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1.
Genet. mol. res. (Online) ; 6(4): 743-755, 2007. ilus
Article in English | LILACS | ID: lil-520067

ABSTRACT

In DNA microarray experiments, the gene fragments that are spotted on the slides are usually obtained by the synthesis of specific oligonucleotides that are able to amplify genes through PCR. Shotgun library sequences are an alternative to synthesis of primers for the study of each gene in the genome. The possibility of putting thousands of gene sequences into a single slide allows the use of shotgun clones in order to proceed with microarray analysis without a completely sequenced genome. We developed an OC Identifier tool (optimal clone identifier for genomic shotgun libraries) for the identification of unique genes in shotgun libraries based on a partially sequenced genome; this allows simultaneous use of clones in projects such as transcriptome and phylogeny studies, using comparative genomic hybridization and genome assembly. The OC Identifier tool allows comparative genome analysis, biological databases, query language in relational databases, and provides bioinformatics tools to identify clones that contain unique genes as alternatives to primer synthesis. The OC Identifier allows analysis of clones during the sequencing phase, making it possible to select genes of interest for construction of a DNA microarray.


Subject(s)
Computational Biology , Genome, Bacterial , Genomic Library , Software , Clone Cells , Cloning, Molecular , Oligonucleotide Array Sequence Analysis , Open Reading Frames
2.
Genet. mol. res. (Online) ; 5(1): 203-215, Mar. 31, 2006. ilus, graf
Article in English | LILACS | ID: lil-449132

ABSTRACT

We developed a database system for collaborative HIV analysis (DBCollHIV) in Brazil. The main purpose of our DBCollHIV project was to develop an HIV-integrated database system with analytical bioinformatics tools that would support the needs of Brazilian research groups for data storage and sequence analysis. Whenever authorized by the principal investigator, this system also allows the integration of data from different studies and/or the release of the data to the general public. The development of a database that combines sequences associated with clinical/epidemiological data is difficult without the active support of interdisciplinary investigators. A functional database that securely stores data and helps the investigator to manipulate their sequences before publication would be an attractive tool for investigators depositing their data and collaborating with other groups. DBCollHIV allows investigators to manipulate their own datasets, as well as integrating molecular and clinical HIV data, in an innovative fashion.


Subject(s)
Humans , HIV , Databases, Factual , Computational Biology , Cooperative Behavior , HIV Infections , Brazil , HIV Infections/drug therapy , HIV Infections/epidemiology , HIV Infections/virology , Software
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