DIVERSITY OF FUNGI WITHIN Fusarium solani SPECIES COMPLEX OCCURRING ON POTATOES, THEIR PATHOGENICITY AND SENSITIVITY TO FUNGICIDES

Keywords: Solanum tuberosum, Fusarium, dry rot of potato tubers, temperature, aggressiveness, fungicides, resistance, cultivar

Abstract

Background. Fusarium dry rot leads to yield loss of potato during storage and also reduces the quality of seed tubers. The diversity of Fusarium species caused the disease, as well as their aggressiveness and sensitivity to fungicides used for plant protection, varies significantly.

Purpose is the molecular genetic identification of Fusarium fungi from F. solani species complex (FSSC) isolated from potato tubers with dry rot symptoms, and the characterization of their physiological and biochemical features.

Materials and methods. The nine FSSC strains isolated from potato tubers of different geographical origin strains were included in the study. The species identification was carried out using phylogenetic analysis of tef and rpb2 loci. The growth rate of Fusarium fungi was analyzed in the temperature range of 5–35 °C. The pathogenicity of strains was assessed as a result of inoculation of potato tubers cvs. Gala and Impala. The sensitivity of the strains to active substances was determined by cultivation them on a nutrient medium with the addition of fungicides in various concentrations.

Results. The strains were identified as F. mori (1 strain), F. noneumartii (4), F. stercicola (2) and F. vanettenii (2) species. The optimal temperature for the growth of F. noneumartii, F. stercicola and F. vanettenii strains was the range of 25–30 °C, and for the F. mori strain – 30 °C. All analyzed strains did not grow on a PSA at temperature of 5 °C, five strains demonstrated the ability to grow at 35 °C. The aggressiveness of strains to potato tubers of two cultivars varied significantly. The F. noneumartii strains can be characterized as consistently highly aggressive. The cv. Impala compared to cv. Gala turned out to be more resistant to infection with F. stercicola and F. vanettenii fungi and more susceptible to F. mori. The fungicide containing benomyl inhibited the growth of all strains most effectively, compared to other fungicides. The F. noneumartii strains have demonstrated the high resistance to azoxystrobin, but they were sensitive to fludioxonil. In all analyzed strains of F. mori, F. stercicola and F. vanettenii was detected the cross-resistance to azoxystrobin and fludioxonil.

Conclusion. The modern pathogen-oriented system of potato protection from Fusarium dry rot includes analysis of Fusarium species composition in a particular region, as well as the sensitivity of fungi to widely applied fungicides should be used.

EDN: KQYUTJ

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Author Biographies

Aleksandra S. Orina, All-Russian Institute of Plant Protection

PhD (Mycology), Senior Researcher of the Laboratory of Mycology and Phythopathology

Olga P. Gavrilova, All-Russian Institute of Plant Protection

PhD (Mycology), Senior Researcher of the Laboratory of Mycology and Phythopathology

Ilya I. Trubin, All-Russian Institute of Plant Protection

Research Assistant of the Laboratory of Mycology and Phythopathology

Tatiana Yu. Gagkaeva, All-Russian Institute of Plant Protection

PhD (Mycology), Leading Researcher of the Laboratory of Mycology and Phythopathology

References

Список литературы

Анисимов Б.В., Зебрин С.Н., Зейрук В.Н. Сухие и мокрые гнили клубней и их контроль в семеноводстве картофеля // Защита и карантин растений. 2017. № 5. С. 30–35.

Белосохов А.Ф., Ярмеева М.М., Долгов А.М. и др. Грибы рода Fusarium на клубнях картофеля // Современная микология в России. 2022. T. 9. C. 250–252.

Гагкаева Т.Ю., Орина А.С., Трубин И.И., и др. Fusarium sambucinum – возбудитель сухой гнили клубней картофеля // Вестник защиты растений. 2023. Т. 106. С. 137–145. https://doi.org/10.31993/2308-6459-2023-106-3-16041

Государственный реестр селекционных достижений, допущенных к использованию. Т.1. «Сорта растений» (официальное издание). – М.: ФГБНУ «Росинформагротех», 2023. 631 с. https://gossortrf.ru/registry/gosudarstvennyy-reestr-selektsionnykh-dostizheniy-dopushchennykh-k-ispolzovaniyu-tom-1-sorta-rasteni/ (дата обращения: 12.03.2024)

Прудникова С.В., Чураков А.А., Овсянкина С.В., Хижняк С.В. Выделение и идентификация автохтонных возбудителей болезней картофеля, распространенных в регионах Сибири // Биотехнология новых материалов – окружающая среда – качество жизни: Материалы IV Международной научной конференции, Красноярск, 10–13 октября 2021 года. Красноярск: Сибирский федеральный университет, 2021. С. 174–177.

Зейрук В.Н., Белов Г.Л., Васильева С.В. и др. Как избежать потерь при хранении картофеля // Защита и карантин растений. 2024. № 1. С. 14-17.

Хадиева Г.Ф., Лутфуллин М.Т., Акосах Й.А. и др. Анализ микромицетов рода Fusarium, изолированных из инфицированных клубней картофеля, выращенных в Республике Татарстан // Достижения науки и техники АПК. 2018. Т. 32. № 3. С. 34–39.

Agathokleous E., Calabrese E.J. Fungicide-induced hormesis in phytopathogenic fungi: A critical determinant of successful agriculture and environmental sustainability // Journal of Agricultural and Food Chemistry, 2021, vol. 69, pp. 4561–4563. https://doi.org/10.1021/acs.jafc.1c01824

Akhmetova G.K., Knapp D.G., Özer G. et al. Multilocus molecular phylogenetic-led discovery and formal recognition of four novel root-colonizing Fusarium species from northern Kazakhstan and the phylogenetically divergent Fusarium steppicola lineage // Mycologia, 2023, vol. 115, pp. 16–31. https://doi.org/10.1080/00275514.2022.2119761

Aydin M. H., İnal B. Comparative susceptibility of some commercial potato cultivars to Fusarium sambucinum and F. solani isolates // Applied Ecology and Environmental Research, 2018, vol. 16, no 4, pp. 4879–4892. https://doi.org/10.15666/aeer/1604_48794892

Azil N., Stefańczyk E., Sobkowiak S. et al. Identification and pathogenicity of Fusarium spp. associated with tuber dry rot and wilt of potato in Algeria // European Journal of Plant Pathology, 2021, vol. 159, pp. 495–509. https://doi.org/10.1007/s10658-020-02177-5

Bojanowski A., Avis T.J., Pelletier S., Tweddell R.J. Management of potato dry rot // Postharvest Biology and Technology, 2013, vol. 84, pp. 99–109. https://doi.org/10.1016/j.postharvbio.2013.04.008

Chehri K, Ghasempour HR, Karimi N. Molecular phylogenetic and pathogenetic characterization of Fusarium solani species complex (FSSC), the cause of dry rot on potato in Iran // Microbial Pathogenesis, 2014, vol. 67–68, pp. 14–19. https://doi.org/10.1016/j.micpath.2014.01.002

Crous P.W., Lombard L., Sandoval-Denis M. et al. Fusarium: more than a node or a foot-shaped basal cell // Study in Mycology, 2021, vol. 98, art. 100116. https://doi.org/10.1016/j.simyco.2021.100116

Crous P.W, Hernández-Restrepo M., van Iperen A.L. et al. Citizen science project reveals novel fusarioid fungi (Nectriaceae, Sordariomycetes) from urban soils // Fungal Systematics and Evolution, 2021, vol. 8, pp. 101–127. https://doi.org/10.3114/fuse.2021.08.09

Daami-Remadi M. Potato Fusarium dry rot in Tunisia: current status and future prospects // Pest Technology, 2012, vol. 6, pp. 15–22.

Daami-Remadi M., F. Ayed H., Ayed F. et al. In vitro, in vivo and in situ evaluation of fungicides tested individually or in combination for the control of the fusarium dry rot of potato // International Journal of Agricultural Research, 2006, vol. 1, pp. 564–572. https://doi.org/10.3923/ijar.2006.564.572

Daami-Remadi M., Jabnoun-Khiareddine H., Ayed F., El Mahjoub M. Effect of temperature on aggressivity of Tunisian Fusarium species causing potato (Solanum tuberosum L.) tuber dry rot // Journal of Agronomy, 2006, vol. 5, pp. 350–355. https://doi.org/10.3923/ja.2006.350.355

Debbarma R., Kamil D., Maya Bashyal B. et al. First report of root rot disease on Solanum lycopersicum L. caused by Fusarium vanettenii in India // Journal of. Phytopathology, 2021, vol. 169, pp. 752–756. https://doi.org/10.1111/jph.13047

Du M., Ren X., Sun Q. et al. Characterization of Fusarium spp. causing potato dry rot in China and susceptibility evaluation of chinese potato germplasm to the pathogen // Potato Research, 2012, vol. 55, pp. 175–184. https://doi.org/10.1007/s11540-012-9217-6

Estrada R., Gudmestad N.C., Rivera V.V., Secor G.A. Fusarium graminearum as a dry rot pathogen of potato in the USA: prevalence, comparison of host isolate aggressiveness and factors affecting aetiology // Plant Pathology, 2010, vol. 59, pp. 1114–1120. https://doi.org/10.1111/j.1365-3059.2010.02343.x

Flores F.J., Garzon C.D. Detection and assessment of chemical hormesis on the radial growth in vitro of oomycetes and fungal plant pathogens // Dose Response, 2012, vol. 11, pp. 361–373. https://doi.org/10.2203/dose-response.12-026.Garzon

Gachango E., Hanson L.E., Rojas A. et al. Fusarium spp. causing dry rot of seed potato tubers in Michigan and their sensitivity to fungicides // Plant Disease, 2012, vol. 96, pp. 1767–1774. https://doi.org/10.1094/PDIS-11-11-0932-RE

Gachango E., Kirk W., Hanson L. et al. First report of in vitro fludioxonil-resistant isolates of Fusarium spp. causing potato dry rot in Michigan // Plant Disease, 2011, vol. 95, p. 228. https://doi.org/10.1094/PDIS-10-10-0737

Gashgari R.M., Gherbawy Y.A. Pathogenicity of some Fusarium species associated with superficial blemishes of potato tubers // Polish Journal of Microbiology, 2013, vol. 62, pp. 59–66.

Gherbawy Y.A., Hussein M.A., Hassany N.A. et al. Phylogeny and pathogenicity of Fusarium solani species complex (FSSC) associated with potato tubers // Journal of Basic Microbiology, 2021, vol. 61, pp. 1133–1144. https://doi.org/10.1002/jobm.202100393

Guarnaccia V., Van Niekerk J, Crous P, Sandoval-Denis M. Neocosmospora spp. associated with dry root rot of Citrus in South Africa // Phytopathologia Mediterranea, 2021, vol. 60, pp. 79–100. https://doi.org/10.36253/phyto-12183

Gupta P.K., Singh S.K., Shikha S. In vitro efficacy of different fungicides against Fusarium solani isolate causing root rot of papaya (Carica papaya L.) // International Journal of Chemical Studies, 2020, vol. 8, pp. 221–224. https://doi.org/10.22271/chemi.2020.v8.i3c.9229

Heltoft P., Brurberg M.B., Skogen M. et al. Fusarium spp. causing dry rot on potatoes in Norway and development of a real-time PCR method for detection of Fusarium coeruleum // Potato Research, 2016, vol. 59, pp. 67–80. https://doi.org/10.1007/s11540-015-9313-5

Hussein M.A., Gherbawy Y., El-Dawy E.G.A. Characterization, pathogenicity and enzymatic profile of Fusarium solani associated with potato tubers in Upper Egypt // Archives of Phytopathology and Plant Protection, 2020, vol. 53, pp. 495–508. https://doi.org/10.1080/03235408.2020.1761223

Imazaki I., Kadota I. Molecular phylogeny and diversity of Fusarium endophytes isolated from tomato stems // FEMS Microbiology Ecology, 2015, vol. 91, art. 098. https://doi.org/10.1093/femsec/fiv098

Jewell L.E., Hsiang T. Multigene differences between Microdochium nivale and Microdochium majus // Botany, 2013, vol. 91, pp. 99–106. https://doi.org/10.1139/cjb-2012-0178

Lord E., Leclercq M., Boc A. et al. Armadillo 1.1: an original workflow platform for designing and conducting phylogenetic analysis and simulations // PLoS One, 2012, vol. 7, art. 29903. https://doi.org/10.1371/journal.pone.002990

Liu Y.J., Whelen S., Hall B.D. Phylogenetic relationships among ascomycetes: evidence from an RNA polymerase II subunit // Molecular Biology and Evolution, 1999, vol. 16, pp. 1799–1808. https://doi.org/10.1093/oxfordjournals.molbev.a026092

O’Donnell K., Whitaker B.K., Laraba I. et al. DNA sequence-based identification of Fusarium: a work in progress // Plant Disease, 2022, vol. 106, pp. 1597–1609. https://doi.org/10.1094/PDIS-09-21-2035-SR

O’Donnell K., Cigelni, E., Caspe, H.H. Molecular phylogenetic, morphological, and mycotoxin data support reidentification of the Quorn mycoprotein fungus as Fusarium venenatum // Fungal Genetics and Biology, 1998, vol. 23, pp. 57–67. https://doi.org/10.1006/fgbi.1997.1018

Peters J.C., Lees A.K., Cullen D.W. et al. Characterization of Fusarium spp. responsible for causing dry rot of potato in Great Britain // Plant Pathology, 2008, vol. 57, pp. 262–271. https://doi.org/10.1111/j.1365-3059.2007.01777.x

Peters R.D., Platt H.W., Drake K.A. et al. First report of fludioxonil-resistant isolates of Fusarium spp. causing potato seed-piece decay // Plant Disease, 2008, vol. 92, p. 172. https://doi.org/10.1094/PDIS-92-1-0172A

Platt H. Resistance to thiabendazole in Fusarium species and Helminthosporium solani in potato tubers treated commercially in eastern Canada // Phytoprotection, 1997, vol. 78, pp. 1–10.

Sandipan P.B., Solanki B.P., Patel N.N. et al. Efficacy of different fungicides against dry rot pathogen of potato caused by Fusarium sp. under in vitro condition // Cercetari Agronomice in Moldova, 2016, vol. 49, pp. 69–74. https://doi.org/10.1515/cerce-2016-0037

Sandoval-Denis M., Lombard L., Crous P.W. Back to the roots: a reappraisal of Neocosmospora // Persoonia, 2019, vol. 43, pp. 90–185. https://doi.org/10.3767/persoonia.2019.43.04

Šišić A., Al-Hatmi A.M.S., Baćanović-Šišić J. et al. Two new species of the Fusarium solani species complex isolated from compost and hibiscus (Hibiscus sp.) // Antonie Van Leeuwenhoek, 2018, vol. 111, pp. 1785–1805. https://doi.org/10.1007/s10482-018-1068-y

Stefańczyk E., Sobkowiak S., Brylińska M. et al. Diversity of Fusarium spp. associated with dry rot of potato tubers in Poland // European Journal of Plant Patholology, 2016, vol. 145, pp. 871–884. https://doi.org/10.1007/s10658-016-0875-0

Tini F., Beccari G., Onofri A. et al. Fungicides may have differential efficacies towards the main causal agents of Fusarium head blight of wheat // Pest Management Science, 2020, vol. 76, pp. 3738–3748. https://doi.org/10.1002/ps.5923

Tiwari R.K., Kumar R., Sharma S. et al. Potato dry rot disease: current status, pathogenomics and management // 3 Biotech, 2020, vol. 10, art. 503. https://doi.org/10.1007/s13205-020-02496-8

Vatankhah M., Saberi-Riseh R., Eskandari M.M., Afzali H. Evaluation of some fungicides for the control of Fusarium dry rot of potato // Journal of Crop Protection, 2019, vol. 8, pp. 275–285.

Wang J., Bradley C.A., Stenzel O. et al. Baseline sensitivity of Fusarium virguliforme to fluopyram fungicide // Plant Disease, 2017, vol. 101, pp. 576–582. https://doi.org/10.1094/PDIS-09-16-1250-RE

Wharton P., Hammerschmidt R., Kirk W. Fusarium dry rot // Michigan Agricultural ExStation Bulletin, 2007, art. e2992. https://archive.lib.msu.edu/DMC/extension_publications/e2992/e2992.pdf (accessed March 3, 2024)

Yikilmazsoy G., Tosun N. Characterization of Fusarium sambucinum isolates associated with potato dry rot and evaluation of cultivar susceptibility and fungicides // Turkish Journal of Agriculture and Forestry, 2021, vol. 45, pp. 10. https://doi.org/10.3906/tar-2006-100

Zhu Z., Dong Z., Mo R. et al. First report of Neocosmospora mori causing root rot and stem blight of mulberry in Nanzhang, Hubei, China // Plant Disease, 2024, vol. 108, p. 206. https://doi.org/10.1094/PDIS-04-23-0661-PDN

References

Anisimov B.V., Zebrin S.N., Zeyruk V.N. Sukhie i mokrye gnilи klubnei i ikh kontrol' v semenovodstve kartofelya [Dry and wet rots of tubers and their control in potato seed production]. Zashchita i karantin rasteniy, 2017, no. 5, pp. 30–35.

Belosokhov A.F., Yarmeeva M.M., Dolgov A.M. et al. Gryby roda Fusarium na klubnyakh kartofelya [Fusarium fungi on potato tubers]. Sovremennaya mikologiya v Rossii, 2022, vol. 9, pp. 250–252.

Gagkaeva T.Yu., Orina A.S., Trubin I.I. et al. Fusarium sambucinum – vozbuditel' sukhoy gnilи klubnei kartofelya [Fusarium sambucinum – a causal agent of dry rot of potato tubers]. Vestnik zashchity rasteniy, 2023, vol. 106, no. 3, pp. 137–145. https://doi.org/10.31993/2308-6459-2023-106-3-16041

Gosudarstvennyy reestr selektsionnykh dostizheniy, dopushchennykh k ispolzovaniyu. T. 1. "Sorta rasteniy" (ofitsial'noe izdanie) [State Register of Breeding Achievements Approved for Use. Vol. 1. "Plant Varieties" (official edition)]. Moscow: FGBNU "Rosinformagrotekh", 2023, 631 p. https://gossortrf.ru/registry/gosudarstvennyy-reestr-selektsionnykh-dostizheniy-dopushchennykh-k-ispolzovaniyu-tom-1-sorta-rasteni/ (accessed March 3, 2024)

Prudnikova S.V., Churakov A.A., Ovsyankina S.V., Khizhnyak S.V. Vydelenie i identifikatsiya autokhtronnykh vozbuditeley bolezney kartofelya, rasprostranennykh v regionakh Sibiri [Isolation and identification of indigenous pathogens of potato diseases in Siberia]. Biotekhnologiya novykh materialov - okruzhayushchaya sreda - kachestvo zhizni: Materialy IV Mezhdunarodnoy nauchnoy konferentsii Krasnoyarsk, 10-13 October 2021. Krasnoyarsk: Sibirskiy federal'nyy universitet, 2021, pp. 174–177.

Zeyruk V.N., Belov G.L., Vasil'eva S.V. et al. Kak izbezhat' poter' pri khranenii kartofelya [How to avoid losses during potato storage]. Zashchita i karantin rasteniy, 2024, no. 1, pp. 14–17.

Khadieva G.F., Lutfullin M.T., Akosakh Ya.A., et al. Analiz mikromitsevtov roda Fusarium, izolirovannykh iz infitsirovannykh klubnei kartofelya, vyrashchennykh v Respublike Tatarstan [Analysis of Fusarium microfungi isolated from infected potato tubers in the republic of Tatarstan]. Dostizheniya nauki i tekhniki APK, 2018, vol. 32, no. 3, pp. 34–39.

Agathokleous E., Calabrese E.J. Fungicide-induced hormesis in phytopathogenic fungi: A critical determinant of successful agriculture and environmental sustainability. Journal of Agricultural and Food Chemistry, 2021, vol. 69, pp. 4561–4563. https://doi.org/10.1021/acs.jafc.1c01824

Akhmetova G.K., Knapp D.G., Özer G., et al. Multilocus molecular phylogenetic-led discovery and formal recognition of four novel root-colonizing Fusarium species from northern Kazakhstan and the phylogenetically divergent Fusarium steppicola lineage. Mycologia, 2023, vol. 115, pp. 16–31. https://doi.org/10.1080/00275514.2022.2119761

Aydin M. H., İnal B. Comparative susceptibility of some commercial potato cultivars to Fusarium sambucinum and F. solani isolates. Applied Ecology and Environmental Research, 2018, vol. 16, no 4, pp. 4879–4892. https://doi.org/10.15666/aeer/1604_48794892

Azil N., Stefańczyk E., Sobkowiak S., et al. Identification and pathogenicity of Fusarium spp. associated with tuber dry rot and wilt of potato in Algeria. European Journal of Plant Pathology, 2021, vol. 159, pp. 495–509. https://doi.org/10.1007/s10658-020-02177-5

Bojanowski A., Avis T.J., Pelletier S., Tweddell R.J. Management of potato dry rot. Postharvest Biology and Technology, 2013, vol. 84, pp. 99–109. https://doi.org/10.1016/j.postharvbio.2013.04.008

Chehri K, Ghasempour HR, Karimi N. Molecular phylogenetic and pathogenetic characterization of Fusarium solani species complex (FSSC), the cause of dry rot on potato in Iran. Microbial Pathogenesis, 2014, vol. 67-68, pp. 14-19. https://doi.org/10.1016/j.micpath.2014.01.002

Crous P.W., Lombard L., Sandoval-Denis M. et al. Fusarium: more than a node or a foot-shaped basal cell. Study in Mycology, 2021, vol. 98, art. 100116. https://doi.org/10.1016/j.simyco.2021.100116

Crous P.W, Hernández-Restrepo M., van Iperen A.L. et al. Citizen science project reveals novel fusarioid fungi (Nectriaceae, Sordariomycetes) from urban soils. Fungal Systematics and Evolution, 2021, vol. 8, pp. 101–127. https://doi.org/10.3114/fuse.2021.08.09

Daami-Remadi M. Potato Fusarium dry rot in Tunisia: current status and future prospects. Pest Technology, 2012, vol. 6, pp. 15–22.

Daami-Remadi M., F. Ayed H., Ayed F. et al. In vitro, in vivo and in situ evaluation of fungicides tested individually or in combination for the control of the fusarium dry rot of potato. International Journal of Agricultural Research, 2006, vol. 1, pp. 564–572. https://doi.org/10.3923/ijar.2006.564.572

Daami-Remadi M., Jabnoun-Khiareddine H., Ayed F., El Mahjoub M. Effect of temperature on aggressivity of Tunisian Fusarium species causing potato (Solanum tuberosum L.) tuber dry rot. Journal of Agronomy, 2006, vol. 5, pp. 350–355. https://doi.org/10.3923/ja.2006.350.355

Debbarma R., Kamil D., Maya Bashyal B. et al. First report of root rot disease on Solanum lycopersicum L. caused by Fusarium vanettenii in India. Journal of. Phytopathology, 2021, vol. 169, pp. 752–756. https://doi.org/10.1111/jph.13047

Du M., Ren X., Sun Q. et al. Characterization of Fusarium spp. causing potato dry rot in China and susceptibility evaluation of chinese potato germplasm to the pathogen. Potato Research, 2012, vol. 55, pp. 175–184. https://doi.org/10.1007/s11540-012-9217-6

Estrada R., Gudmestad N.C., Rivera V.V., Secor G.A. Fusarium graminearum as a dry rot pathogen of potato in the USA: prevalence, comparison of host isolate aggressiveness and factors affecting aetiology. Plant Pathology, 2010, vol. 59, pp. 1114–1120. https://doi.org/10.1111/j.1365-3059.2010.02343.x

Flores F.J., Garzon C.D. Detection and assessment of chemical hormesis on the radial growth in vitro of oomycetes and fungal plant pathogens. Dose Response, 2012, vol. 11, pp. 361–373. https://doi.org/10.2203/dose-response.12-026.Garzon

Gachango E., Hanson L.E., Rojas A. et al. Fusarium spp. causing dry rot of seed potato tubers in Michigan and their sensitivity to fungicides. Plant Disease, 2012, vol. 96, pp. 1767–1774. https://doi.org/10.1094/PDIS-11-11-0932-RE.

Gachango E., Kirk W., Hanson L. et al. First report of in vitro fludioxonil-resistant isolates of Fusarium spp. causing potato dry rot in Michigan. Plant Disease, 2011, vol. 95, p. 228. https://doi.org/10.1094/PDIS-10-10-0737

Gashgari R.M., Gherbawy Y.A. Pathogenicity of some Fusarium species associated with superficial blemishes of potato tubers. Polish Journal of Microbiology, 2013, vol. 62, pp. 59–66.

Gherbawy Y.A., Hussein M.A., Hassany N.A. et al. Phylogeny and pathogenicity of Fusarium solani species complex (FSSC) associated with potato tubers. Journal of Basic Microbiology, 2021, vol. 61, pp. 1133–1144. https://doi.org/10.1002/jobm.202100393

Guarnaccia V., Van Niekerk J, Crous P, Sandoval-Denis M. Neocosmospora spp. associated with dry root rot of Citrus in South Africa. Phytopathologia Mediterranea, 2021, vol. 60, pp. 79–100. https://doi.org/10.36253/phyto-12183

Gupta P.K., Singh S.K., Shikha S. In vitro efficacy of different fungicides against Fusarium solani isolate causing root rot of papaya (Carica papaya L.). International Journal of Chemical Studies, 2020, vol. 8, pp. 221–224. https://doi.org/10.22271/chemi.2020.v8.i3c.9229

Heltoft P., Brurberg M.B., Skogen M. et al. Fusarium spp. causing dry rot on potatoes in Norway and development of a real-time PCR method for detection of Fusarium coeruleum. Potato Research, 2016, vol. 59, pp. 67–80. https://doi.org/10.1007/s11540-015-9313-5

Hussein M.A., Gherbawy Y., El-Dawy E.G.A. Characterization, pathogenicity and enzymatic profile of Fusarium solani associated with potato tubers in Upper Egypt. Archives of Phytopathology and Plant Protection, 2020, vol. 53, pp. 495–508. https://doi.org/10.1080/03235408.2020.1761223

Imazaki I., Kadota I. Molecular phylogeny and diversity of Fusarium endophytes isolated from tomato stems. FEMS Microbiology Ecology, 2015, vol. 91, art. 098. https://doi.org/10.1093/femsec/fiv0988

Jewell L.E., Hsiang T. Multigene differences between Microdochium nivale and Microdochium majus. Botany, 2013, vol. 91, pp. 99–106. https://doi.org/10.1139/cjb-2012-0178

Lord E., Leclercq M., Boc A. et al. Armadillo 1.1: an original workflow platform for designing and conducting phylogenetic analysis and simulations. PLoS One, 2012, vol. 7, art. 29903. https://doi.org/10.1371/journal.pone.002990

Liu Y.J., Whelen S., Hall B.D. Phylogenetic relationships among ascomycetes: evidence from an RNA polymerase II subunit. Molecular Biology and Evolution, 1999, vol. 16, pp. 1799–1808. https://doi.org/10.1093/oxfordjournals.molbev.a026092

O’Donnell K., Whitaker B.K., Laraba I. et al. DNA sequence-based identification of Fusarium: a work in progress. Plant Disease, 2022, vol. 106, pp. 1597–1609. https://doi.org/10.1094/PDIS-09-21-2035-SR

O’Donnell K., Cigelni, E., Caspe, H.H. Molecular phylogenetic, morphological, and mycotoxin data support reidentification of the Quorn mycoprotein fungus as Fusarium venenatum. Fungal Genetics and Biology, 1998, vol. 23, pp. 57–67. https://doi.org/10.1006/fgbi.1997.1018

Peters J.C., Lees A.K., Cullen D.W. et al. Characterization of Fusarium spp. responsible for causing dry rot of potato in Great Britain. Plant Pathology, 2008, vol. 57, pp. 262–271. https://doi.org/10.1111/j.1365-3059.2007.01777.x

Peters R.D., Platt H.W., Drake K.A. et al. First report of fludioxonil-resistant isolates of Fusarium spp. causing potato seed-piece decay. Plant Disease, 2008, vol. 92, p. 172. https://doi.org/10.1094/PDIS-92-1-0172A

Platt H. Resistance to thiabendazole in Fusarium species and Helminthosporium solani in potato tubers treated commercially in eastern Canada. Phytoprotection, 1997, vol. 78, pp. 1–10.

Sandipan P.B., Solanki B.P., Patel N.N. et al. Efficacy of different fungicides against dry rot pathogen of potato caused by Fusarium sp. under in vitro condition. Cercetari Agronomice in Moldova, 2016, vol. 49, pp. 69–74. https://doi.org/10.1515/cerce-2016-0037

Sandoval-Denis M., Lombard L., Crous P.W. Back to the roots: a reappraisal of Neocosmospora. Persoonia, 2019, vol. 43, pp. 90–185. https://doi.org/10.3767/persoonia.2019.43.04

Šišić A., Al-Hatmi A.M.S., Baćanović-Šišić J. et al. Two new species of the Fusarium solani species complex isolated from compost and hibiscus (Hibiscus sp.). Antonie Van Leeuwenhoek, 2018, vol. 111, pp. 1785–1805. https://doi.org/10.1007/s10482-018-1068-y

Stefańczyk E., Sobkowiak S., Brylińska M. et al. Diversity of Fusarium spp. associated with dry rot of potato tubers in Poland. European Journal of Plant Patholology, 2016, vol. 145, pp. 871–884. https://doi.org/10.1007/s10658-016-0875-0

Tini F., Beccari G., Onofri A. et al. Fungicides may have differential efficacies towards the main causal agents of Fusarium head blight of wheat. Pest Management Science, 2020, vol. 76, pp. 3738–3748. https://doi.org/10.1002/ps.5923

Tiwari R.K., Kumar R., Sharma S. et al. Potato dry rot disease: current status, pathogenomics and management. 3 Biotech, 2020, vol. 10, art. 503. https://doi.org/10.1007/s13205-020-02496-8

Vatankhah M., Saberi-Riseh R., Eskandari M.M., Afzali H. Evaluation of some fungicides for the control of Fusarium dry rot of potato. Journal of Crop Protection, 2019, vol. 8, pp. 275–285.

Wang J., Bradley C.A., Stenzel O. et al. Baseline sensitivity of Fusarium virguliforme to fluopyram fungicide. Plant Disease, 2017, vol. 101, pp. 576–582. https://doi.org/10.1094/PDIS-09-16-1250-RE

Wharton P., Hammerschmidt R., Kirk W. Fusarium dry rot. Michigan Agricultural ExStation Bulletin, 2007, art. e2992. https://archive.lib.msu.edu/DMC/extension_publications/e2992/e2992.pdf (accessed March 3, 2024)

Yikilmazsoy G., Tosun N. Characterization of Fusarium sambucinum isolates associated with potato dry rot and evaluation of cultivar susceptibility and fungicides. Turkish Journal of Agriculture and Forestry, 2021, vol. 45, pp. 10. https://doi.org/10.3906/tar-2006-100

Zhu Z., Dong Z., Mo R. et al. First report of Neocosmospora mori causing root rot and stem blight of mulberry in Nanzhang, Hubei, China. Plant Disease, 2024, vol. 108, p. 206. https://doi.org/10.1094/PDIS-04-23-0661-PDN

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Published
2024-12-30
How to Cite
Orina, A., Gavrilova, O., Trubin, I., & Gagkaeva, T. (2024). DIVERSITY OF FUNGI WITHIN Fusarium solani SPECIES COMPLEX OCCURRING ON POTATOES, THEIR PATHOGENICITY AND SENSITIVITY TO FUNGICIDES. Siberian Journal of Life Sciences and Agriculture, 16(6), 286-312. https://doi.org/10.12731/2658-6649-2024-16-6-1004
Section
Soil Fertility and Plant Protection