Details

Title

Detection of nivalenol and deoxynivalenol chemotypes produced by Fusarium graminearum species complex isolated from barley in Iran using specific PCR assays

Journal title

Journal of Plant Protection Research

Yearbook

2017

Volume

vol. 57

Issue

No 3

Authors

Divisions of PAS

Nauki Biologiczne i Rolnicze

Publisher

Committee of Plant Protection PAS ; Institute of Plant Protection – National Research Institute

Date

2017

Identifier

DOI: 10.1515/jppr-2017-0033 ; ISSN 1427-4345 ; eISSN 1899-007X

Source

Journal of Plant Protection Research; 2017; vol. 57; No 3

References

Sarver (2011), NovelFusariumhead blight pathogens from Nepal and Louisiana revealed by multilocus genealogical concordance Fungal Genetic and Biology https org, null, 48, 12, doi.org/10.1016/j.fgb.2011.09.002 ; Lenc (2008), The use of PCR amplification in determining the toxigenic potential ofFusarium sambucinumandF solaniisolated from potato tubers with symptoms of dry rot, Polonica, 48, 12. ; Leslie (2006), TheFusariumLaboratory Manual Publish Ltd, null, 388. ; Yang (2008), der Fusariumpopulations on Chinese barley show a dramatic gradient in mycotoxin Profile https org, Phytopathology, 719, doi.org/10.1094/phyto-98-6-0719 ; Jennings (2004), Determination of deoxynivalenol and nivalenol chemotypes ofFusarium culmorumisolates from England and Wales by assay https org, Plant Pathology, 53, doi.org/10.1111/j.0032-0862.2004.00985.x ; Sampietro (2010), molecular based strategy for rapid diagnosis of toxigenicFusariumspecies associated to cereal grains from Argentina Fungal Biology https org, null, 114, doi.org/10.1016/j.mycres.2009.10.008 ; Zhang (2012), der analysis of theFusarium graminearumspecies complex from wheat in China show a shift to more aggressive isolates One https org, Population, 7, 31722, doi.org/10.1371/journal.pone.0031722 ; Waalwijk (2003), Major changes inFusariumspp in wheat in the Netherlands https org, European Journal of Plant Pathology, 109, doi.org/10.1007/978-94-017-1452-5_9 ; Nicholson (1998), Detection and quantification ofFusarium culmorumandFusarium graminearumin cereals using PCR assays and https org, Physiological Molecular Plant Pathology, 53, doi.org/10.1006/pmpp.1998.0170 ; Davari (2012), van - der de Rapid identification ofFusarium graminearumspecies complex using Rolling Circle Amplification of https org, Journal Microbiological Methods, 89, doi.org/10.1016/j.mimet.2012.01.017 ; Somma (2014), Phylogenetic analyses ofFusarium graminearumstrains from cereals in Italy characterisation of their molecular and chemical chemotypes Crop and Pasture https org, Science, 1, doi.org/10.1071/cp13314 ; Quarta (2006), Assessment of trichothecene chemotypes ofFusarium culmorumoccurring in Europe and https org, Food Additives Contaminants, 22, 309, doi.org/10.1080/02652030500058361 ; Akinsanmi (2004), Identity and pathogenicity ofFusariumspp isolated from wheat fields in Queensland and northern New South Wales https org, Australian Journal of Agricultural Research, 1, doi.org/10.1071/ar03090 ; Boutigny (2011), Analysis of theFusarium graminearumspecies complex from wheat barley and maize in South Africa provides evidence of species - specific differences in host preference and, Fungal Genetics Biology, 48, 914. ; Li (2005), of a generic PCR detection of deoxynivalenol and nivalenol chemotypes ofFusarium graminearum https org, Development FEMS Microbiology Letters, 243, doi.org/10.1016/j.femsle.2005.01.015 ; Obanor (2013), graminearumandFusarium pseudograminearumcaused the head blight epidemics in Australia https org, Plant Pathology, 1, doi.org/10.1111/j.1365-3059.2012.02615.x ; Kim (1993), Natural occurrence ofFusariummycotoxins trichothecenes zearalenone in barley and maize in Korea and, Applied Environmental Microbiology, 59, 11. ; Lenart (2013), Morphological and molecular identification and PCR amplification to determine the toxigenic potential ofFusariumspp isolated from maize ears in southern https org, Phytoparasitica, 41, 241, doi.org/10.1007/s12600-012-0284-7 ; Chandler (2003), of PCR assays totri andtri characterisation of chemotypes ofFusarium graminearum culmorumandFusarium cerealis and https org, Development Physiological Molecular Plant Pathology, 7, doi.org/10.1016/s0885-5765(03)00092-4 ; Haratian (2008), analysis of the gene to determine the genetic potential ofFusarium graminearumisolates from Iran to produce nivalenol and deoxynivalenol https org, Mycopathologia, 13, 166, doi.org/10.1007/s11046-008-9127-y ; Lee (2009), Genetic diversity and fitness ofFusarium graminearumpopulations from rice in Korea and https org, Applied Environmental Microbiology, 3289. ; Zhang (2007), Determination of the trichothcene mycotoxin chemotypes and associated geographical distribution and phylogenetic species of theFusarium graminearumclade from China https org, Mycological Research, 111. ; Yoruk (2016), Characterization of high - level deoxynivalenol producerFusarium graminearumandF culmorumisolates caused head blight and crown rot diseases in Turkey of Diseases and Protection https org, Journal Plant, 123, doi.org/10.1007/s41348-016-0027-y ; McMullen (1997), Scab of wheat and barley : a reemerging disease of devastating impact Disease https org, Plant, 12, 1340, doi.org/10.1094/pdis.1997.81.12.1340 ; Backhouse (2014), Global distribution ofFusarium graminearum asiaticumandF boothiifrom wheat in relation to climate https org, European Journal of Plant Pathology, 139, doi.org/10.1007/s10658-013-0374-5 ; Qu (2008), Geographic distribution and genetic diversity ofFusarium graminearumandF asiaticumon wheat spikes throughout China https org, Plant Pathology, 1, doi.org/10.1111/j.1365-3059.2007.01711.x ; Sampietro (2012), genotypes and chemotypes inFusarium graminearumcomplex strains isolated from maize fields of northwest Argentina https org, International Journal of Food Microbiology, 153, doi.org/10.1016/j.ijfoodmicro.2011.10.029 ; Nash (1962), Quantitative estimations by plat counts of propagules of the Bean rot rotFusariumin field soils, Phytopathology, 52, 567. ; Ward (2002), Ancestral polymorphism and adaptive evolution in the trichothecene mycotoxin gene cluster of phytopathogenicFusarium Proceedings of the National Academy of https org, Sciences USA, 14, 99, doi.org/10.1073/pnas.142307199 ; Miller (1991), chemotype of threeFusariumspecies https org, Mycologia, 121, doi.org/10.2307/3759927 ; Goswami (2004), Heading for disaster graminearumon cereal crops https org, Molecular Plant Pathology, 5, 515, doi.org/10.1111/j.1364-3703.2004.00252.x ; Postic (2012), ofFusariumspecies isolated from weeds and plant debris in of https org, Diversity Journal Phytopathology, 160, doi.org/10.1111/j.1439-0434.2011.01863.x ; Karugia (2009), structure of theFusarium graminearumspecies complex from a single Japanese wheat field sampled in two consecutive years Disease https org, Population Plant, 170, doi.org/10.1094/pdis-93-2-0170
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