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Screening of Some Popular Egyptian Varieties of Some Solanaceous Vegetables Against Root Knot Nematode, Meloidogyne Javanica

Abdel-Mageed, M. A., *1Montasser, S. A.,2El-Mesalamy, A. F.,1Mahmoud, N. A.,1Desoky A.S.S1

1Faculty of Agriculture, Department of Agriculture, Zoology,and Nematol. AlAzhar University, Assiut-71111, Egypt

2Faculty of Agriculture, Department of Agriculture, Zoology,and Nematol. AlAzhar University, Cairo-11884, Egypt

3Faculty of Agriculture,Department of Plant protection (Agricultural Zoology),Sohag University,Sohag 82524, Egypt

Correspondng Author:

Abdel-Mageed, M. A. Faculty of Agriculture, Department of Agriculture, Zoology,and Nematol. Al-Azhar University, Assiut-71111, Egypt.

Copyright:

© 2023 Abdel-Mageed, M. A, this is an open-access article distributed under the Creative Commons Attribution License, which permits unre- stricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

  • Received Date: 15-03-2023   
  • Accepted Date: 12-04-2023   
  • Published Date: 28-04-2023
Abstract Keywords:

Eggplant, Tomato, Pepper, Meloidogyne Javanica, Root-knot nematode.

Abstract

Sixteen cultivars of the following solanaceous vegetables; eggplant varieties. (Balady, Classic, long white and Woman bag), pepper varieties. (Balady, Deer horn, Lamashiar, Mexican, Red sweet zoly, Saudi and Top star) and tomato varieties (AlBasha 1077, Sama, Strain B, Super Cristal and Tomato 935) were tested for their host response to Meloidogyne javanica. According to rating scale based on nematode reproduction, Classic, long white & Woman bag varieties. of eggplant and Top star variety. of pepper were considered as highly susceptible hosts with (Rf) values 18.04, 15.24, 19.82 & 17.30 folds, respectively. While, Balady variety. of eggplant and Strain B variety. of tomato were classified as moderately susceptible hosts to nematode infection with (Rf) values 5.28 and 5.07 folds. Lamashiar variety. of pepper and tomato varieties. Super Cristal, Al-Basha 1077 &Tomato 935were found less susceptible with (Rf) values ranged between 1.07 and 4.83 folds. On the other hand, M. javanica failed to reproduce and multiple on Deer horn variety. of pepper, which was ranked as highly resistant host with (Rf) value 0.59 fold. Whereas, Balady variety. of pepper and Sama variety. of tomato were ranked as resistant hosts. Nematodes could not reproduce, develop, or penetrate the roots of Mexican, Red sweet zoly and Saudi varieties. of pepper, which were ranked as immune hosts to M. javanica infection

Introduction

The family Solanaceae is an economically important family of flowering plants. The family ranges from annual and perennial herbs to vines, or either shrub and trees, including a number of important vegetable crops like tomato, pepper, eggplant, white and red potato, and tomatillo. The family also contains several plants that are considered toxic to humans being such as the weeds jimsonweed, nightshade and mandrake. Many members of the family contain potent alkaloids that are having immense value by considering its nutritional value. The Solanaceae consists of approximately 98 genera and about 2,700 species, with a great diversity in their habitats, morphology and ecology. Solanaceous vegetable crops are important source of vitamin C, A, E, thiamine, niacin, pyridoxine, folacin, minerals and dietary fibers which play a significant role in human nutrition and helps to cope with malnutrition (Devi and Nagar 2017) Nematodes are one of the most diverse phyla in the kingdom of Animalia, probably exceeding all other animal species in sheer abundance (Chitwood & Chitwood 1974). Nematodes are found in almost all terrestrial, aquatic and marine environments. They can be either free living or parasitic, feedingon plants, fungi, and animals (Decraemer & Hunt 2013). The species, which have adapted a plant parasitic lifestyle, pose a significant threat to crop production worldwide (Sikora & Fernàndez 2005) and to solanaceous cultivated in soils of the Nile Valley and reclaimed sandy soils in the desert of Egypt (Mokbel et al.2006; AbdElgawad et al., 2012; AbdElgawad, 2013 and Montasser et al., 2019).

The root knot nematodes consist of sedentary polyphagic root endoparasites (Sharon et al. 2007) and their species are the most destructive plant parasitic nematodes causing large economic losses in crop production (Sasser 1980). More than 100 species of root knot nematode have been reported worldwide (Karssen & Moens 2013). As a result, most solanaceous are invaded by the root knot nematode Meloidogyne spp. infested. According to Mota et al. (2013) nematodes can also form complexes with other pathogens such as Fusarium oxysporum, Rhizoctonia solani and Thielaviopsis basicola. Nowadays, nematologists around the world are looking for alternative control measures to avoid soil pollution with chemical nematicides and the resulting hazardous effects due to its residues. Farmers use resistant rootstocks to manage the nematodes of genus Meloidogyne in modern agricultural trends. Currently, cultivars resistant to M. incognita or M. javanica are species identified by Pinheiro et al (2014) as the most important for vegetable crops. However, other species have gained prominence; They have been found to infect materials resistant to the above species (Pinheiro et al., 2014). Other species pose a major threat to vegetable production due to their high harmful potential, wide range of hosts, and lack of resistant commercial material. Genetic resistance has been considered the best alternative to control phytonematodes due to the low efficiency of chemical control and the search for sources of vital resistance in breeding programs (Hussain et al, 2014 and Liu et al., 2015). Therefore, the aim of the present study is to evaluate the genotypes of some solanaceous vegetables in terms of their response to M. javanica infection.

Materials and Methods

Propagation of Meloidogyne Javanica in Pure

Culture A pure stock culture of the root knot nematode M. javanica was prepared from naturally infected tomato roots collected from an infested field in Assiut province. Individual egg masse with their mature females removed from root tissue. Each egg mass placed in a small glass capsule containing fresh water. The females from which egg masses were taken preserved in 4 % formaldehyde solution in glass capsules for nematode identification. Each egg mass was transferred to a 25 cm pot filled with steam-sterilized sandy loam soil and grown with a seedling of eggplant variety. Balady. Inoculated pots were placed in a greenhouse and watered when needed. After two months of inoculation, infected roots were then chopped and used as sources of inoculation for other series of clean cv. Strain B tomato seedling. By repeating this procedure, enough quantities of inoculation from stock cultures were obtained on eggplant variety. Balady.

Identification of Meloidogyne Species

Species of Meloidogyne were identified on basis of perineal pattern system of mature females. It was achieved by transferring individual mature females on a slide in a drop of hot lacto-phenol solution. The posterior end of each mature female was cut off by using a sharp razor blade and trimmed down to the area showing the pattern. Slides were gently covered with a clean cover slip and sealed with finger polish, (Taylor and Netscher, 1974). All preparations were examined microscopically using an oil immersion lens. Identification of Meloidogyne sp. was established after referring to morphological characteristics given by Chitwood (1949); Taylor & Sasser (1978); Sasser & Carter (1982) and Hartman & Sasser (1985).

Greenhouse Screening Tests

Seeds of the following solanaceous vegetables, four egg plant (Solanum melongena) cultivars; (Balady, Classic, long white and Woman bag, seven pepper (Capsicum annuum L.) cultivars; Balady, Deer horn, Lamashiar, Mexican, Red sweet zoly, Saudi and Top star), andfive tomato (Solanum lycopersicum L.) cultivars; (Al Basha 1077, Sama, Strain B, Super Cristal and Tomato 935) were plantedin 30 cm diameter pots containing mixture of clay and sand soil (1:1 v: v) for two weeks. Pots were then inoculated with approximately 3000 newly hatched juveniles (J2) of M. javanica per plant by pipetting the nematode suspension in five holes around the root system. Each treatment was replicated three times. Non inoculated plants served as a control. All pots were arranged in a randomized block design in a greenhouse. All plants were grown during the normal growing seasons at greenhouse temperature of30  5 Co, for 60 days after planting or 30  5 °C, for 45 days after inoculation, all plants were harvested and removed gently, washed in water and the root of each plant was stained in lacto phenol acid fuchsine (Goodey 1957). Number of juveniles in soil per pot, galls, nematode developmental stages on root, egg masses per root was counted. Eggs of ten randomly selected egg masses of each root system were also counted by sodium hypochlorite. The rate of nematode reproduction was calculated. Plant growth criteria involving length and fresh weight of both roots and shoots were calculated. The percentages of reduction of such parameters of each plant were also determined. The host category of the tested crop cultivars plants infected with the root knot nematode, based to the nematode reproduction (Rf = Pf / Pi) was determined according to Montasser et al. (2017), as follow: (Pf / Pi = 0.0) I = Immune host, (Pf / Pi < 0 xss=removed xss=removed xss=removed xss=re- moved> 15.0) HS= Highly susceptible host.

Result and Discussion

Sixteen local and important solanaceous cultivars belonging to three crop species were tested for their susceptibility and resistance to the infection of the root knot nematode, M. javanica infection Table (1). Eggplant cultivars Classic, Long white & Woman bagand Top star cultivar of pepper were highly susceptible as these cultivars gained the highest values of number of galls, adult female, egg masses per root, eggs per egg mass and rate of nematode reproduction. No significant differences were found on such nematode criteria on such root cultivars when compared with those of the other tested cultivars. Therefore, the calculated values of rates of nematode reproduction were 18.04, 15.24, 19.82 & 17.30 folds, respectively. On Balady cultivar of eggplant and Strain B cultivar of tomato supported the moderately values of nematode criteria, however, the calculated numbers of galls per root and values of rates of nematode reproduction (Rf) were 81 & 69 galls and 5.28 & 5.07 folds, respectively. Also, M. javanica reproduced and multiplied low on Lamashiar cultivar of pepper and tomato cultivar Super Cristal, AlBasha 1077 &Tomato 935 with the number of galls per root and rates of nematode reproduction (Rf) values ranged between 20 & 54 galls and 1.07 & 4.83 folds, respectively. cultivar of pepper and Sama cultivar of tomato. The nematode final population per plant was less than its initial population in these plant cultivars. Thereupon, on such nematode criteria on such root cultivars when compared with those of the other tested cultivars. Therefore, the calculated values of rates of nematode the calculated number of galls and rates of nematode On the other hand, M. javanica failed to reproduce and multiply on Balady reproduction (Rf) on such cultivars were 2 & 9 galls and 0.04 & 0.31folds, respectively. In addition, the evaluation revealed Mexican, Red sweet zoly and Saudi cultivars of pepper as immune (non host) with zero, number of galls per root, nematode juveniles in soil, nematode developmental stages per root, egg masses per root, eggs per egg mass, nematode final population and rate of nematode reproduction. Susceptibility of some eggplant, pepper and tomato cultivars to root-knot nematode, M. javanica infection under greenhouse conditions. Sixteen local and important solanaceous cultivars belonging to three crop species were tested for their susceptibility and resistance to the infection of the root knot nematode, M. javanica infection Table (1). Eggplant cultivars Classic, long white & Woman bagand Top star cultivar of pepper were highly susceptible as these cultivars gained the highest values of number of galls, adult female, egg masses per root, eggs per egg mass and rate of nematode reproduction. No significant differences were found on such nematode criteria on such root cultivars when compared with those of the other tested cultivars. Therefore, the calculated values of rates of nematode reproduction were 18.04, 15.24, 19.82 & 17.30 folds, respectively. On Balady cultivar of eggplant and Strain B cultivar of tomato supported the moderately values of nematode criteria, however, the calculated numbers of galls per root and values of rates of nematode reproduction.

Plants

 

 

Cultivars

 

 

No. galls

/ Root

 

Nematode final population (Pf)

Rate of nematode reprod. (P f / P I)

Plant Fresh weight in (gm.)

Host Category

 

Infected

 

Non-infected

 

Decr. %

 

 

Balady

81 b

15841

5.28

5.24

6.00

12.67

MS

Eggplant

Classic

165 a

54125

18.04

2.50**

4.50

44.44

HS

 

Long white

52 cde

45721

15.24

6.56*

9.90

33.74

HS

 

Woman bag

80 b

59450

19.82

4.86**

12.74

61.85

HS

 

Balady

2 g

126

0.04

5.37

6.93

22.51

HR

 

Deer horn

16 fg

1784

0.59

5.16

6.80

24.12

R

 

Lamashiar

44 de

14496

4.83

1.65*

2.32

28.88

LS

Pepper

Mexican

0 g

0

0.00

8.03

8.30

3.25

I

 

Red sweet zoly

0 g

0

0.00

5.32

5.40

1.48

I

 

Saudi

0 g

0

0.00

3.45

3.50

1.43

I

 

Top star

82 b

51894

17.30

4.99**

9.65

48.29

HS

 

Al-Basha 1077

20 fg

3402

1.13

27.53*

34.37

19.90

LS

 

Sama

9 g

940

0.31

38.16

44.16

13.59

HR

Tomato

Strian-B

69 bc

15201

5.07

14.77**

32.06

53.93

MS

 

Super Cristal

54 cd

4187

1.40

19.86*

39.84

50.15

LS

 

Tomato 935

33 ef

3203

1.07

14.48**

23.84

39.26

LS

Table 1: Susceptibility of some eggplant, pepper and tomato cultivars to root knot nematode, M. javanica infection under greenhouse conditions

Means in each column followed by the same letters are not significantly different by (p≥0.05) according to Duncan's multiple range test.

* Significant at 0.05 level of probability ** highly significant at 0.01 level of probability.

The influence of the root knot nematode, M. javanica on plant growth of fresh weights of shoots and roots of the same cultivars as well as percentage reductions when compared with healthy once were recorded. Plants Fresh weights of Classic, Long white & Woman bag cultivars of eggplant and Top star cultivar of pepper were highly significantly affected by the nematode infection when compared with their controls. The percentage of reductions in plants weights on such cultivars were 44.44, 33.74, 61.85 & 48.29%, respectively. Whereas, the lowest reductions in plants fresh weights were recorded on Mexican, Red sweet zoly and Saudi cultivars of pepper. The collected plant growth parameters (decreased percentage) on such cultivars were 3.25, 1.48 &1.43 %, respectively. hereby, according to rating scale based on nematode reproduction as plant damage, the host category as shown in Table 1. Generally, these results are in accordance with findings of Oka et al. (2004); Gharabadiyan et al. (2012) and Cole et al., (2014). Several authors have studied the inheritance of the resistance reactions of C. annuum lines to root knot nematodes. Hare (1956, 1957) demonstrated that a dominant gene (N) present in cv. Santaka controlled resistance to three different Meloidogyne species, but its efficiency depended upon the nematode isolate and the amount of inoculum (Hare, 1957). Hazarika, (1990); Khan et al. (2002); Basappa, (2005); Buena et al. (2006) and Devi et al. (2015) reported that, if a cultivar is listed as resistant to a species ofroot knot nematode, this does not necessarily mean that the cultivar is resistant to all races of this species and the response of cultivars in some case, may also, very due to environmental factors. Resistance to one species or one race of root knot nematodes may be independent of resistance to other species, races or biotypes (Bommalinga et al., (2013); Okorley et al., (2018) and Rabelo et al., (2018). For example, the genotypes of Capsicum annuum L. var. annuum are resistant based on the reproduction factor, and highly resistant based on the reproduction index to M. javanica while for the M. incognita race 3, six genotypes are resistant and/or highly resistant. No evaluated C. annuum genotype is resistant to M. enterolobii (Soares et al., 2018).

References

  1. Abd-Elgawad, M. M. M., S. S. A. Kabeil, E. Fanelli, and S. Mo- linari. "Different Levels Of Anti-Oxidant Enzyme Activities In Tomato Genotypes Susceptible And Resistant To Root-Knot Nematodes [Diferentes Niveles De Actividad Enzimática An- ti-Oxidante En Genotipos De Tomate Susceptibles Y Resis- tentes A Nematodos Agalladores]." Nematropica (2012): 330- 336.
  2. Abd–Elgawad, Mahfouz MM. "Phytonematode damage, eco- nomic threshold and management with special reference to Egypt." Egyptian Journal of Agronematology 12, no. 1 (2013): 159-176.
  3. Abd-Elgawad, M. M. M., S. S. A. Kabeil, E. Fanelli, and S. Mo- linari. "Different Levels Of Anti-Oxidant Enzyme Activities In Tomato Genotypes Susceptible And Resistant To Root-Knot Nematodes [Diferentes Niveles De Actividad Enzimática An- ti-Oxidante En Genotipos De Tomate Susceptibles Y Resis- tentes A Nematodos Agalladores]." Nematropica (2012): 330- 336.
  4. Basappa, S. S. (2005). Studies on wilt complex of eggplant (solanum melongena l.) and it’s management. Master of Sci- ence (Agricultural University) Dist. Ratnagiri (Maharashtra State) India
  5. Bommalinga, S., T. N. Narasimhamurthy, G. D. Prahalada, and B. M. R. Reddy. "Screening of bell pepper cultivars against root-knot nematode Meloidogyne incognita [(Kofoid and White) Chitwood]." International Journal of Life Sciences Biotechnolo- gy and Pharma Research 2, no. 1 (2013): 225-228.
  6. Chitwood, B. G. "'Root-knot nematodes'. Part 1. A revision of the genus Meloidogyne Goeldi, 1887." (1949): 90-114.
  7. Chitwood, B. G. "'Root-knot nematodes'. Part 1. A revision of the genus Meloidogyne Goeldi, 1887." (1949): 90-114.
  8. Chitwood, Benjamin Goodwin, and May Belle Chitwood. Intro- duction to nematology. No. Revised Ed. 1974.
  9. Cole, A. O.; Starr, J. L. and Fawole, B. (2014). Evaluation of tomato varieties for resistance to Meloidogyne spp. in Nigeria. J. Nematol., 46, Pp. 147
  10. Devi, Th Sunita, and Kshetrimayum Sumita. "Screening of brinjal germplasms against root-knot nematode Meloidogyne incognita." World Journal of Pharmacy and Pharmaceutical Sciences 4, no. 11 (2015): 1300-1303.
  11. Devi, S. and Nagar, A. (2017). Nutritional and Medicinal Prop- erties of Solanaceous Vegetables. Division of vegetable Sci- ence, IARI, New Delhi, 110012.
  12. Gharabadiyan, F., S. Jamali, A. Ahmadiyan Yazdi, and A. Es- kandari. "Source of resistance to root-knot nematode (Meloido- gyne javanica) in tomato cultivars." (2012): 2011-2021.
  13. Goodey, J. Basil. "Hoplolaimus proporicus n. sp.(Hoplolaimi- nae: Tylenchida)." Nematologica 2, no. 2 (1957): 108-113.
  14. Hare, W. W. "Resistance in pepper to Meloidogyne incognita acrita." (1956): 98-104.
  15. Hare, W. W. "Inheritance of resistance to root-knot nematodes in pepper." (1957): 455-59.
  16. Hartman, K. M., and J. N. Sasser. "Identification of Meloidogyne species on the basis of differential host test and perineal pattern morphology." An advanced treatise on Meloidogyne 2 (1985): 69-77.
  17. Hazarika, K. "Pathogenicity and management of Meloidogyne incognita on brinjal (Solanum melongena L.)." M. Sc.(Agri.) Thesis, Assam Agricultural University, Jorhat (1990).
  18. Hussain, Muhammad Arshad, Tariq Mukhtar, and Muhammad Zameer Kayani. "Characterization of susceptibility and resistance responses to root-knot nematode (Meloidogyne incognita) infection in okra germplasm." Pakistan Journal of Agricultural Sciences 51, no. 2 (2014).
  19. Khan, B., A. A. Khan, and M. R. Khan. "Response of some cultivars of pepper, eggplant and tomato to races of root-knot nematodes, Meloidogyne incognita and M. javanica." Indian Journal of Nematology 32, no. 2 (2002): 147-152.
  20. Karssen, G. Moens, M. (2013). Root-knot nematodes. In Perry RN, Moens, M. Plant Nematology, 2nd edition. CAB International, Wallingford, UK.;59-90.
  21. Liu, Bin, Jiaojiao Ren, Yan Zhang, Jingbo An, Mingyuan Chen, Huaimeng Chen, Chong Xu, and Huazhong Ren. "A new grafted rootstock against root-knot nematode for cucumber, melon, and watermelon." Agronomy for sustainable development 35 (2015): 251-259.
  22. Mokbel, A. A., I. K. A. Ibrahim, M. A. M. El-Saedy, and S. E. Hammad. "Plant parasitic nematodes associated with some fruit trees and vegetable crops in northern Egypt." Egypt. J. Phytopathol 34, no. 2 (2006): 43-51
  23. Montasser, S. A., N. A. Mahmoud, A. F. El-Mesalamy, and M. A. A. Abdel-Mageed. "Evaluation of six leguminous crops against the root-knot nematode, Meloidogyne javanica infection." (2017): 79-84.
  24. Montasser, Sayed, A. Anany, and A. Khalifa. "Screening of some potato cultivars for root-knot nematode (Meloidogyne javanica) and reniform nematode (Rotylenchulus reniformis) infection under greenhouse conditions." Egyptian Journal of Agronematology 18, no. 1 (2019): 60-69.
  25. Mota, F. C., G. C. S. Alves, Marc Giband, A. C. M. M. Gomes, F. R. Sousa, V. S. Mattos, V. H. S. Barbosa et al. "New sources of resistance to Meloidogyne incognita race 3 in wild cotton accessions and histological characterization of the defence mechanisms." Plant Pathology 62, no. 5 (2013): 1173-1183.
  26. Oka, Yuji, Rivka Offenbach, and Shimon Pivonia. "Pepper rootstock graft compatibility and response to Meloidogyne javanica and M. incognita." Journal of nematology 36, no. 2 (2004): 137.
  27. Okorley, Benjamin A., Charles Agyeman, Naalamle Amissah, and Seloame T. Nyaku. "Screening Selected Solanum Plants as Potential Rootstocks for the Management of Root-Knot Nematodes (Meloidogyne incognita)." International journal of agronomy 2018, no. 1 (2018): 6715909.
  28. Pinheiro, Jadir B., Giovani Olegario da Silva, Amanda G. Macêdo, Danielle Biscaia, Carlos Francisco Ragassi, Cláudia SC Ribeiro, Sabrina Isabel C. de Carvalho, and Francisco José B. Reifschneider. "New resistance sources to root-knot nematode in Capsicum pepper." Horticultura Brasileira 38 (2020): 33-40.
  29. da Silva Rabelo, Janiquelle, Marcelo de Almeida Guimarães, Carmen Dolores Gonzaga Santos, Benedito Pereira Lima Neto, Ana Régia Alves de Araújo Hendges, Caris dos Santos Viana, Jean Paulo de Jesus Tello, and Hozano de Souza Lemos Neto. "Prospection and production of Solanaceae species resistant to the root knot nematode." African Journal of Agricultural Research 13, no. 16 (2018): 851-857.
  30. Sasser, Joseph Neal, Cathy Cameron Carter, and Albert Lee Taylor. "A guide to the development of a plant nematology program." (1982): v+-21.
  31. Soares, Renato Silva, Edgard Henrique Costa Silva, Roberta Luiza Vidal, Willame dos Santos Candido, Carolina Andrade Franco, Francisco José Becker Reifschneider, and Leila Trevisan Braz. "Response of Capsicum annuum L. var. annuum genotypes to root-knot nematode infection." Chilean journal of agricultural research 78, no. 1 (2018): 78-85.
  32. Sasser, Joseph Neal. "Root-knot nematodes: a global menace to crop production." (1980): 36-41.
  33. Sasser, J. N., & Carter, C. C. (1982). Root-knot nematodes (Meloidogyne spp.): Identification, morphological and physiological variation, host range, ecology, and control. Nematology in the Southern region of the United States. Southern cooperative series bulletin, 276, 21-32. 258.
  34. Sharon, Edna, Ilan Chet, Ada Viterbo, Meira Bar-Eyal, Harel Nagan, Gary J. Samuels, and Yitzhak Spiegel. "Parasitism of Trichoderma on Meloidogyne javanica and role of the gelatinous matrix." European journal of plant pathology 118 (2007): 247-258.
  35. Sikora, Richard A., and Emilio Fernandez. "Nematode parasites of vegetables." In Plant parasitic nematodes in subtropical and tropical agriculture, pp. 319-392. Wallingford UK: CABI publishing, 2005.
  36. Taylor, Albert Lee, and Joseph Neal Sasser. "Biology, identification and control of root-knot nematodes (Meloidogyne species)." (1978): vii+-111.
  37. Taylor, Donald P., and Caspar Netscher. "An improved technique for preparing perineal patterns of Meloidogyne spp." (1974): 268-269.

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