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HextractoR: an R package for automatic extraction of hairpins from genome-wide data

View ORCID ProfileCristian Yones, Natalia Macchiaroli, Laura Kamenetzky, View ORCID ProfileGeorgina Stegmayer, View ORCID ProfileDiego Milone
doi: https://doi.org/10.1101/2020.10.09.333898
Cristian Yones
1Research Institute for Signals, Systems and Computational Intelligence, sinc(i), FICH-UNL, CONICET, Ciudad Universitaria UNL, (3000) Santa Fe, Argentina
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  • For correspondence: cyones@sinc.unl.edu.ar
Natalia Macchiaroli
2Instituto de Investigaciones en Microbiología y Parasitología Médica (UBA), CONICET, Paraguay 2155, piso 13 (1121), Buenos Aires, Argentina
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Laura Kamenetzky
2Instituto de Investigaciones en Microbiología y Parasitología Médica (UBA), CONICET, Paraguay 2155, piso 13 (1121), Buenos Aires, Argentina
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Georgina Stegmayer
1Research Institute for Signals, Systems and Computational Intelligence, sinc(i), FICH-UNL, CONICET, Ciudad Universitaria UNL, (3000) Santa Fe, Argentina
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Diego Milone
1Research Institute for Signals, Systems and Computational Intelligence, sinc(i), FICH-UNL, CONICET, Ciudad Universitaria UNL, (3000) Santa Fe, Argentina
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Abstract

Extracting stem-loop sequences (hairpins) from genome-wide data is very important nowadays for some data mining tasks in bioinformatics. The genome preprocessing is very important because it has a strong influence on the later steps and the final results. For example, for novel miRNA prediction, all well-known hairpins must be properly located. Although there are some scripts that can be adapted and put together to achieve this task, they are outdated, none of them guarantees finding correspondence to well-known structures in the genome under analysis, and they do not take advantage of the latest advances in secondary structure prediction. We present here an R package for automatic extraction of hairpins from genome-wide data (HextractorR). HextractoR makes an exhaustive and smart analysis of the genome in order to obtain a very good set of short sequences for further processing. Moreover, genomes can be processed in parallel and with low memory requirements. Results obtained showed that HextractoR has effectively outperformed other methods.

HextractoR it is freely available at CRAN and Sourceforge.

Competing Interest Statement

The authors have declared no competing interest.

Footnotes

  • https://sourceforge.net/projects/sourcesinc/files/hextractor/

  • https://cran.r-project.org/web/packages/HextractoR/index.html

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY 4.0 International license.
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HextractoR: an R package for automatic extraction of hairpins from genome-wide data
Cristian Yones, Natalia Macchiaroli, Laura Kamenetzky, Georgina Stegmayer, Diego Milone
bioRxiv 2020.10.09.333898; doi: https://doi.org/10.1101/2020.10.09.333898
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HextractoR: an R package for automatic extraction of hairpins from genome-wide data
Cristian Yones, Natalia Macchiaroli, Laura Kamenetzky, Georgina Stegmayer, Diego Milone
bioRxiv 2020.10.09.333898; doi: https://doi.org/10.1101/2020.10.09.333898

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