Control failures of Fusarium wilt on tomatoes and resistance of cultivars to the three races of the pathogen

Autores

  • Cristiana Maia de Oliveira IFMS
  • Margarida Gorete Ferreira do Carmo UFRRJ
  • Leandro Martins Ferreira IFMS
  • Mayara dos Santos Rocha UFRRJ
  • Caio Soares Diniz UFRRJ
  • Nelson Moura Brasil do Amaral Sobrinho UFRRJ

Palavras-chave:

Solanum lycopersicum, Fusarium oxysporum f. sp. lycopersici, race 3, immunity, partial resistance

Resumo

The use of resistant cultivars is the main strategy to control Fusarium wilt on tomato, caused by Fusarium oxysporum f. sp. lycopersici. This study aimed to quantify the incidence and distribution of this disease in the region of Nova Friburgo, RJ, as well as the type of resistance of tomato cultivars to the three FOL races. Samples of healthy and wilted plants from 40 properties were evaluated for the presence of vascular discouloration. Seventeen tomato cultivars were evaluated for resistance to the three FOL races using a grading scale. Classification for resistance/susceptibility, incidence and percentage of infection of the vascular system, fresh weight accumulation and seedling length were determined. All the cultivars analysed behaved as similar to immune (SI) to race 1 of FOL and similar to immune or partial resistance to race 2. Only Aguamiel cultivar presented a SI reaction to FOL race 3. None of the cultivars presented a SI reaction to the three races. It can be concluded that failures on the control of the disease in this region can be attributed to the majority use of cultivars with incomplete resistance to the three FOL races. The seed packages also contain incomplete information about FOL resistance.

Referências

Agrocinco (2020) Tomate BRS Imigrante. Available at: <http://agrocinco.com.br/produto/brs-imigrante-f1>. Accessed on: August 6th, 2020.

Agristar (2020) Tomate Itaipava F1, Serato F1. Available at: <https://agristar.com.br/topseed-premium/produtos>. Accessed on: August 6th, 2020.

Akram W, Anjum T & Ahmad A (2014) Basal susceptibility of tomato varieties against different isolates of Fusarium oxysporum f. sp. lycopersici. International Journal of Agriculture and Biology, 16:171-176.

Barboza EA, Cabral CS, Gonçalves AM, Reis A, Fonseca M & Boiteux LS (2013) Identification of Fusarium oxysporum f. sp. lycopersici race 3 infecting tomatoes in Northeast Brazil. Plant Disease, 97:422.

Baysal ÖS, Iragusa M, Ikten H, Polat I, Gümrükcü E, Yigit F, Carimi F & Teixeira da Silva JA (2009) Fusarium oxysporum f. sp. lycopersici races and their genetic discrimination by molecular markers in West Mediterranean region of Turkey. Physiological and Molecular Plant Pathology, 74:68-75.

Biju VC, Fokkens L, Houterman PM, Rep M & Cornelissen BJ (2017) Multiple evolutionary trajectories have led to the emergence of races in Fusarium oxysporum f. sp. lycopersici. Applied and Environmental Microbiology, 83:01-20.

Blueseeds (2020) Tomate Caeté. Available at: <http://blueseeds.com.br/ blueseeds/caete/>. Accessed on: August 6th, 2020.

Boix-Ruíz A, Gálvez-Patón L, De Cara-García M, Palmero-Llamas D, Camacho-Ferre F & Tello-Marquina JC (2015) Comparison of analytical techniques used to identify tomato-pathogenic strains of Fusarium oxysporum. Phytoparasitica, 43:471-483.

Booth C (1977) Fusarium - Laboratory guide to the identification of the major species. Kew, Commonwealth Mycological Institute. 58p.

Cantú RR, Rebelo JA, Milanesi PM & Goto R (2014) Reaction and resistance of tomato rootstock to Fusarium wilt. Ciência Rural, 44:1155-1158.

Carrer-Filho R, Dias VD, De Oliveira RM, Dianese EC, Boiteux LS & Da Cunha MG (2016) Detecção simultânea de fatores de resistência à murcha de fusário do tomateiro por meio de PCR multiplex. Pesquisa Agropecuária Brasileira, 51:925-932.

Clause (2020) Tomate Alambra. Available at: <https://www.solucaohi-droponia.com.br/produto/298/duncan-1000-sementes-hm-clause/>. Accessed on: August 6th, 2020.

Dinghra OD & Sinclair JB (2000) Basic plant pathology methods. 2a ed. USA, Lewis Publishers. 448p.

Dordevic M, Vatchev T, Girek Z, Sevic M, Zecevic B, Zdravkovic J & Ivanovic M (2012) Reaction of different tomato cultivars toward race 1 of Fusarium oxysporum f. sp. lycopersici. Genetika, 44:109-118.

Emater-Rio (2020) Relatório por culturas do sistema ASPA/AGROGEO. Available at: <http://www.emater.rj.gov.br/relatorioatividadecorr20. pdf>. Accessed on: May 8th, 2022.

Feltrin Sementes (2017) Tomate Carolina. Available at: .Accessed on: July 29th, 2017.

Ferreira DF (2000) Análises estatísticas por meio do Sisvar para Windows versão 4.0. In: Reunião anual da região brasileira da sociedade internacional de biometria, São Carlos. Proceedings, UFSCar. p.255-258.

Gonçalves ADM, Aguiar FM, Lopes CA, Fonseca MEDN, Boiteux LS, Costa H & Reis A (2013) Primeiro registro de Fusarium oxysporum f. sp. lycopersici raça 3 no Estado de Minas Gerais. In: 46o Congresso Brasileiro de Fitopatologia, Ouro Preto. Proceedings, UFV. p. 757-1.

Gonçalves AM, Cabral CS, Reis A, Fonseca MEN, Costa H, Ribeiro FHS & Boiteux LS (2020) A three-decade survey of Brazilian Fusarium oxysporum f.sp. lycopersici races assessed by pathogenicity tests on differential tomato accessions and by molecular markers. Journal of Applied Microbiology, 131:873-884.

Gonzalez‐Cendales Y, Catanzariti AM, Baker B, Mcgrath DJ & Jones DA (2016) Identification of I‐7 expands the repertoire of genes for resistance to Fusarium wilt in tomato to three resistance gene classes. Molecular Plant Pathology, 17:448-463.

Hoagland DR & Arnon DI (1950) The water-culture method for growing plants without soil. California Agricultural of Experimental Station Bull, 347:01-32.

Huang CC & Lindhout P (1997) Screening for resistance in wild Lycopersicon species to Fusarium oxysporum f. sp. lycopersici race 1 and race 2. Euphytica, 93:145-153.

Inami K, Yoshioka-Akiyama C, Morita Y, Yamasaki M, Teraoka T & Arie TA (2012) Genetic Mechanism for Emergence of Races in Fusarium oxysporum f. sp. lycopersici: Inactivation of Avirulence Gene AVR1 by Transposon. PLoS One, 7:01-10.

Isla (2020) tomate San Marzano. Available at: <https://isla.com.br/produto/Tomate-San-Marzano/270>. Accessed on: August 6th, 2020.

Johnny’s (2020) Tomate Juliet F1. Available at: <https://www.john-nyseeds.com/vegetables/tomatoes/paste-tomatoes/juliet-f1-tomato-seed-707.html>. Accessed on: August 6th, 2020.

Mcgovern RJ (2015) Management of tomato diseases caused by Fusarium oxysporum. Crop Protection, 73:78-92.

Nelson PE, Toussoun TA & Marasas WFO (1983) Fusarium Species: An Illustrated Manual for Identification. Pennsylvania, Pennsylvania State University press. 193p.

Nunhems (2020) Tomate Pizzadoro. Available at: . Accessed on: August 6th, 2020.

Oliveira CM, Carmo MGF, Ferreira LM, Hofte M & Sobrinho NMBA (2021) Race identification of Fusarium oxysporum f. sp. lycopersici isolates obtained from tomato plants in Nova Friburgo, Brazil. European Journal of Plant Pathology, 161:273-287.

Reis A & Boiteux LS (2007) Outbreak of Fusarium oxysporum f. sp. lycopersici race 3 in commercial fresh-market tomato fields in Rio de Janeiro State, Brazil. Horticultura Brasileira, 25:451-454.

Reis A, Boiteux LS, Costa H & Lopes CA (2005) First report of Fusarium oxysporum f. sp. lycopersici race 3 on tomato in Brazil. Fitopatologia Brasileira, 30:426-428.

Reis A, Giordano LB, Lopes CA & Boiteux LS (2004) Novel sources of multiple resistance to three races of Fusarium oxysporum f. sp. lycopersici in Lycopersicon germplasm. Crop Breeding and Applied Biotechnology, 4:495-502.

Rojas CM, Senthil-Kumar M, Tzin V & Mysore KS (2014) Regulation of primary plant metabolism during plant-pathogen interactions and its contribution to plant defense. Frontiers in Plant Science, 5:01-12.

Safiuddin A, Shahab S, Mazid M & Ahmed D (2012) Comparative study of Fusarium oxysporum f sp. lycopersici and Meloidogyne incognita race-2 on plant growth parameters of tomato. Agricultural Sciences, 3:844-847.

Sakata (2020) Tomate Lumi, Natália, Carina Ty, Ivety, Tyler, Débora Plus, Diana, Giuliana. Available at: <https://www.sakata.com.br/hortalicas/solanaceas/tomate>. Accessed on: August 6th, 2020.

Santos JRM (1997) Methodology for screening tomato for Fusarium wilt, Verticillium wilt, gray leaf spot, early blight, and Septoria leaf spot. In: International conference on the processing tomato and international symposium on tropical tomato diseases, Recife. Proceedings, ASHS Press: IPA. p.164-166.

Syngenta (2020) Tomate Siluety, Forty, Paron, Pizzadoro. Available at: <https://portalsyngenta.com.br/>. Accessed on: August 6th, 2020.

Souza LT, Michereff SJ, Laranjeira D, Andrade DEGT, Ferraz E, Lima GSA & Reis A (2010) Reação de genótipos de tomateiro às raças 2 e 3 de Fusarium oxysporum f. sp. lycopersici. Horticultura Brasileira, 28:102-106.

Srinivas C, Devi DN, Murthy KN, Mohan CD, Lakshmeesha TR, Singh B, Kalagatur NK, Niranjana SR, Hashem A, Alqarawi AA, Tabassum B, Abd_Allah EF, Abd_Allah SC & Srivastava RK (2019) Fusarium oxysporum f. sp. lycopersici causal agent of vascular wilt disease of tomato: Biology to diversity – A review. Saudi Journal of Biological Sciences, 26:1315-1324.

Tecnoseed (2017) Tomate Tsv 770 cromo. Available at: .Accessed on: July 27th, 2017.

Tokeshi H, Galli F & Kurozawa C (1966) Nova Raça de Fusarium do tomateiro em São Paulo. Proceedings, Escola Superior de Agricultura Luiz de Queiroz, 23:217-227.

Vilmorin (2017) Tomate Aguamiel. Available at: <http://www.vilmorin. com.br/>. Accessed on: July 27th, 2017.

Neter J, Wasserman W & Kutner MH (1974) Applied Linear Statistical Models. 4a ed. Illinois, Irwin publisher. 842p.

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Publicado

2025-06-04

Como Citar

Maia de Oliveira, C., Ferreira do Carmo, M. G., Martins Ferreira, L., dos Santos Rocha, M., Soares Diniz, C., & Moura Brasil do Amaral Sobrinho, N. (2025). Control failures of Fusarium wilt on tomatoes and resistance of cultivars to the three races of the pathogen. Revista Ceres, 70(4), 82–90. Recuperado de https://ojs.ceres.ufv.br/ceres/article/view/8134

Edição

Seção

PLANT HEALTH

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