Molecular identification of fungi isolated from stem tissue of Upland cotton (Gossypium hirsutum)

2005 ◽  
Vol 53 (6) ◽  
pp. 571 ◽  
Author(s):  
L. Augusto Becerra-LopezLavalle ◽  
Jennifer A. Saleeba ◽  
Bruce R. Lyon

Molecular techniques such as restriction fragment length polymorphism (RFLP) analysis, random amplification of polymorphic DNA (RAPD) fingerprinting, and DNA sequencing and database comparison, were employed to identify fungi isolated from field-grown cotton plants (Gossypium hirsutum L.). DNA fragments of between 510 and 590 bp, representing the two rDNA (rDNA) internal transcribed spacers (ITS1 and ITS2) and the intervening 5.8S rRNA gene, were amplified from the fungi with eukaryotic consensus primers. Subsequent digestion with the restriction endonucleases AluI, CfoI, HaeIII, HinfI and HpaII enabled the allotment of all 57 isolates to 13 different groups. Restriction analysis was supported by RAPD–PCR analysis of multiple isolates and rDNA sequencing of representative fungi from each group. Sequence alignment and comparison with rDNA sequences of other fungi available in GenBank allowed for putative identification of three different taxa of Fusarium, two taxa each of Cladosporium, Diaporthe and Nectria, and one taxon each of Alternaria, Ampelomyces, Bartalinia, Phaeosphaeria and Rhizoctonia. Many of the stem-colonising fungi identified in this study are either pathogenic on cotton or have elsewhere been found to act as biocontrol agents.

2003 ◽  
Vol 15 (4) ◽  
pp. 390-394 ◽  
Author(s):  
Dawn C. Hayes ◽  
Rebecca R. Anderson ◽  
Richard L. Walker

Accurate identification of the bovine pathogen Tritrichomonas foetus is sometimes complicated by the presence of other trichomonadid protozoa in clinical samples. A highly specific and reproducible approach for differentiating 3 common types of bovine trichomonadid protozoa found in the bovine preputial cavity, T. foetus, Pentatrichomonas hominis, and a Tetratrichomonas species, was developed using polymerase chain reaction (PCR) and restriction fragment length polymorphism (RFLP) analysis. Universal trichomonadid protozoa primers, TFR1 and TFR2, were used to amplify the 5.8S rRNA gene and internal transcribed spacer regions (ITSRs), and the products were digested with the restriction enzyme HpyCH4IV. Restriction fragment length polymorphism analysis was performed on 55 trichomonad isolates from bovine preputial washing and scraping samples. The RFLP results correlated 100% with 5.8S rRNA gene and ITSR sequence results and PCR results with primers specific for T. foetus. The results of this study demonstrate that PCR and RFLP analysis can be used in lieu of DNA sequencing to identify the specific trichomonadid protozoa isolated from the bovine preputial cavity.


2020 ◽  
Vol 59 (1) ◽  
pp. 55-61
Author(s):  
Ghobad BABAEI ◽  
Seyyed Alireza ESMAEILZADEH-HOSSEINI ◽  
Mahbobeh ZANDIAN ◽  
Vahid NIKBAKHT

Phytoplasma symptoms, including proliferation, witches’ broom, leaf rolling and yellowing, were observed in jujube (Ziziphus jujube) nurseries in the East of Iran. Total nucleic acid was extracted from symptomatic and symptomless plants, and was tested for phytoplasma presence using nested PCR. Amplicons of about 1.8 kb (primer pair P1/P7) and 1.25 kb (R16F2n/R16R2) were obtained from all symptomatic plants but not from symptomless plants. Restriction fragment length polymorphism (RFLP) analysis of R16F2n/R2 amplicons using KpnI, HaeIII, RsaI, AluI, HpaII, HhaI, TaqI, MseI, BfaI and ThaI restriction enzymes showed two RFLP patterns referable to 16SrI and 16SrVI phytoplasma groups. The consensus sequences of Z. jujube yellowing and witches’ broom of six samples correspond to ‘Candidatus Phytoplasma asteris’ and ‘Candidatus Phytoplasma trifolii’-related strains. Two R16F2n/R16R2 16S rDNA sequences representative of each RFLP profile, one each from witches’ broom (accession number MK379605) and yellowing (MK379604) host symptoms, were submitted to the GenBank. Phylogenetic analysis confirmed that the phytoplasma strains associated with jujube yellowing clustered within the 16SrI phytoplasma clade, and those associated with witches’ broom clustered within the 16SrVI clade. Restriction analysis confirmed that virtual RFLP patterns of the jujube yellowing and witches’ broom phytoplasma strains were identical to the reference pattern of 16SrI-B and 16SrVI-A. This is the first report of these phytoplasma strains associations with witches’ broom and yellowing in jujube plants.


Genome ◽  
2003 ◽  
Vol 46 (4) ◽  
pp. 595-604 ◽  
Author(s):  
Ana Insua ◽  
María J López-Piñón ◽  
Ruth Freire ◽  
Josefina Méndez

The internal transcribed spacer (ITS) region of the ribosomal DNA from the European scallops Aequipecten opercularis, Mimachlamys varia, Hinnites distortus, and Pecten maximus was PCR amplified and sequenced. For each species, three or five clones were examined. The size ranged between 636 and 713 bp (ITS1, 209–276 bp; 5.8S rRNA gene, 157 bp; ITS2, 270–294 bp) and GC content ranged between 47 and 50% (ITS1, 43–49%; 5.8S rRNA gene, 56–57%; ITS2, 44–49%). Variation within repeats was minimal; only clones from M. varia and P. maximus displayed a few variable sites in ITS2. Among scallops, including Chlamys farreri whose ITS sequence appears in databases, significant variation was observed in both ITS1 and ITS2. Phylogenetic analysis using ITS1, ITS2, or both spacer sequences always yielded trees with similar topology. Aequipecten opercularis and P. maximus grouped in one clade and the other three scallops (C. farreri, M. varia, and H. distortus) in another, where M. varia and H. distortus are the more closely related species. These results provide new insights into the evolutionary relationships of scallop species and corroborate the close evolutionary relationship between the tribes Aequipectinini and Pectinini previously deduced from 18S rDNA sequences.Key words: scallops, Pectinidae, ribosomal DNA, internal transcribed spacers, phylogeny.


Plant Disease ◽  
2013 ◽  
Vol 97 (3) ◽  
pp. 419-419 ◽  
Author(s):  
M. C. Canale ◽  
I. P. Bedendo

Cauliflower stunt, caused by a phytoplasma of the group 16SrIII-J, was reported in the beginning of 2012 and has occurred with high incidences of infected plants (up to 90%) in crops located in the state of São Paulo in the southeast region of Brazil (3). Diseased plants exhibit general stunting, malformation of inflorescence, reddening leaves, and vessel necrosis (3). Further investigations with plants displaying identical symptoms collected in Nova Bassano, state of Rio Grande do Sul, Brazilian south region, have revealed the presence of a phytoplasma distinct from 16SrIII-J subgroup. Four symptomatic plus four asymptomatic samples were assayed from a field, and the presence of phytoplasma was evidenced by nested PCR assays performed with primers P1/Tint followed by R16F2n/16R2 in three affected plants, which amplified genomic fragments of 1.2 kb from the 16S rRNA gene. No amplification occurred in non-affected samples. Nested PCR products analyzed by conventional RFLP (2) using the enzymes AluI, RsaI, KpnI, HpaII, MseI, HhaI, MboI, and BstUI pointed to the presence of a phytoplasma belonging to group 16SrXV-A in all three phytoplasma-positive samples. Virtual RFLP analysis based on restriction patterns, derived from in silico digestion with 17 endonucleases (4), confirmed the previous results obtained from those samples by conventional RFLP. The 16S rDNA sequences of this phytoplasma identified in cauliflower (GenBank Accession No. JN818845) shared 99% sequence similarity with the reference phytoplasma for subgroup 16SrXV-A (Hibiscus witches'-broom phytoplasma, AF147708), designated ‘Candidatus Phytoplasma brasiliense.’ Analysis of putative restriction sites showed excellent identity between the phytoplasma studied here and the reference phytoplasma. In addition, the arrangement of branches of a phylogenetic tree constructed with phytoplasmas representing diverse 16Sr groups and subgroups supported that the phytoplasma found in cauliflower is closed related to the representative of the subgroup 16SrXV-A. Association of distinct phytoplasmas with the same kind of disease is not rare and the present pathosystem constitutes a new example. Members of this subgroup have been described almost exclusively in Brazil and previously reported in Sida sp., periwinkle, and hibiscus (1). In some European countries, as well as in the United States and Canada, phytoplasmas belonging to group 16SrI has been associated with this type of disease, which has been reported for various species of the genus Brassica, as published in previous works (3). However, a representative of the group 16SrVI was described in infected plants in Iran (3). Although the 16SrIII-J phytoplasma is currently the most important agent of cauliflower stunt in Brazil, and members of 16SrI are prevalent in other countries, this study revealed that a 16Sr XV-A phytoplasma may be also associated with this important disease of brassicas. Besides, the findings here reported expand the natural host range, including cauliflower as new host for phytoplasmas affiliated with 16SrXV-A. References: (1) B. Eckstein et al. Plant Dis. 95:363, 2009. (2) I. M. Lee et al. Int. J. Syst. Bacteriol. 48:1153, 1998. (3) M. C. C. Rappussi et al. Eur. J. Plant. Pathol. 133:829, 2012. (4) Wei et al. Int. J. Syst. Evol. Microbiol. 57:1855, 2007.


2004 ◽  
Vol 4 (4-5) ◽  
pp. 377-388 ◽  
Author(s):  
M KATSU ◽  
S KIDD ◽  
A ANDO ◽  
M MORETTIBRANCHINI ◽  
Y MIKAMI ◽  
...  

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