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OrthoFinder: solving fundamental biases in whole genome comparisons dramatically improves orthogroup inference accuracy

Genome biology · 2015 · Vol. 16(1) · pp. 157–157
David EmmsSteven Kelly

Abstract

Identifying homology relationships between sequences is fundamental to biological research. Here we provide a novel orthogroup inference algorithm called OrthoFinder that solves a previously undetected gene length bias in orthogroup inference, resulting in significant improvements in accuracy. Using real benchmark datasets we demonstrate that OrthoFinder is more accurate than other orthogroup inference methods by between 8 % and 33 %. Furthermore, we demonstrate the utility of OrthoFinder by providing a complete classification of transcription factor gene families in plants revealing 6.9 million previously unobserved relationships.

RNA and protein synthesis mechanismsGenomics and Phylogenetic StudiesMachine Learning in BioinformaticsBiologyInferenceHuman geneticsGenome BiologyComputational biologyGenomeEvolutionary biologyComputational genomicsGenomicsGenetics

MeSH terms

AlgorithmsMultigene FamilyPhylogenyProteinsSoftwareTranscription FactorsGenes, PlantGenomics

Funding

  • Bill and Melinda Gates Foundation
Citations
3,870
FWCI
68.54
field-weighted impact
References
38
Percentile
100%
vs. same field & year
Citations per year
References
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Trends in Genetics · 2000 · 605 citations
Basic local alignment search tool
Journal of Molecular Biology · 1990 · 93,570 citations
Phytozome: a comparative platform for green plant genomics
Nucleic Acids Research · 2011 · 5,646 citations
The COG database: an updated version includes eukaryotes
BMC Bioinformatics · 2003 · 4,484 citations
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OrthoFinder: solving fundamental biases in whole genome comparisons dramatically improves orthogroup inference accuracy · Scinovex