Comparative study of Monilinia fructigena and Monilia polystroma on morphological features, RFLP analysis, pathogenicity and histopathology
详细信息    查看全文
  • 作者:M. Vasić ; N. Duduk ; I. Vico ; D. Rančić ; V. Pajić…
  • 关键词:Comparison ; Monilia polystroma ; Monilinia fructigena ; PCR ; RFLP ; Pathogenicity ; Histopathology
  • 刊名:European Journal of Plant Pathology
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:144
  • 期:1
  • 页码:15-30
  • 全文大小:9,459 KB
  • 参考文献:Batra, L. R. (1991). World species of Monilinia (Fungi): Their ecology, biosystematics and control (p. 246). Berlin: J. Crammer. ISBN 3-443-76006-6.
    Byrde, R. J. W., & Willetts, H. J. (1977). The brown rot fungi of fruit: Their biology and control. Oxford: Pergamon Press. ISBN 0-08-019740. pp. 171.
    Côté, M. J., Tardif, M. C., & Meldrum, A. J. (2004). Identification of Monilinia fructigena, M. fructicola, M. laxa, and Monilia polystroma on inoculated and naturally infected fruit using multiplex PCR. Plant Disease, 88, 1219–1225.CrossRef
    Day, J. P., & Shattock, R. C. (1997). Aggressiveness and other factors relating to displacement of populations of Phytophtora infestans in England and Wales. European Journal of Plant Pathology, 103, 379–391.CrossRef
    Drayton, F. L. (1932). The sexual function of the microconidia in certain discomycetes. Mycologia, 24, 345–348.CrossRef
    Fukumori, Y., Nakijima, M., & Akutsu, K. (2004). Microconidia act the role as spermatia in the sexual reproduction of Botrytis cinerea. Mycoscience, 70, 256–260.
    Fulton, C. E., van Leeuwen, G. C. M., & Brown, A. E. (1999). Genetic variation among and within Monilinia species causing brown rot of stone and pome fruits. European Journal of Plant Pathology, 105, 495–500.CrossRef
    Harada, Y. (1977). Studies on the Japanese species of Monilinia (Sclerotiniaceae). Bulletin of the Faculty of Agriculture Hirosaki University, 27, 30–109.
    Henson, J. M., Butler, M. J., & Day, A. W. (1999). The dark side of mycelium: melanins of phytopathogenic fungi. Annual Review of Phytopathology, 37, 447–471.CrossRef PubMed
    Hilber-Bodmer, M., Knorst, V., Smits, T. H. M., & Patocchi, A. (2012). First report of Asian brown rot caused by Monilia polystroma on apricot in Switzerland. Plant Disease, 96, 146.CrossRef
    Holb, I. J. (2004). Effect of acidity on growth rate and stroma formation of Monilia fructigena and M. polystroma isolates. International Journal of Horticultural Science, 10, 63–67.
    Holb, I. J., & Chauhan, S. V. S. (2004). Effect of carbohydrate and nitrogen sources on the growth rates of Monilia fructigena and M. polystroma isolates. Journal of Mycology and Plant Pathology, 35, 128–131.
    Holb, I. J., & Scherm, H. (2007). Temporal dynamics of brown rot in different apple management systems and importance of dropped fruit for disease development. Phytopathology, 97, 1104–1111.CrossRef PubMed
    Holst-Jensen, A., Kohn, L. M., Jakobsen, K. S., & Schumacher, T. (1997). Molecular phylogeny and evolution of Monilinia (Sclerotiniaceae) based on coding and noncoding rDNA sequences. American Journal of Botany, 84, 686–701.CrossRef PubMed
    Hughes, K. J. D., Fulton, C. E., McReynold, D., & Lane, C. R. (2000). Development of new PCR primers for identification of Monilinia species [Electronic version]. Bulletin OEPP/EPPO Bulletin, 30, 507–511.CrossRef
    Ioos, R., & Frey, P. (2000). Genomic variation within Monilinia laxa, M. fructigena and M. fructicola, and application to species identification by PCR. European Journal of Plant Pathology, 106, 373–378.CrossRef
    Ivanović, M., & Ivanović, D. (2001). Mikoze i Pseudomikoze Biljaka. Belgrade: De-Em-Ve. ISBN-86-9024419-1-4. pp. 555.
    Kohn, L. M., & Grenville, D. J. (1989). Anatomy and histochemistry of stromatal anamorphs in the Sclerotiniaceae. Canadian Journal of Botany, 67, 371–393.CrossRef
    Marques, J. P. R., Soares, M. K. M., & Appezzato-da-Gloria, B. (2013). New staining technique for fungal-infected plant tissues. Turkish Journal of Botany, 37, 784–787.
    Martini, C., Lantos, A., Di Francesco, A., Guidareli, M., D’Aquino, S., & Baraldi, E. (2014). First report of Asiatic brown rot caused by Monilinia polystroma on peach in Italy. Plant Disease, 98, 1585.CrossRef
    OEPP/EPPO (2009). Monilinia fructicola PM 7/18 (2) [Electronic version]. Bulletin OEPP/EPPO Bulletin, 39, 337–343.CrossRef
    OEPP/EPPO (2011). First reports of Monilia polystroma in Hungary and the Czech Republic. EPPO Reporting service 2011/134. Retrieved February 20, 2012, from http://​archives.​eppo.​int/​EPPOReporting/​2011/​Rse-1106.​pdf .
    Petroczy, M., & Palkovics, L. (2009). First report of Monilia polystroma on apple in Hungary. European Journal of Plant Pathology, 125, 343–347.CrossRef
    Poniatowska, A., Michalecka, M., & Bielenin, A. (2013). Characteristic of Monilinia spp. fungi causing brown rot of pome and stone fruits in Poland. European Journal of Plant Pathology, 135, 855–865.CrossRef
    Rehnstrom, A. L., & Free, S. J. (1996). The isolation and characterization of melanin-deficient mutants of Monilinia fructicola. Physiological and Molecular Plant Pathology, 49, 321–330.CrossRef
    Ruzin, S. E. (1999). Plant microtechnique and microscopy (p. 322). Oxford: Oxford University Press. ISBN 0-19-508956-1.
    Snyder, C. L., & Jones, A. L. (1999). Genetic variation between isolates of Monilinia fructicola and Monilinia laxa isolated from cherries in Michigan. Canadian Journal of Plant Pathology, 21, 70–77.CrossRef
    Soylu, E. M., Soylu, S., & Kurt, S. (2006). Antimicrobial activities of the essential oils of various plants against tomato late blight disease agent Phytophthora infestans. Mycopathologia, 161, 119–128.CrossRef PubMed
    Staden, R., Beal, K. F., & Bonfield, J. K. (2000). The Staden package, 1998. Methods in Molecular Biology, 132, 115–130.PubMed
    Tamura, K., Peterson, D., Peterson, N., Stecher, G., Nei, M., & Kumar, S. (2011). MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum Parsimony methods. Molecular Biology and Evolution, 28, 2731–2739.PubMedCentral CrossRef PubMed
    Thompson, J. D., Gibson, T. J., Plewniak, F., Jeanmougin, F., & Higgins, D. G. (1997). The Clustal X windows interface: flexible strategies for multiple sequence alignment aided by quality analysis tools. Nucleic Acids Research, 24, 4876–4882.CrossRef
    Tisch, D., & Schmoll, M. (2010). Light regulation of metabolic pathways in fungi. Applied Microbiology and Biotechnology, 85, 1259–1277.PubMedCentral CrossRef PubMed
    van Brouwershaven, I. R., Bruil, M. L., van Leeuwen, G. C. M., & Kox, L. F. F. (2010). A real-time (TaqMan) PCR assay to differentiate Monilinia fructicola from other brown rot fungi of fruit crops. Plant Pathology, 59, 548–555.CrossRef
    van Leeuwen, G. C. M., Stein, A., Holb, I., & Jeger, M. J. (2000). Yield loss in apple caused by Monilinia fructigena (Aderh. & Ruhl.) honey, and spatio-temporal dynamics of disease development. European Journal of Plant Pathology, 106, 519–528.CrossRef
    van Leeuwen, G. C. М., Baayen, R. P., Holb, I., & Jeger, M. J. (2002). Distinction of the Asiatic brown rot fungus Monilia polystroma sp. nov. from M. fructigena. Mycological Research, 106, 441–451.
    Vasić, M., Duduk, N., Ivanović, M. M., Obradović, A., & Ivanović, M. S. (2012). First report of brown rot caused by Monilinia fructicola on stored apple in Serbia. Plant Disease, 96, 456.
    Vasić, M., Duduk, N., & Ivanović, M. S. (2013). First report of brown rot caused by Monilia polystroma on apple in Serbia. Plant Disease, 97, 145.
    Vasić, M., Vico, I., & Duduk, N. (2014). Capability of some species-specific primer pairs to distinguish Monilia polystroma from Monilinia fructigena. (Paper presented at the 7th Congress on Plant Protection IOBC-WPRS, Zlatibor, Serbia).
    Whetzel, H. J. (1945). A synopsis genera and species of the Sclerotiniaceae, a family of stromatic inoperculate Discomycetes. Mycologia, 37, 648–714.CrossRef
    White, T. J., Bruns, T., Lee, S., & Taylor, J. (1990). Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. In M. A. Innis, D. H. Gelfand, J. J. Sninsky, & T. J. White (Eds.), PCR protocols: A guide to methods and applications (pp. 315–322). New York: Academic.
    Willetts, H. J. (1969). Cultural characteristics of brown rot fungi (Sclerotinia spp.). Mycologia, 61, 332–339.CrossRef PubMed
    Willetts, H. J. (1997). Morphology, development and evolution of stromata/sclerotia and macroconidia of the Sclerotiniaceae. Mycological Research, 101, 939–952.CrossRef
    Willetts, H. J., & Calonge, F. D. (1969). Spore development in the brown rot fungi (Sclerotinia spp.). New Phytologist, 68, 123–131.CrossRef
    Wormald, H. (1927). Further studies of the brown-rot fungi. II. A contribution to our knowledge of the distribution of the species of Sclerotinia causing brown-rot. Annals of Botany, 41, 287–299.
    Zhu, X. Q., & Guo, L. Y. (2010). First report of brown rot on plum caused by Monilia polystroma in China. Plant Disease, 94, 478.CrossRef
  • 作者单位:M. Vasić (1)
    N. Duduk (1)
    I. Vico (1)
    D. Rančić (2)
    V. Pajić (3)
    D. Backhouse (4)

    1. Faculty of Agriculture, Institute of Phytomedicine, Plant Pathology Department, University of Belgrade, Nemanjina 6, 11080, Belgrade, Serbia
    2. Faculty of Agriculture, Institute of Crop Science, Department of Botany, University of Belgrade, Nemanjina 6, 11080, Belgrade, Serbia
    3. Faculty of Agriculture, Institute of Agricultural Engineering, Department of Mathematics and Physics, University of Belgrade, Nemanjina 6, 11080, Belgrade, Serbia
    4. School of Environmental and Rural Science, University of New England, Armidale, NSW, 2351, Australia
  • 刊物类别:Biomedical and Life Sciences
  • 刊物主题:Life Sciences
    Plant Pathology
    Plant Sciences
    Ecology
  • 出版者:Springer Netherlands
  • ISSN:1573-8469
文摘
In this study, we compared cultural, morphological, pathogenic and biological features of Serbian isolates of Monilia polystroma and Monilinia fructigena from apple fruit. Isolates of M. polystroma formed characteristic stromatal plates throughout the cultures unlike M. fructigena, while mycelial growth rates were not distinguishable features between species. Conidia of M. fructigena were larger than M. polystroma, and both species produced slightly larger conidia on apple fruit than on V8 medium. The existence and morphology of the microconidial state of M. polystroma was described for the first time using light and SEM microscopy. Microconidia were globose (2.19–3.44 μm), similar to M. fructigena. Digestion of polymerase chain reaction (PCR) product of ribosomal ITS1-5.8S-ITS2 region with restriction enzyme HhaI provided a reliable method for specific detection of M. polystroma. In a pathogenicity test, both species produced larger lesions on cv. Golden Delicious, than on cvs. Idared and Granny Smith. On cv. Golden Delicious, the mean lesion size was not significatly different between species, while on cvs. Idared and Granny Smith M. fructigena tended to produce slightly larger lesions compared to M. polystroma. On artificially inoculated apple fruit after 1 and 4 months of incubation, M. polystroma, unlike M. fructigena, was capable of forming thicker and more compact stromata with complex morphology, which consisted of densely interwoven medullary hyphae covered with a discontinuous layer of melanized hyphal rind cells. The dynamics of stromata formation beneath the host’s cuticle also showed differences between two species, where M. polystroma formed this layer after 1 month, while M. fructigena after 4 months of incubation.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700