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1

Gatsinzi, François. La maladie de Panama due à Fusarium oxysporum f. sp. cubense (E.F. Smith) Synder & Hansen au sein de la Communauté économique des pays des grands lacs (Burundi, Rwanda, Zaïre). Gitega, République du Burundi: Institut de recherche agronomique et zootechnique de la C.E.P.G.L., 1989.

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2

Coleman, Jeffrey, ed. Fusarium wilt. New York, NY: Springer US, 2022. http://dx.doi.org/10.1007/978-1-0716-1795-3.

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3

Marquina, J. C. Tello. Fusarium oxysporum en los cultivos intensivos del litoral Mediterráneo de España. Madrid: Ministerio de Agricultura Pesca y Alimentación, Secretaría General Técnica, 1990.

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4

Steel, Christopher Charles. Host-pathogen interactions in fusarium wilt of tomato. Birmingham: University of Birmingham, 1986.

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5

LaMondia, James Arthur. New Fusarium wilt-resistant Connecticut broadleaf tobacco varieties. New Haven: Connecticut Agricultural Experiment Station, 1991.

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6

LaMondia, James Arthur. New Fusarium wilt-resistant Connecticut broadleaf tobacco varieties. New Haven: Connecticut Agricultural Experiment Station, 1991.

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7

LaMondia, James Arthur. Scantic, a new fusarium-wilt resistant broadleaf tobacco cultivar. New Haven: Connecticut Agricultural Experiment Station, 2001.

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8

Whitehead, Debra Sian. Races and pathotypes of the wilt pathogen fusarium oxysporum. Norwich: University of East Anglia, 1991.

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9

LaMondia, James Arthur. Scantic, a new fusarium-wilt resistant broadleaf tobacco cultivar. New Haven: Connecticut Agricultural Experiment Station, 2001.

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10

Gullino, M. Lodovica, J. Katan y Angelo Garibaldi. Fusarium wilts of greenhouse vegetable and ornamental crops. St. Paul, Minn., U.S.A: American Phytopathological Society, 2012.

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11

Orjeda, Gisella. Evaluation of Musa germplasm for resistance to Sigatoka diseases and Fusarium wilt. Montpellier: International Network for the Improvement of Banana and Plantain in association with, 1998.

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12

Cueto, Marcos. Innovación en la agricultura: Fermín Tangüis y el algodón el el Perú. Lima: Universidad del Pacífico, Centro de Investigación, 1999.

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13

Mbwika, J. M. Feasibility study on technologies for improving banana for resistance against bacterial wilt in sub-Saharan Africa. Nairobi: African Agricultural Technology Foundation, 2009.

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14

Workshop, on Review of the Strategy for the Management of Banana Xanthomonas Wilt (2007 Kigali Rwanda). Management of banana xanthomonas wilt in East and Central Africa: Proceedings of the Workshop on Review of the Strategy for the Management of Banana Xanthomonas Wilt, 23-27 July 2007, Hotel la Palisse, Kigali, Rwanda. Kampala, Uganda: Bioversity International, Uganda, 2009.

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15

C, Ploetz Randy y International Conference on Fusarial Wilt of Banana (1st : 1989 : Miami, Fla.), eds. Fusarium wilt of banana. St. Paul, Minn: APS Press, 1990.

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16

Kema, Gert H. J., Andre Drenth, Miguel Dita, Kees Jansen, Sietze Renze Vellema y Jetse Stoorvogel, eds. Fusarium wilt of Banana, a Recurring Threat to Global Banana Production. Frontiers Media SA, 2021. http://dx.doi.org/10.3389/978-2-88966-484-9.

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17

Baier, Faramond. Fusarium Wilt of Tomato. Kelsiehanson Verlag, 2017.

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18

Coleman, Jeffrey. Fusarium Wilt: Methods and Protocols. Springer, 2022.

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19

Coleman, Jeffrey. Fusarium Wilt: Methods and Protocols. Springer, 2021.

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20

El-Hadi, Mohammed. Studies on variability in morphology, pathogenicity, and vegetative compatibility of Fusarium oxysporum f. sp. ciceris, and effects of inoculum density on chickpea wilt severity. 1993.

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21

Regional strategy and action plan for the prevention, preparedness, response and recovery of Latin America and the Caribbean to Fusarium wilt of Musaceae tropical race 4. FAO, 2022. http://dx.doi.org/10.4060/cb8674en.

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22

New frontiers in resistance breeding for nematode, fusarium and sigatoka: Proceedings of the workshop held in Kuala Lumpur, Malaysia, 2-5 October 1995. Rome: IPGRI, 1996.

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23

Gleń-Karolczyk, Katarzyna. Zabiegi ochronne kształtujące plonowanie zdrowotność oraz różnorodność mikroorganizmów związanych z czernieniem pierścieniowym korzeni chrzanu (Atmoracia rusticana Gaertn.). Publishing House of the University of Agriculture in Krakow, 2019. http://dx.doi.org/10.15576/978-83-66602-39-7.

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Resumen
Horseradish roots, due to the content of many valuable nutrients and substances with healing and pro-health properties, are used more and more in medicine, food industry and cosmetics. In Poland, the cultivation of horseradish is considered minor crops. In addition, its limited size causes horseradish producers to encounter a number of unresolved agrotechnical problems. Infectious diseases developing on the leaves and roots during the long growing season reduce the size and quality of root crops. The small range of protection products intended for use in the cultivation of horseradish generates further serious environmental problems (immunization of pathogens, low effectiveness, deterioration of the quality of raw materials intended for industry, destruction of beneficial organisms and biodiversity). In order to meet the problems encountered by horseradish producers and taking into account the lack of data on: yielding, occurrence of infectious diseases and the possibility of combating them with methods alternative to chemical ones in the years 2012–2015, rigorous experiments have been carried out. The paper compares the impact of chemical protection and its reduced variants with biological protection on: total yield of horseradish roots and its structure. The intensification of infectious diseases on horseradish leaves and roots was analyzed extensively. Correlations were examined between individual disease entities and total yield and separated root fractions. A very important and innovative part of the work was to learn about the microbial communities involved in the epidemiology of Verticillium wilt of horseradish roots. The effect was examined of treatment of horseradish cuttings with a biological preparation (Pythium oligandrum), a chemical preparation (thiophanate-methyl), and the Kelpak SL biostimulator (auxins and cytokinins from the Ecklonia maxima algae) on the quantitative and qualitative changes occurring in the communities of these microorganisms. The affiliation of species to groups of frequencies was arranged hierarchically, and the biodiversity of these communities was expressed by the following indicators: Simpson index, Shannon–Wiener index, Shannon evenness index and species richness index. Correlations were assessed between the number of communities, indicators of their biodiversity and intensification of Verticillium wilt of horseradish roots. It was shown that the total yield of horseradish roots was on average 126 dt · ha–1. Within its structure, the main root was 56%, whereas the fraction of lateral roots (cuttings) with a length of more than 20 cm accounted for 26%, and those shorter than 20 cm for 12%, with unprofitable yield (waste) of 6%. In the years with higher humidity, the total root yield was higher than in the dry seasons by around 51 dt · ha–1 on average. On the other hand, the applied protection treatments significantly increased the total yield of horseradish roots from 4,6 to 45,3 dt · ha–1 and the share of fractions of more than 30 cm therein. Higher yielding effects were obtained in variants with a reduced amount of foliar application of fungicides at the expense of introducing biopreparations and biostimulators (R1, R2, R3) and in chemical protection (Ch) than in biological protection (B1, B2) and with the limitation of treatments only to the treatment of cuttings. The largest increments can be expected after treating the seedlings with Topsin M 500 SC and spraying the leaves: 1 × Amistar Opti 480 SC, 1 × Polyversum WP, 1 × Timorex Gold 24 EC and three times with biostimulators (2 × Kelpak SL + 1 × Tytanit). In the perspective of the increasing water deficit, among the biological protection methods, the (B2) variant with the treatment of seedlings with auxins and cytokinins contained in the E. maxima algae extract is more recommended than (B1) involving the use of P. oligandrum spores. White rust was the biggest threat on horseradish plantations, whereas the following occurred to a lesser extent: Phoma leaf spot, Cylindrosporium disease, Alternaria black spot and Verticillium wilt. In turn, on the surface of the roots it was dry root rot and inside – Verticillium wilt of horseradish roots. The best health of the leaves and roots was ensured by full chemical protection (cuttings treatment + 6 foliar applications). A similar effect of protection against Albugo candida and Pyrenopeziza brassicae was achieved in the case of reduced chemical protection to one foliar treatment with synthetic fungicide, two treatments with biological preparations (Polyversum WP and Timorex Gold 24 EC) and three treatments with biostimulators (2 × Kelpak SL, 1 × Tytanit). On the other hand, the level of limitation of root diseases comparable with chemical protection was ensured by its reduced variants R3 and R2, and in the case of dry root rot, also both variants of biological protection. In the dry years, over 60% of the roots showed symptoms of Verticillium wilt, and its main culprits are Verticillium dahliae (37.4%), Globisporangium irregulare (7.2%), Ilyonectria destructans (7.0%), Fusarium acuminatum (6.7%), Rhizoctonia solani (6.0%), Epicoccum nigrum (5.4%), Alternaria brassicae (5.17%). The Kelpak SL biostimulator and the Polyversum WP biological preparation contributed to the increased biodiversity of microbial communities associated with Verticillium wilt of horseradish roots. In turn, along with its increase, the intensification of the disease symptoms decreased. There was a significant correlation between the richness of species in the communities of microbial isolates and the intensification of Verticillium wilt of horseradish roots. Each additional species of microorganism contributed to the reduction of disease intensification by 1,19%.
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