BACKGROUND: Second generation technologies have advantages over Sanger; however, they have resulted in new challenges for the genome construction process, especially because of the small size of the reads, despite the high degree of coverage. Independent of the program chosen for the construction process, DNA sequences are superimposed, based on identity, to extend the reads, generating contigs; mismatches indicate a lack of homology and are not included. This process improves our confidence in the sequences that are generated. FINDINGS: We developed Quality Assessment Software, with which one can review graphs showing the distribution of quality values from the sequencing reads. This software allow us to adopt more stringent quality standards for sequence data, based on quality-graph analysis and estimated coverage after applying the quality filter, providing acceptable sequence coverage for genome construction from short reads. CONCLUSIONS: Quality filtering is a fundamental step in the process of constructing genomes, as it reduces the frequency of incorrect alignments that are caused by measuring errors, which can occur during the construction process due to the size of the reads, provoking misassemblies. Application of quality filters to sequence data, using the software Quality Assessment, along with graphing analyses, provided greater precision in the definition of cutoff parameters, which increased the accuracy of genome construction.
BACKGROUND: Second generation technologies have advantages over Sanger; however, they have resulted in new challenges for the genome construction process, especially because of the small size of the reads, despite the high degree of coverage. Independent of the program chosen for the construction process, DNA sequences are superimposed, based on identity, to extend the reads, generating contigs; mismatches indicate a lack of homology and are not included. This process improves our confidence in the sequences that are generated. FINDINGS: We developed Quality Assessment Software, with which one can review graphs showing the distribution of quality values from the sequencing reads. This software allow us to adopt more stringent quality standards for sequence data, based on quality-graph analysis and estimated coverage after applying the quality filter, providing acceptable sequence coverage for genome construction from short reads. CONCLUSIONS: Quality filtering is a fundamental step in the process of constructing genomes, as it reduces the frequency of incorrect alignments that are caused by measuring errors, which can occur during the construction process due to the size of the reads, provoking misassemblies. Application of quality filters to sequence data, using the software Quality Assessment, along with graphing analyses, provided greater precision in the definition of cutoff parameters, which increased the accuracy of genome construction.
Authors: Jonathan Butler; Iain MacCallum; Michael Kleber; Ilya A Shlyakhter; Matthew K Belmonte; Eric S Lander; Chad Nusbaum; David B Jaffe Journal: Genome Res Date: 2008-03-13 Impact factor: 9.043
Authors: Adriana Ribeiro Carneiro; Rommel Thiago Jucá Ramos; Hivana Dall'Agnol; Anne Cybelle Pinto; Siomar de Castro Soares; Anderson Rodrigues Santos; Luis Carlos Guimarães; Sintia Silva Almeida; Rafael Azevedo Baraúna; Diego Assis das Graças; Luciano Chaves Franco; Amjad Ali; Syed Shah Hassan; Catarina Isabel P Nunes; Maria Silvanira Barbosa; Karina Kelly Fiaux; Flávia Figueira Aburjaile; Eudes Guilherme Vieira Barbosa; Syeda Marriam Bakhtiar; Daniella Vilela; Felipe Nóbrega; Adriana Lopes dos Santos; Marta Sofia P Carepo; Vasco Azevedo; Maria Paula Cruz Schneider; Vivian Helena Pellizari; Artur Silva Journal: J Bacteriol Date: 2012-12 Impact factor: 3.490
Authors: Syed Shah Hassan; Maria Paula C Schneider; Rommel Thiago Jucá Ramos; Adriana R Carneiro; Alex Ranieri; Luis Carlos Guimarães; Amjad Ali; Syeda Marriam Bakhtiar; Ulisses de Pádua Pereira; Anderson Rodrigues dos Santos; Siomar de Castro Soares; Fernanda Dorella; Anne Cybelle Pinto; Dayana Ribeiro; Maria Silvanira Barbosa; Síntia Almeida; Vinícius Abreu; Flávia Aburjaile; Karina Fiaux; Eudes Barbosa; Carlos Diniz; Flavia S Rocha; Rashmi Saxena; Sandeep Tiwari; Vasudeo Zambare; Preetam Ghosh; Luis G C Pacheco; Christopher G Dowson; Anil Kumar; Debmalya Barh; Anderson Miyoshi; Vasco Azevedo; Artur Silva Journal: J Bacteriol Date: 2012-10 Impact factor: 3.490
Authors: Rommel Thiago Jucá Ramos; Adriana R Carneiro; Pablo H Caracciolo; Vasco Azevedo; Maria Paula C Schneider; Debmalya Barh; Artur Silva Journal: Bioinformation Date: 2013-06-29
Authors: Fernanda A Dorella; Alfonso Gala-Garcia; Anne C Pinto; Boutros Sarrouh; Camila A Antunes; Dayana Ribeiro; Flavia F Aburjaile; Karina K Fiaux; Luis C Guimarães; Núbia Seyffert; Rachid A El-Aouar; Renata Silva; Syed S Hassan; Thiago L P Castro; Wanderson S Marques; Rommel Ramos; Adriana Carneiro; Pablo de Sá; Anderson Miyoshi; Vasco Azevedo; Artur Silva Journal: Comput Struct Biotechnol J Date: 2013-10-13 Impact factor: 7.271
Authors: Diego Assis das Graças; Rommel Thiago Jucá Ramos; Ana Carolina Vieira Araújo; Ramiro Zahlouth; Adriana Ribeiro Carneiro; Thiago Souza Lopes; Rafael Azevedo Baraúna; Vasco Azevedo; Maria Paula Cruz Schneider; Vivian Helena Pellizari; Artur Silva Journal: Genome Announc Date: 2013-05-23
Authors: Thiago L P Castro; Nubia Seyffert; Rommel T J Ramos; Silvanira Barbosa; Rodrigo D O Carvalho; Anne Cybelle Pinto; Adriana Ribeiro Carneiro; Wanderson Marques Silva; Luis G C Pacheco; Christopher Downson; Maria P C Schneider; Anderson Miyoshi; Vasco Azevedo; Artur Silva Journal: Microb Biotechnol Date: 2013-01-15 Impact factor: 5.813