching of M. enterolobii eggs, resulting in a remarkable 96.6% reduction in the egg hatching rate after 6 days compared to the control. The pot trials showed that both pepper root galls and egg masses were reduced, and plant growth was improved after treatment with Bt 00-50-5. The field trials showed that the gall index was significantly reduced, with a 66.3% and 68.2% reduction in disease index in 2020–2021 and 2021–2022, respectively, and pepper yield was improved, with a 96.2% and 93.1% increase in yield in 2020–2021 and 2021–2022, respectively, compared to the control. These results indicate the potential use of Bt 00-50-5 as an effective biocontrol agent against M. enterolobii. Full article
(This article belongs to the Section Crop Protection, Diseases, Pests and Weeds)
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14 pages, 3054 KB  
Article
An Improved Phenotyping Method for Evaluation of Yam (Dioscorea spp.) Resistance to Nematodes Belonging to the Genera Meloidogyne and Scutellonema
by Yao A. Kolombia, P. Lava Kumar, Antonio J. Lopez-Montes, Abiodun O. Claudius-Cole, Norbert G. Maroya, Nicole Viaene, Wim Bert and Danny L. Coyne
Plants 2024, 13(9), 1175; https://doi.org/10.3390/plants13091175 - 23 Apr 2024
Cited by 4 | Viewed by 2349
Abstract
Phenotyping yam (Dioscorea spp.) germplasm for resistance to parasitic nematodes is hampered by the lack of an efficient screening method. In this study, we developed a new method using rooted yam vine cuttings and yam plantlets generated from semi-autotrophic hydroponics (SAHs) propagation [...] Read more.
Phenotyping yam (Dioscorea spp.) germplasm for resistance to parasitic nematodes is hampered by the lack of an efficient screening method. In this study, we developed a new method using rooted yam vine cuttings and yam plantlets generated from semi-autotrophic hydroponics (SAHs) propagation for phenotyping yam genotypes for nematode resistance. The method was evaluated using 26 genotypes of D. rotundata for their reaction to Scutellonema bradys and four root-knot nematode species, Meloidogyne arenaria, M. enterolobii, M. incognita, and M. javanica. Yam plantlets established in nursery bags filled with steam-sterilized soil were used for screening against single nematode species. Plants were inoculated four weeks after planting and assessed for nematode damage eight weeks later. A severity rating scale was used to classify genotypes as resistant, tolerant, or susceptible determine based on the nematode feeding damage on tubers and the rate of nematode multiplication in the roots of inoculated plants. The results demonstrated putative resistance and tolerance against S. bradys in 58% of the genotypes and 88%, 65%, 65%, and 58% against M. arenaria, M. javanica, M. incognita, and M. enterolobii, respectively. The method is rapid, flexible, and seasonally independent, permitting year-round screening under controlled conditions. This method increases the throughput and speed of phenotyping and improves the selection process. Full article
(This article belongs to the Section Plant Protection and Biotic Interactions)
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21 pages, 7820 KB  
Article
Growth, Physiological, and Biochemical Variations in Tomatoes after Infection with Different Density Levels of Meloidogyne enterolobii
by Aatika Sikandar, Fangcao Wu, Heliang He, Rana Muhammad Kaleem Ullah and Haiyan Wu
Plants 2024, 13(2), 293; https://doi.org/10.3390/plants13020293 - 18 Jan 2024
Cited by 16 | Viewed by 3459
Abstract
Meloidogyne enterolobii is an extremely important plant parasitic nematode. Tomato (Solanum lycopersicum) is an essential worldwide vegetable, and M. enterolobii poses a major threat to its production. The present research investigated the effects of different levels of inoculum density of M. [...] Read more.
Meloidogyne enterolobii is an extremely important plant parasitic nematode. Tomato (Solanum lycopersicum) is an essential worldwide vegetable, and M. enterolobii poses a major threat to its production. The present research investigated the effects of different levels of inoculum density of M. enterolobii (100, 500, 1000, 1500, and 2000 second-stage juveniles (J2s)/plant) on tomato growth, physiological, and biochemical changes at 7, 14, 21, and 28 days post-inoculation (dpi). The negative impact of M. enterolobii on plants gradually increased when the inoculum level increased. Therefore, M. enterolobii population densities (500–2000 J2s/plant) significantly (p < 0.05) reduced plant growth, photosynthetic pigmentation, gas exchange, and chlorophyll fluorescence compared to control plants, while the low population density (100 J2s/plant) showed very little influence. Furthermore, plants with the highest M. enterolobii inoculum (2000 J2s/plant) exhibited a greater number of egg masses and galls. The inoculum densities of M. enterolobii exhibited a notable correlation with the significant elevation of both malondialdehyde (MDA) and hydrogen peroxide (H2O2) levels, which are recognized as very detrimental stresses in plants. Similarly, a rise in the activity of several defensive antioxidant enzymes, namely superoxide dismutase (SOD), catalase (CAT), and peroxidase (POD), indicates the defensive mechanism used to combat the oxidative destruction produced by M. enterolobii. The specific activity of glutathione (GSH) and ascorbate (ASA) increased as potent antioxidant defense molecules in response to induced oxidative damage. In addition, our findings also demonstrated that the highest population density (2000 J2s/plant) increased the secondary metabolites responsible for scavenging oxidative stress in the plants. However, further research is required to explore the underlying reasons for this phenomenon and to develop efficient chemical or biocontrol strategies for managing M. enterolobii. Full article
(This article belongs to the Special Issue Plant-Parasitic Nematode)
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12 pages, 43137 KB  
Article
As a Transitional Host, Weed Solanum nigrum L. Increases the Population Base of Root-Knot Nematode Meloidogyne enterolobii for the Next Season
by Yueling Pei, Yanfang Sun, Yuan Chen, Tuizi Feng, Haiyan Che and Haibo Long
Agronomy 2024, 14(1), 129; https://doi.org/10.3390/agronomy14010129 - 4 Jan 2024
Cited by 3 | Viewed by 2465
Abstract
The aim of this study was to determine the status of weed Solanum nigrum L. as a transitional host for Meloidogyne enterolobii and its effect on the population base of the nematodes in the next season. The nematode species infecting S. nigrum L. [...] Read more.
The aim of this study was to determine the status of weed Solanum nigrum L. as a transitional host for Meloidogyne enterolobii and its effect on the population base of the nematodes in the next season. The nematode species infecting S. nigrum L. in a fallow field was identified by morphological identification and molecular diagnosis, and parasitic characteristics of the nematodes in S. nigrum L., including development of the nematode in S. nigrum L., the histopathological response of S. nigrum L. to M. enterolobii, and the host suitability of S. nigrum L., were studied. The M. enterolobii soil population density was evaluated before and after S. nigrum L. planting. Species identification revealed that it was M. enterolobii infection. Developmental observation indicated that juveniles of M. enterolobii developed fast in S. nigrum L., establishing feeding sites by 5 days after inoculation (DAI) and forming obvious egg masses on the root at 25 DAI. Histopathological observation showed the typical susceptible response of S. nigrum L., including giant cells with thick cell walls, uniformly dense cytoplasm, and less vacuolation, mainly inside the vascular cylinder. Host suitability assays suggested that S. nigrum L. is a good host for M. enterolobii with an average reproduction factor (RF) of 48.04 ± 14.71. Population densities assays revealed that S. nigrum L. increased the population density of M. enterolobii for two consecutive years from 0.48 ± 0.25 and 0.53 ± 0.31 J2/cm3 to 1.33 ± 0.16 and 1.56 ± 0.43 J2/cm3 of soil. These results indicated that M. enterolobii could reproduce well by infecting S. nigrum L. during the fallow season, and it increased the population base of M. enterolobii to the next season during vegetable production, which suggested a novel direction for the control of root-knot nematodes by controlling weeds as transitional hosts of M. enterolobii in the fallow season. Full article
(This article belongs to the Section Weed Science and Weed Management)
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14 pages, 8531 KB  
Article
Metarhizium carneum Formulations: A Promising New Biological Control to Be Incorporated in the Integrated Management of Meloidogyne enterolobii on Tomato Plants
by Daniel López-Lima, David Alarcón-Utrera, José Ángel Ordáz-Meléndez, Luc Villain and Gloria Carrión
Plants 2023, 12(19), 3431; https://doi.org/10.3390/plants12193431 - 29 Sep 2023
Cited by 9 | Viewed by 3166
Abstract
The increase in the populations of root-knot nematode Meloidogyne enterolobii in various vegetables such as tomatoes grown under greenhouse conditions as well as increasing restrictions on the use of certain chemical nematicides have led to the search for new, effective management strategies, preferably [...] Read more.
The increase in the populations of root-knot nematode Meloidogyne enterolobii in various vegetables such as tomatoes grown under greenhouse conditions as well as increasing restrictions on the use of certain chemical nematicides have led to the search for new, effective management strategies, preferably ones that are sustainable biological alternatives. In this work, two formulations of the nematophagous fungus Metarhizium carneum, one concentrated suspension and one wettable powder, were evaluated under greenhouse conditions to reduce the M. enterolobii infestation in tomato plants. In addition, the effectiveness of the liquid formulation of M. carneum was compared with two biological and three chemical commercial nematicides. The results show that the two M. carneum formulations reduced the M. enterolobii population density by 78 and 66% in relation to the control treatment. In comparison, the liquid formulation of M. carneum and Purpureocillium lilacinum treatments reduced nematode population density by 72 and 43%, respectively, while for metam sodium preplanting applications followed by M. carneum applications during the tomato growth stage, the reduction was 96%. The alternate use of some chemical compounds plus the application of M. carneum as a biocontrol is a good starting strategy for managing M. enterolobii populations. These results confirm that M. carneum is a serious candidate for the short-term commercialization of an environmentally friendly biological nematicide. Full article
(This article belongs to the Special Issue Management of the Root-Knot Nematodes)
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18 pages, 5691 KB  
Article
Efficacy of Aspergillus tubingensis GX3′ Fermentation against Meloidogyne enterolobii in Tomato (Solanum lycopersicum L.)
by Aatika Sikandar, Fukun Gao, Yixue Mo, Qian Chen, Rana Muhammad Kaleem Ullah and Haiyan Wu
Plants 2023, 12(14), 2724; https://doi.org/10.3390/plants12142724 - 21 Jul 2023
Cited by 10 | Viewed by 2939
Abstract
Meloidogyne enterolobii is one of the most virulent root-knot nematodes (RKNs). Aspergillus tubingensis Raoul Mosseray, 1934, is used to produce bioactive substances, enzymes, and secondary metabolites. However, no research has been conducted yet on the efficacy of A. tubingensis against plant-parasitic nematodes. Thus, [...] Read more.
Meloidogyne enterolobii is one of the most virulent root-knot nematodes (RKNs). Aspergillus tubingensis Raoul Mosseray, 1934, is used to produce bioactive substances, enzymes, and secondary metabolites. However, no research has been conducted yet on the efficacy of A. tubingensis against plant-parasitic nematodes. Thus, the novel research was planned to evaluate the biocontrol efficacy of A. tubingensis fermentation against M. enterolobii. The findings showed that egg hatching inhibition and mortality of M. enterolobii increased with increasing concentration of fermentation and exposure time. The maximum second-stage juveniles (J2s) mortality was achieved via 100% fermentation at 72 h. Similarly, 100% fermentation inhibited 99.9% of egg hatching at 8 d. A. tubingensis fermentation increased plant biomass, decreased second-stage juvenile invasion, and inhibited nematode development and reproduction in greenhouse conditions. A. tubingensis reduced J2 invasion into tomato roots by 42.84% with CS+ (coated seeds plants with nematodes inoculum) and 27.04% with T+ (100% fermentation broth and nematodes inoculum both) treatments. Moreover, CS+ and T+ treatments decreased nematode development by 54.31% and 21.48%, respectively. It is concluded that the A. tubingensis GX3 strain can be used as a novel microbial biocontrol agent against M. enterolobii. Full article
(This article belongs to the Section Plant Protection and Biotic Interactions)
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14 pages, 1412 KB  
Article
Standardization of the Optimum Effects of Indole 3-Butyric Acid (IBA) to Control Root Knot Nematode, Meloidogyne enterolobii, in Guava (Psidium guajava L.)
by Ashokkumar Natarajan, Dharani Selvam, Kalaiarasan Palaniappan, Akshaya Subbaiah Balamurali, Chandrasekaran Perumal, Rameshkumar Durai, Shakila Sadasivam, Akino Asokan, Ramadass Sivalingam and Ashok Subiramaniyan
Molecules 2023, 28(4), 1839; https://doi.org/10.3390/molecules28041839 - 15 Feb 2023
Cited by 8 | Viewed by 3589
Abstract
Guava is an important revenue generating crop for small, medium, and commercial guava cultivators all over the world. Nematode infestation is one of the factors that cause declines in fruit production. Researches have proven that the application of plant growth regulators induces the [...] Read more.
Guava is an important revenue generating crop for small, medium, and commercial guava cultivators all over the world. Nematode infestation is one of the factors that cause declines in fruit production. Researches have proven that the application of plant growth regulators induces the synthesis of defense-related proteins in Guava. IBA is one such plant growth regulator, and its effects on guava plants has not yet been elucidated. Thus, this research is focused on the optimization of IBA concentrations, which results in the induction and production of maximum defense-related proteins to defend against root knot nematode. The present study includes the application of IBA on M. enterolobii-infested experimental guava plants at different concentrations ranging from 100 ppm to 2000 ppm. The synthesis of defense-related proteins is identified with 1000 ppm of IBA. At this concentration, IBA influences the morphological, physiological, and biochemical characteristics and enhances the induction of defense-related proteins in M. enterolobii-infested experimental guava plants. Thus, 1000 ppm of IBA prevents nematode infestation in Lucknow-49 guava plants. Full article
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