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1.
Genetics ; 227(1)2024 05 07.
Article in English | MEDLINE | ID: mdl-38301657

ABSTRACT

FlyBase (flybase.org) is a model organism database and knowledge base about Drosophila melanogaster, commonly known as the fruit fly. Researchers from around the world rely on the genetic, genomic, and functional information available in FlyBase, as well as its tools to view and interrogate these data. In this article, we describe the latest developments and updates to FlyBase. These include the introduction of single-cell RNA sequencing data, improved content and display of functional information, updated orthology pipelines, new chemical reports, and enhancements to our outreach resources.


Subject(s)
Databases, Genetic , Drosophila melanogaster , Animals , Drosophila melanogaster/genetics , Genes, Insect , Genome, Insect , Genomics/methods
2.
Genetics ; 220(4)2022 04 04.
Article in English | MEDLINE | ID: mdl-35266522

ABSTRACT

FlyBase provides a centralized resource for the genetic and genomic data of Drosophila melanogaster. As FlyBase enters our fourth decade of service to the research community, we reflect on our unique aspects and look forward to our continued collaboration with the larger research and model organism communities. In this study, we emphasize the dedicated reports and tools we have constructed to meet the specialized needs of fly researchers but also to facilitate use by other research communities. We also highlight ways that we support the fly community, including an external resources page, help resources, and multiple avenues by which researchers can interact with FlyBase.


Subject(s)
Databases, Genetic , Drosophila melanogaster , Animals , Drosophila melanogaster/genetics , Genome , Genomics
3.
Nucleic Acids Res ; 47(D1): D759-D765, 2019 01 08.
Article in English | MEDLINE | ID: mdl-30364959

ABSTRACT

FlyBase (flybase.org) is a knowledge base that supports the community of researchers that use the fruit fly, Drosophila melanogaster, as a model organism. The FlyBase team curates and organizes a diverse array of genetic, molecular, genomic, and developmental information about Drosophila. At the beginning of 2018, 'FlyBase 2.0' was released with a significantly improved user interface and new tools. Among these important changes are a new organization of search results into interactive lists or tables (hitlists), enhanced reference lists, and new protein domain graphics. An important new data class called 'experimental tools' consolidates information on useful fly strains and other resources related to a specific gene, which significantly enhances the ability of the Drosophila researcher to design and carry out experiments. With the release of FlyBase 2.0, there has also been a restructuring of backend architecture and a continued development of application programming interfaces (APIs) for programmatic access to FlyBase data. In this review, we describe these major new features and functionalities of the FlyBase 2.0 site and how they support the use of Drosophila as a model organism for biological discovery and translational research.


Subject(s)
Databases, Genetic , Drosophila melanogaster/genetics , Genome, Insect/genetics , Genomics , Animals , Protein Domains/genetics , Software
4.
Nucleic Acids Res ; 45(D1): D663-D671, 2017 01 04.
Article in English | MEDLINE | ID: mdl-27799470

ABSTRACT

Since 1992, FlyBase (flybase.org) has been an essential online resource for the Drosophila research community. Concentrating on the most extensively studied species, Drosophila melanogaster, FlyBase includes information on genes (molecular and genetic), transgenic constructs, phenotypes, genetic and physical interactions, and reagents such as stocks and cDNAs. Access to data is provided through a number of tools, reports, and bulk-data downloads. Looking to the future, FlyBase is expanding its focus to serve a broader scientific community. In this update, we describe new features, datasets, reagent collections, and data presentations that address this goal, including enhanced orthology data, Human Disease Model Reports, protein domain search and visualization, concise gene summaries, a portal for external resources, video tutorials and the FlyBase Community Advisory Group.


Subject(s)
Computational Biology/methods , Databases, Genetic , Drosophila/genetics , Genomics/methods , Animals , Disease Models, Animal , Genetic Association Studies , Humans , Web Browser
5.
Curr Protoc Bioinformatics ; 56: 1.31.1-1.31.23, 2016 12 08.
Article in English | MEDLINE | ID: mdl-27930807

ABSTRACT

FlyBase (flybase.org) is the primary online database of genetic, genomic, and functional information about Drosophila species, with a major focus on the model organism Drosophila melanogaster. The long and rich history of Drosophila research, combined with recent surges in genomic-scale and high-throughput technologies, mean that FlyBase now houses a huge quantity of data. Researchers need to be able to rapidly and intuitively query these data, and the QuickSearch tool has been designed to meet these needs. This tool is conveniently located on the FlyBase homepage and is organized into a series of simple tabbed interfaces that cover the major data and annotation classes within the database. This unit describes the functionality of all aspects of the QuickSearch tool. With this knowledge, FlyBase users will be equipped to take full advantage of all QuickSearch features and thereby gain improved access to data relevant to their research. © 2016 by John Wiley & Sons, Inc.


Subject(s)
Databases, Genetic , Genomics/methods , Animals , Drosophila melanogaster/genetics , Genome/genetics
6.
G3 (Bethesda) ; 5(8): 1737-49, 2015 Jun 24.
Article in English | MEDLINE | ID: mdl-26109356

ABSTRACT

In the context of the FlyBase annotated gene models in Drosophila melanogaster, we describe the many exceptional cases we have curated from the literature or identified in the course of FlyBase analysis. These range from atypical but common examples such as dicistronic and polycistronic transcripts, noncanonical splices, trans-spliced transcripts, noncanonical translation starts, and stop-codon readthroughs, to single exceptional cases such as ribosomal frameshifting and HAC1-type intron processing. In FlyBase, exceptional genes and transcripts are flagged with Sequence Ontology terms and/or standardized comments. Because some of the rule-benders create problems for handlers of high-throughput data, we discuss plans for flagging these cases in bulk data downloads.


Subject(s)
Drosophila melanogaster/genetics , Molecular Sequence Annotation , Animals , Base Sequence , Codon, Terminator , Databases, Genetic , Mitochondria/genetics , Mitochondria/metabolism , Models, Genetic , Protein Biosynthesis , RNA Editing , RNA Splice Sites
7.
G3 (Bethesda) ; 5(8): 1721-36, 2015 Jun 24.
Article in English | MEDLINE | ID: mdl-26109357

ABSTRACT

We report the current status of the FlyBase annotated gene set for Drosophila melanogaster and highlight improvements based on high-throughput data. The FlyBase annotated gene set consists entirely of manually annotated gene models, with the exception of some classes of small non-coding RNAs. All gene models have been reviewed using evidence from high-throughput datasets, primarily from the modENCODE project. These datasets include RNA-Seq coverage data, RNA-Seq junction data, transcription start site profiles, and translation stop-codon read-through predictions. New annotation guidelines were developed to take into account the use of the high-throughput data. We describe how this flood of new data was incorporated into thousands of new and revised annotations. FlyBase has adopted a philosophy of excluding low-confidence and low-frequency data from gene model annotations; we also do not attempt to represent all possible permutations for complex and modularly organized genes. This has allowed us to produce a high-confidence, manageable gene annotation dataset that is available at FlyBase (http://flybase.org). Interesting aspects of new annotations include new genes (coding, non-coding, and antisense), many genes with alternative transcripts with very long 3' UTRs (up to 15-18 kb), and a stunning mismatch in the number of male-specific genes (approximately 13% of all annotated gene models) vs. female-specific genes (less than 1%). The number of identified pseudogenes and mutations in the sequenced strain also increased significantly. We discuss remaining challenges, for instance, identification of functional small polypeptides and detection of alternative translation starts.


Subject(s)
Drosophila melanogaster/genetics , Molecular Sequence Annotation , 3' Untranslated Regions , Animals , Databases, Genetic , Exons , Female , Male , Models, Genetic , RNA, Small Untranslated/chemistry , RNA, Small Untranslated/metabolism , Sequence Analysis, RNA , Transcription Initiation Site , Transcriptome
8.
Genome Res ; 17(12): 1823-36, 2007 Dec.
Article in English | MEDLINE | ID: mdl-17989253

ABSTRACT

The availability of sequenced genomes from 12 Drosophila species has enabled the use of comparative genomics for the systematic discovery of functional elements conserved within this genus. We have developed quantitative metrics for the evolutionary signatures specific to protein-coding regions and applied them genome-wide, resulting in 1193 candidate new protein-coding exons in the D. melanogaster genome. We have reviewed these predictions by manual curation and validated a subset by directed cDNA screening and sequencing, revealing both new genes and new alternative splice forms of known genes. We also used these evolutionary signatures to evaluate existing gene annotations, resulting in the validation of 87% of genes lacking descriptive names and identifying 414 poorly conserved genes that are likely to be spurious predictions, noncoding, or species-specific genes. Furthermore, our methods suggest a variety of refinements to hundreds of existing gene models, such as modifications to translation start codons and exon splice boundaries. Finally, we performed directed genome-wide searches for unusual protein-coding structures, discovering 149 possible examples of stop codon readthrough, 125 new candidate ORFs of polycistronic mRNAs, and several candidate translational frameshifts. These results affect >10% of annotated fly genes and demonstrate the power of comparative genomics to enhance our understanding of genome organization, even in a model organism as intensively studied as Drosophila melanogaster.


Subject(s)
Drosophila Proteins/genetics , Drosophila melanogaster/genetics , Genes, Insect , Genome, Insect , Animals , Base Sequence , Codon/genetics , Conserved Sequence , Drosophila Proteins/chemistry , Evolution, Molecular , Molecular Sequence Data , Reading Frames , Sequence Alignment
9.
Genome Biol ; 3(12): RESEARCH0083, 2002.
Article in English | MEDLINE | ID: mdl-12537572

ABSTRACT

BACKGROUND: The recent completion of the Drosophila melanogaster genomic sequence to high quality and the availability of a greatly expanded set of Drosophila cDNA sequences, aligning to 78% of the predicted euchromatic genes, afforded FlyBase the opportunity to significantly improve genomic annotations. We made the annotation process more rigorous by inspecting each gene visually, utilizing a comprehensive set of curation rules, requiring traceable evidence for each gene model, and comparing each predicted peptide to SWISS-PROT and TrEMBL sequences. RESULTS: Although the number of predicted protein-coding genes in Drosophila remains essentially unchanged, the revised annotation significantly improves gene models, resulting in structural changes to 85% of the transcripts and 45% of the predicted proteins. We annotated transposable elements and non-protein-coding RNAs as new features, and extended the annotation of untranslated (UTR) sequences and alternative transcripts to include more than 70% and 20% of genes, respectively. Finally, cDNA sequence provided evidence for dicistronic transcripts, neighboring genes with overlapping UTRs on the same DNA sequence strand, alternatively spliced genes that encode distinct, non-overlapping peptides, and numerous nested genes. CONCLUSIONS: Identification of so many unusual gene models not only suggests that some mechanisms for gene regulation are more prevalent than previously believed, but also underscores the complex challenges of eukaryotic gene prediction. At present, experimental data and human curation remain essential to generate high-quality genome annotations.


Subject(s)
Computational Biology/methods , Drosophila melanogaster/genetics , Euchromatin/genetics , Genes, Insect , Genome , Animals , Databases, Genetic , Databases, Protein , Drosophila Proteins/genetics , Humans
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