Simultaneous PCR detection of Paenibacillus larvae targeting insertion sequence IS256 and Melissococcus plutonius targeting pMP1 plasmid from hive specimens
Language English Country United States Media print-electronic
Document type Journal Article
Grant support
QK1710228
Ministerstvo Zemědělství
LX22NPO5103
Ministerstvo Školství, Mládeže a Tělovýchovy
PubMed
38180723
PubMed Central
PMC11003898
DOI
10.1007/s12223-023-01125-0
PII: 10.1007/s12223-023-01125-0
Knihovny.cz E-resources
- Keywords
- Apis mellifera, Melissococcus plutonius, Paenibacillus larvae, American foulbrood, European foulbrood, Multiplex PCR,
- MeSH
- Enterococcaceae * MeSH
- Larva microbiology MeSH
- Multiplex Polymerase Chain Reaction methods MeSH
- Paenibacillus larvae * genetics MeSH
- Paenibacillus * genetics MeSH
- Plasmids genetics MeSH
- DNA Transposable Elements MeSH
- Bees genetics MeSH
- Animals MeSH
- Check Tag
- Animals MeSH
- Publication type
- Journal Article MeSH
- Names of Substances
- DNA Transposable Elements MeSH
Paenibacillus larvae and Melissococcus plutonius represent the most threatening bacterial diseases of honeybee (Apis mellifera)-American and European foulbrood, respectively. For efficient control of those diseases, rapid and accurate detection of the pathogens is crucial. Therefore, we developed a novel multiplex PCR method simultaneously detecting both pathogens. To design and optimize multiplex PCR reaction, four strains of P. larvae representing four ERIC genotypes I-IV (strain DSM 7030-ERIC I, DSM 25430-ERIC II, LMG 16252-ERIC III, DSM 3615-ERIC IV) were selected. Those strains were fully sequenced using long-read sequencing (Sequel I, Pacific Biosciences). For P. larvae, the multicopy insertion sequence IS256 identified in all genotypes of P. larvae was selected to provide high sensitivity. M. plutonius was detected by plasmid pMP1 sequence and the virulence verified by following detection of ETX/MTX2 toxin responsible for pore formation in the cell membrane. As an internal control, a gene encoding for major royal jelly protein 1 specific for honeybees was selected. The method was validated on 36 clinical specimens collected from the colonies suffering from American and European foulbrood in the Czech Republic. Based on the results, sensitivity of PCR was calculated to 93.75% and specificity to 100% for P. larvae diagnosed from hive debris and 100% sensitivity and specificity for honeybee workers and larval scales as well as for diseased brood infected by M. plutonius.
Bee Research Institute at Dol Libcice nad Vltavou Czech Republic
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