Meloidogyne enterolobii development and reproduction in tomato plants treated with resistance inducers

Nematology ◽  
2021 ◽  
pp. 1-6
Author(s):  
Juliana de O. Silva ◽  
Camilla M. Oliveira ◽  
Renê G. da S. Carneiro ◽  
Mara R. da Rocha

Summary Meloidogyne enterolobii is a species capable of overcoming plant resistance moderated by the Mi-1 gene, which is effective against most species of root-knot nematode. This study evaluated the effect of induced resistance in tomato plants (Solanum lycopersicum ‘H-9553’) with the Mi-1 gene against the development and reproduction of M. enterolobii. Seedlings of tomato ‘H-9553’ were transplanted into pots, inoculated with 2000 eggs and second-stage juveniles (J2) of M. enterolobii and treated with Acibenzolar-S-Methyl, Bacillus subtilis, B. subtilis + B. licheniformis + Trichoderma longibrachiatum and extract of Reynoutria sachalinensis. The plants were collected at 5, 10, 15, 20, 25 and 30 days after inoculation (DAI) for the analyses of nematode penetration and development, and at 30 DAI for nematode reproduction. The use of B. subtilis increased fresh root weight when compared to the other treatments (20 DAI). There was a reduction in penetration of J2 in the roots of plants subjected to different resistance inducers. The population density of M. enterolobii was significantly reduced only when plants were treated with R. sachalinensis, indicating it as a potential resistance-inducing agent in tomato plants.

Nematology ◽  
2020 ◽  
Vol 22 (2) ◽  
pp. 213-220
Author(s):  
Juliana de O. Silva ◽  
Marcus V. Santana ◽  
Franciele A. Carneiro ◽  
Mara R. da Rocha

Summary Meloidogyne enterolobii is characterised by its aggressiveness and ability to reproduce on plants carrying the Mi resistance gene. However, resistant cultivars and resistance induction may be alternatives to keep the pest population at levels that do not cause economic damage. The aim of this study was to evaluate the reaction of tomato genotypes to M. enterolobii and test the efficacy of resistance inducers in four tomato genotypes. Twenty-one tomato genotypes were inoculated with 2000 eggs of M. enterolobii and evaluated after 35 days of inoculation. All genotypes tested were susceptible to M. enterolobii. Four tomato genotypes were selected and the plants were treated with Bacillus subtilis, B. licheniformis + B. subtilis + Trichoderma longibrachiatum, Acibenzolar-S-methyl (ASM) and extract of Reynoutria sachalinensis. The plants treated with B. subtilis showed higher shoot and root weight. ASM reduced the reproduction factor of M. enterolobii when applied to the genotype ‘PXT 408’. All tomato genotypes tested here are susceptible to M. enterolobii, thus confirming the ability this plant-parasitic nematode to reproduce on resistant plants with the Mi gene. The resistance inducers B. subtilis, B. licheniformis + B. subtilis + T. longibrachiatum and extract of R. sachalinensis did not influence the final nematode population in any of the genotypes used; however, ASM reduces reproduction of M. enterolobii to the genotype ‘PXT 408’.


Revista CERES ◽  
2018 ◽  
Vol 65 (3) ◽  
pp. 291-295 ◽  
Author(s):  
Fernando Marcelo Chiamolera ◽  
Antonio Baldo Geraldo Martins ◽  
Pedro Luiz Martins Soares ◽  
Tatiana Pagan Loeiro da Cunha-Chiamolera

ABSTRACT Root-knot nematode Meloidogyne enterolobii is the main phytosanitary problem of guava cultivation in Brazil. Among the strategies to manage the problem, the best prospects are in identifying or developing cultivars or rootstocks that are resistant to this nematode. To identify plants with potential as rootstocks for guava, the reaction of araçá (wild guava) to M. enterolobii was assessed in a greenhouse experiment. Seven araçá species were evaluated (Eugenia stipitata, Psidium acutangulum, P. cattleyanum ‘yellow’, P. friedrichsthalianum, P. guajava var. minor, P. guineense, and Psidium sp.). The plants were inoculated with a suspension of 3,000 eggs of M. enterolobii, using eggplant as control treatment. The parameters fresh root mass, number of eggs and second stage juveniles (J2) per root system, the reproduction factor (RF = Pf/Pi), and araçá reaction were determined during the experiment. RF of the araçá species E. stipitata, P. cattleyanum ‘yellow’, and P. friedrichsthalianum was less than one (RP < 1), therefore resistant to M. enterolobii. The araçá trees had good root system development and the susceptible plants showed many root galls, high number of eggs and J2, and Fusarium solani and Rhizoctonia solani root rot. The araçá species, P. cattleyanum ‘yellow’, P. friedrichsthalianum, and E. stipitata are resistant to M. enterolobii and can be tested as potential guava rootstocks.


Nematology ◽  
2011 ◽  
Vol 13 (5) ◽  
pp. 509-520 ◽  
Author(s):  
Tushar K. Dutta ◽  
Stephen J. Powers ◽  
Brian R. Kerry ◽  
Hari S. Gaur ◽  
Rosane H.C. Curtis

AbstractThe rice root-knot nematode Meloidogyne graminicola normally infects rice, wheat and several other graminaceous plants. Meloidogyne incognita is a serious pest of dicotyledonous crops, although it can infect and reproduce on some cereals. This paper demonstrates and compares host recognition, development and reproduction of these two species of root-knot nematodes on rice and tomato plants. Attraction bioassays in pluronic gel clearly showed that M. incognita preferred tomato roots to rice or mustard roots, whilst M. graminicola was more attracted towards rice compared with tomato or mustard roots. Based on the attraction data from this study, it can be hypothesised that either: i) the blend of attractants and repellents are different in good and poor hosts; or ii) relatively long-range attractants, together with shorter-range repellents, might affect nematode movement patterns. Some host specific attractants might also be involved. Meloidogyne incognita was able to invade and develop to adult female but did not produce eggs in rice roots. By contrast, M. graminicola developed and reproduced faster on both rice and tomato plants compared with M. incognita. Nevertheless, second-stage juveniles of both these root-knot nematodes showed a similar pattern of distribution inside the roots, preferring to accumulate at the root tips of rice or in the vascular cylinder and cortical region of tomato.


Author(s):  
Jadir Borges Pinheiro ◽  
Giovani Olegario da Silva ◽  
Jhenef Gomes de Jesus ◽  
Danielle Biscaia ◽  
Raphael Augusto de Castro e Melo

The objective of this work was to prospect sources of resistance to root-knot nematode Meloidogyne enterolobii in Solanum species with potential to be used as rootstocks for cultivated Solanaceae. Nine accessions of Solanum sessiliflorum, 27 accessions of S. lycocarpum, 21 accessions of S. acanthodes, 22 accessions of S. scinericum and 26 accessions of S. scuticum for resistance to M. enterolobii. Rutgers and Nemadoro tomatoes were used as susceptible and resistant controls, respectively. The experiment was conducted in a greenhouse at Embrapa Vegetables, Brasília-DF, Brazil, in a completely randomized design with six replications. The experimental unit was a represented by a single plant grown in a plastic pot containing 3 L of substrate. 4000 eggs and eventual juveniles of second stage M. enterolobii were inoculated per pot. At 119 days after inoculation, gall index (Gi), egg mass index (EMI), number of eggs per root gram (NE) and reproduction factor (Fr) were evaluated. Data were subjected to analysis of variance and grouping of treatments by Scott-Knott. It was verified that S. acanthodes and S. Lycocarpum are species with high resistance to M. enterolobii, with accessions being classified identified as immune. S. scuticum also has great potential, as several resistant accessions were identified, although some accessions were quite susceptible; whereas for S. subinerme only 4 resistant accessions were identified, although all others presented a reproduction factor much lower than tomato cv. Nemadoro as control; and all evaluated S. sessiliflorum accessions were susceptible.


2019 ◽  
Vol 32 (2) ◽  
pp. 419-428
Author(s):  
PATRÍCIA GOMES DE OLIVEIRA ◽  
MANOEL ABILIO DE QUEIRÓZ ◽  
JOSÉ MAURO DA CUNHA E CASTRO ◽  
JULIANA MARTINS RIBEIRO ◽  
RONALDO SIMÃO DE OLIVEIRA ◽  
...  

ABSTRACT Meloidogyne enterolobii associated with Fusarium solani causes the guava decay, which is the main factor of yield loss in guava crops and limits guava production in Brazil. Therefore, searching for guava genotypes (Psidium spp.) with resistance to M. enterolobii is important to control this root-knot nematode. The objective of the present work was to evaluate the reaction of Psidium spp. accessions from the Germplasm Bank of the Bahia State University (UNEB) to different levels of inoculation with M. enterolobii. Guava seedlings were inoculated with 600, 1,600, and 2,000 eggs + J2 second stage juveniles of M. enterolobii and the root fresh weight, total number of eggs (TNE), and reproduction factor (RF) were evaluated. The results were subjected to ANOVA and means were clustered using the Scott-Knott test at 5% probability. The diversity of accessions was estimated using the Tocher's clustering and UPGMA methods. The nematode RF reduced in some accessions with increasing inoculation levels of the nematode. However, the RF increased in some accessions with high levels of inoculation. Plants of the Y50 accession were immune or resistant to M. enterolobii, indicating variability of reaction of plants to the nematode within the Psidium genus. The resistance of Psidium accessions to M. enterolobii needs to be measured with different inoculation levels to verify the existence of false-positive results, since the evaluated accessions, including the Paluma cultivar, presented distinct reactions regarding RF in the three levels of inoculation used.


Plant Disease ◽  
2021 ◽  
Author(s):  
Aminat Korede Oyetunde ◽  
Yao Kolombia ◽  
Omowumi B Adewuyi ◽  
Steve Olaoluwa Afolami ◽  
Daniel Leigh Coyne

Meloidogyne enterolobii is a highly polyphagous tropical species of root knot nematode. It has been recorded to be causing major damage to a range of economically important crops and is increasingly recorded from new locations. The morphological similarity and overlap of characteristics with other commonly occurring species, especially M. incognita, has confused its diagnosis using morphometrics. Cassava (Manihot esculenta) is an important crop across the tropics, including Africa, where it is among the most important root and tuber crop for food security. Cassava can be heavily infected by root knot nematodes, which can incur heavy production losses. The main species known to affect cassava are M. incognita and M. javanica (Coyne and Affokpon, 2018). With the exception of one report of M. enterolobii morphologically identified from cassava roots during a survey in Brazil (Rosa et al., 2014), there is no record with molecular confirmation of it infecting the crop. In the absence of any molecular or isozyme confirmation, diagnosis of M. enterolobii is difficult to determine. In the current study, the species responsible for substantial galling damage (Fig. 1A) on several cassava roots growing in Ibadan, Nigeria (7°22′39″ N; 3°54′21″ E) were diagnosed. DNA isolated from juveniles recovered using a modified Baermann method (Hooper, 1986) from these roots was used for PCR amplification of the mitochondrial Nad5 using primer pair, NAD5F2 (5’-TATTTTTTGTTTGAGATATATTAG-3’) and NAD5R1 (5’-CGTGAATCTTGATTTTCCATTTTT-3’). The 515 bp PCR DNA product was sequenced on both strands (GenBank Accession No. MW965454) and found to be 100% identical to M. enterolobii with those in the DNA sequence database (KU372358, KU372359) (Janssen et al., 2016; Kolombia et al., 2017). In addition, M. incognita was also recovered from the galled roots and identified using the same primers (GenBank Accession No. MW965455) indicating a combined species infection (Fig. 2). Cultures of M. enterolobii, developed from single egg masses were maintained on tomato plants and used to assess infection on cassava in 10 L pots filled with steam sterilized loam soil in the screenhouse. Cassava cv. IITA-TMS-IBA070593 cuttings planted in June, 2018 and repeated in April, 2019 were inoculated with 1,000 juveniles per pot at three weeks after planting, and then maintained for four months before quantifying the nematode densities in both roots and soil. Nematode reproduction factor (RF), calculated from total nematode densities (n=8) from soil and roots was as high as 44.3, compared to uninoculated controls. Molecular diagnostics of M. enterolobii, as above, confirms unequivocally the host status of cassava to this nematode. This study reports for the first time the infection of cassava by M. enterolobii under field conditions in Africa and for the first time demonstrates the host suitability of cassava to this nematode (Fig. 1B). M. enterolobii is among the most commonly occurring root-knot nematode species in West Africa (dos Santos et al., 2019). It is therefore anticipated that M. enterolobii has long been infecting, especially in West Africa, but has been overlooked due to its morphological similarity with M. incognita. Given the high reproductive ability of M. enterolobii on cassava and its highly aggressive nature on a range of crops, it is likely that it is causing, or will result in, high levels of losses on cassava in Africa.


2016 ◽  
Vol 6 (1) ◽  
pp. 23-33
Author(s):  
L. D. Amarasinghe ◽  
N. W. Premachandra

This study was conducted to determine the nematicidal effect of aqueous extractions of dry plant materials, Tithonia diversifolia, Gliricidia sepium and Tagetes erecta on juveniles of Meloidogyne incognita (Kofoid and White) and to determine the effect of dry leaves of wild sunflower, dry leaves of Gliri-cidia, and dry plant parts of marigold as cover crops on the growth of potted tomato, Lycopersicon esculentum (Mill.) infested with M. incognita. Nemati-cidal effect of aqueous extracts of T. diversifolia, G. sepium and T. erecta (20 g/ 100 mL w/v) were evaluated at 0.05 g/mL, 0.1 g/mL and 0.2 g/mL concentrations in the laboratory bioassay. Results revealed that 0.1 g/ mL and 0.2 g/ mL concentration of T. erecta and 0.2 g/mL concentration of T. diversifolia were very effective in juvenile mortality by over 50% within 48 hours com-pared to other treatments. T. erecta plant parts were the most effective causing above 70% juvenile mortality in 48 hours. M. incognita infested potted tomato plants supplement with dry plant parts of Marigold (2% w/w) showed; significantly higher number of green leaves (P=0.000, F=10.95); significantly lower number of yellow leaves (P=0.001, F=6.78); significantly high-er plant height (P=0.000, F=8.90), stem diameter (P=0.000, F=11.83), root length (P=0.000, F=14.71) and root weight (P=0.000, F=15.08); significantly lower number of root galls (P=0.000, F=116.74), gall index (P=0.000, F=95.80) and significantly lower population of M. incognita in soil (P=0.000, F=24.78) compared to other treatments. This study concludes that addition of botani-cals as cover crops enhanced plant growth and significantly reduced root-knot infestation in tomato plants.


Plant Disease ◽  
2021 ◽  
Author(s):  
William Rutter ◽  
Phil Wadl ◽  
John David Mueller ◽  
Paula Agudelo

Meloidogyne enterolobii (syn. mayaguensis) is an emergent species of root-knot nematode that has become a serious threat to sweetpotato (Ipomoea batatas) production in the southeastern United States. The most popular sweetpotato cultivars grown in this region are highly susceptible to M. enterolobii. As a result, this pest has spread across most of the sweetpotato growing counties in the Carolinas, threatening the industry as well as other crops in the region. The development and release of new sweetpotato cultivars with resistance to M. enterolobii would help to manage and slow the spread of this pest. To support sweetpotato resistance breeding efforts, 93 accessions selected from the USDA germplasm collection and breeding programs in the United States were screened to identify 19 lines with strong resistance to M. enterolobii. The resistance in these accessions was tested against two M. enterolobii isolates that were collected from sweetpotato production fields in the Carolinas. These isolates were found to have distinct pathotypes, with galling and nematode reproduction differences observed on cotton as well as sweetpotato. This study is the first report of intraspecific pathotypic variation in M. enterolobii and identifies sweetpotato germplasm with resistance against both pathogenic variants of this nematode.


Nematology ◽  
2007 ◽  
Vol 9 (6) ◽  
pp. 845-851 ◽  
Author(s):  
Maria Célia Cordeiro ◽  
Regina Carneiro ◽  
Pedro Cirotto ◽  
Luiz de Mesquita ◽  
Maria Ritta Almeida ◽  
...  

AbstractAn obligate parasite bacterium of the root-knot nematode, Pasteuria penetrans strain P10, isolated from Meloidogyne incognita females on banana roots in Imperatriz Maranhão State, Brazil, was evaluated in glasshouse conditions, using two doses of a dry root bionematicide (107 endospores (5.0 g/seedling) and 106 endospores (0.5 g/seedling)) on seedlings of cv. Mundo Novo coffee. The soil in which coffee seedlings were raised was inoculated previously with these two doses of P. penetrans and after 2 months the plants were transferred to soils of different textures: clay-sandy soil (38% clay, 2% silt and 60% sand) and sandy soil (17% clay, 0% silt and 83% sand). When the coffee plants were 30 cm high, they were inoculated with 20 000 eggs/plant of M. incognita race 1. The coffee plants were examined 8, 16 and 24 months after nematode plant infestation. The effectiveness of the biological control was determined by the reduction of nematode reproduction factor, which ranged from 62 to 67% in clay-sandy soil and 80 to 85% in sandy soil. The mechanism of suppression caused by the bacterium was evaluated by the percentage of infected second-stage juveniles (J2), number of endospores attached/J2 and number of infected females. The high levels of suppression were related to time, increasing from 8 to 24 months, and to the percentage of sand in the soil.


2018 ◽  
Vol 12 (12) ◽  
pp. 1829-1836 ◽  
Author(s):  
Francisco José Carvalho Moreira ◽  
◽  
Beatriz de Abreu Araújo ◽  
Francisca Gleiciane do Nascimento Lopes ◽  
Antonio de Assis Lopes de Sousa ◽  
...  

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