Abstract
In earlier work, we introduced and discussed a generalized computational framework for identifying horizontal transfers. This framework relied on a gene's nucleotide composition, obviated the need for knowledge of codon boundaries and database searches, and was shown to perform very well across a wide range of archaeal and bacterial genomes when compared with previously published approaches, such as Codon Adaptation Index and C + G content. Nonetheless, two considerations remained outstanding: we wanted to further increase the sensitivity of detecting horizontal transfers and also to be able to apply the method to increasingly smaller genomes. In the discussion that follows, we present such a method, Wn-SVM, and show that it exhibits a very significant improvement in sensitivity compared with earlier approaches. Wn-SVM uses a one-class support-vector machine and can learn using rather small training sets. This property makes Wn-SVM particularly suitable for studying small-size genomes, similar to those of viruses, as well as the typically larger archaeal and bacterial genomes. We show experimentally that the new method results in a superior performance across a wide range of organisms and that it improves even upon our own earlier method by an average of 10% across all examined genomes. As a small-genome case study, we analyze the genome of the human cytomegalovirus and demonstrate that Wn-SVM correctly identifies regions that are known to be conserved and prototypical of all beta-herpesvirinae, regions that are known to have been acquired horizontally from the human host and, finally, regions that had not up to now been suspected to be horizontally transferred. Atypical region predictions for many eukaryotic viruses, including the alpha-, beta- and gamma-herpesvirinae, and 123 archaeal and bacterial genomes, have been made available online at http://cbcsrv.watson.ibm.com/HGT_SVM/.
MeSH Terms
Artificial Intelligence
Cytomegalovirus/genetics
Gene Transfer, Horizontal
Genome, Archaeal
Genome, Bacterial
Genome, Viral
Genomics/methods
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Tsirigos Aristotelis
New York University, Computer Science, New York, NY 10021, USA.
Rigoutsos Isidore
References (20)
20 references, click to expand
-
Lateral gene transfer and the nature of bacterial innovation.
Nature. 2000 May 18;405(6784):299-304
PMID: 10830951
-
Molecular archaeology of the Escherichia coli genome.
Proc Natl Acad Sci U S A. 1998 Aug 4;95(16):9413-7
PMID: 9689094
-
A new computational method for the detection of horizontal gene transfer events.
Nucleic Acids Res. 2005;33(3):922-33
PMID: 15716310
-
What drives codon choices in human genes?
J Mol Biol. 1996 Oct 4;262(4):459-72
PMID: 8893856
-
Codon usages in different gene classes of the Escherichia coli genome.
Mol Microbiol. 1998 Sep;29(6):1341-55
PMID: 9781873
-
Reevaluation of human cytomegalovirus coding potential.
Proc Natl Acad Sci U S A. 2003 Nov 11;100(23):13585-90
PMID: 14593199
-
Studies on the chemical nature of the substance inducing transformation of pneumococcal types. Inductions of transformation by a desoxyribonucleic acid fraction isolated from pneumococcus type III.
J Exp Med. 1979 Feb 1;149(2):297-326
PMID: 33226
-
On surrogate methods for detecting lateral gene transfer.
FEMS Microbiol Lett. 2001 Jul 24;201(2):187-91
PMID: 11470360
-
In silico structural and functional analysis of the human cytomegalovirus (HHV5) genome.
J Mol Biol. 2001 Jul 27;310(5):1151-66
PMID: 11502002
-
Human cytomegalovirus 5-kilobase immediate-early RNA is a stable intron.
J Virol. 2004 Dec;78(23):13182-9
PMID: 15542670
-
Estimating the support of a high-dimensional distribution.
Neural Comput. 2001 Jul;13(7):1443-71
PMID: 11440593
-
Horizontal gene transfer in bacterial and archaeal complete genomes.
Genome Res. 2000 Nov;10(11):1719-25
PMID: 11076857
-
Detection of genes with atypical nucleotide sequence in microbial genomes.
J Mol Evol. 2002 Mar;54(3):365-75
PMID: 11847562
-
Horizontal gene transfer: evidence and possible consequences.
Annu Rev Genet. 1994;28:237-61
PMID: 7893125
-
Lysogenic conversion by a filamentous phage encoding cholera toxin.
Science. 1996 Jun 28;272(5270):1910-4
PMID: 8658163
-
Codon preferences in free-living microorganisms.
Microbiol Rev. 1990 Jun;54(2):198-210
PMID: 2194095
-
Analysis of the protein-coding content of the sequence of human cytomegalovirus strain AD169.
Curr Top Microbiol Immunol. 1990;154:125-69
PMID: 2161319
-
In silico pattern-based analysis of the human cytomegalovirus genome.
J Virol. 2003 Apr;77(7):4326-44
PMID: 12634390
-
HGT-DB: a database of putative horizontally transferred genes in prokaryotic complete genomes.
Nucleic Acids Res. 2003 Jan 1;31(1):187-9
PMID: 12519978
-
Codon usage and tRNA content in unicellular and multicellular organisms.
Mol Biol Evol. 1985 Jan;2(1):13-34
PMID: 3916708