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dc.creatorBayega A., Djambazian H., Tsoumani K.T., Gregoriou M.-E., Sagri E., Drosopoulou E., Mavragani-Tsipidou P., Giorda K., Tsiamis G., Bourtzis K., Oikonomopoulos S., Dewar K., Church D.M., Papanicolaou A., Mathiopoulos K.D., Ragoussis J.en
dc.date.accessioned2023-01-31T07:36:52Z
dc.date.available2023-01-31T07:36:52Z
dc.date.issued2020
dc.identifier10.1186/s12864-020-6672-3
dc.identifier.issn14712164
dc.identifier.urihttp://hdl.handle.net/11615/71199
dc.description.abstractBackground: The olive fruit fly, Bactrocera oleae, is the most important pest in the olive fruit agribusiness industry. This is because female flies lay their eggs in the unripe fruits and upon hatching the larvae feed on the fruits thus destroying them. The lack of a high-quality genome and other genomic and transcriptomic data has hindered progress in understanding the fly's biology and proposing alternative control methods to pesticide use. Results: Genomic DNA was sequenced from male and female Demokritos strain flies, maintained in the laboratory for over 45 years. We used short-, mate-pair-, and long-read sequencing technologies to generate a combined male-female genome assembly (GenBank accession GCA_001188975.2). Genomic DNA sequencing from male insects using 10x Genomics linked-reads technology followed by mate-pair and long-read scaffolding and gap-closing generated a highly contiguous 489 Mb genome with a scaffold N50 of 4.69 Mb and L50 of 30 scaffolds (GenBank accession GCA_001188975.4). RNA-seq data generated from 12 tissues and/or developmental stages allowed for genome annotation. Short reads from both males and females and the chromosome quotient method enabled identification of Y-chromosome scaffolds which were extensively validated by PCR. Conclusions: The high-quality genome generated represents a critical tool in olive fruit fly research. We provide an extensive RNA-seq data set, and genome annotation, critical towards gaining an insight into the biology of the olive fruit fly. In addition, elucidation of Y-chromosome sequences will advance our understanding of the Y-chromosome's organization, function and evolution and is poised to provide avenues for sterile insect technique approaches. © 2020 The Author(s).en
dc.language.isoenen
dc.sourceBMC Genomicsen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85082731211&doi=10.1186%2fs12864-020-6672-3&partnerID=40&md5=1683255eda0aadd707815902b7797c8b
dc.subjectgenomic DNAen
dc.subjectanimal cellen
dc.subjectanimal tissueen
dc.subjectArticleen
dc.subjectBactrocera oleaeen
dc.subjectcontrolled studyen
dc.subjectdevelopmental stageen
dc.subjectDNA sequencingen
dc.subjectDrosophila strainen
dc.subjectegg layingen
dc.subjectevolutionen
dc.subjectfemaleen
dc.subjectgene identificationen
dc.subjectgenomicsen
dc.subjectinsect larvaen
dc.subjectmate pair sequencingen
dc.subjectmolecular geneticsen
dc.subjectnonhumanen
dc.subjectpolymerase chain reactionen
dc.subjectRNA sequencingen
dc.subjectsex chromosomeen
dc.subjectsymbionten
dc.subjecttranscriptomicsen
dc.subjectY chromosome linkageen
dc.subjectanimalen
dc.subjectgeneticsen
dc.subjectinsect genomeen
dc.subjectmaleen
dc.subjectmetabolismen
dc.subjectTephritidaeen
dc.subjectY chromosomeen
dc.subjectAnimalsen
dc.subjectFemaleen
dc.subjectGenome, Insecten
dc.subjectMaleen
dc.subjectPolymerase Chain Reactionen
dc.subjectTephritidaeen
dc.subjectY Chromosomeen
dc.subjectBioMed Central Ltd.en
dc.titleDe novo assembly of the olive fruit fly (Bactrocera oleae) genome with linked-reads and long-read technologies minimizes gaps and provides exceptional y chromosome assemblyen
dc.typejournalArticleen


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