TY - JOUR
T1 - Identification of repeat structure in large genomes using repeat probability clouds
AU - Gu, Wanjun
AU - Castoe, Todd A.
AU - Hedges, Dale J.
AU - Batzer, Mark A.
AU - Pollock, David D.
N1 - Funding Information:
This research was supported by the National Science Foundation (BCS-0218338 [M.A.B.] and EPS-0346411 [M.A.B. and D.D.P.]), the Louisiana Board of Regents Millennium Trust Health Excellence Fund (HEF (2000-05)-05 [M.A.B. and D.D.P.], HEF (2000-05)-01 [M.A.B.], and HEF (2001-06)-02 [M.A.B.]), the National Institutes of Health (R01 GM59290 [M.A.B.], R22/R33 GM065612-01 [D.D.P.], and R24 GM065580-01 [D.D.P.]), the State of Louisiana Board of Regents Support Fund (M.A.B. and D.D.P.), and a National Institutes of Health training grant (LM009451 [T.A.C.]).
PY - 2008/9/1
Y1 - 2008/9/1
N2 - The identification of repeat structure in eukaryotic genomes can be time-consuming and difficult because of the large amount of information (∼3 × 109 bp) that needs to be processed and compared. We introduce a new approach based on exact word counts to evaluate, de novo, the repeat structure present within large eukaryotic genomes. This approach avoids sequence alignment and similarity search, two of the most time-consuming components of traditional methods for repeat identification. Algorithms were implemented to efficiently calculate exact counts for any length oligonucleotide in large genomes. Based on these oligonucleotide counts, oligonucleotide excess probability clouds, or "P-clouds," were constructed. P-clouds are composed of clusters of related oligonucleotides that occur, as a group, more often than expected by chance. After construction, P-clouds were mapped back onto the genome, and regions of high P-cloud density were identified as repetitive regions based on a sliding window approach. This efficient method is capable of analyzing the repeat content of the entire human genome on a single desktop computer in less than half a day, at least 10-fold faster than current approaches. The predicted repetitive regions strongly overlap with known repeat elements as well as other repetitive regions such as gene families, pseudogenes, and segmental duplicons. This method should be extremely useful as a tool for use in de novo identification of repeat structure in large newly sequenced genomes.
AB - The identification of repeat structure in eukaryotic genomes can be time-consuming and difficult because of the large amount of information (∼3 × 109 bp) that needs to be processed and compared. We introduce a new approach based on exact word counts to evaluate, de novo, the repeat structure present within large eukaryotic genomes. This approach avoids sequence alignment and similarity search, two of the most time-consuming components of traditional methods for repeat identification. Algorithms were implemented to efficiently calculate exact counts for any length oligonucleotide in large genomes. Based on these oligonucleotide counts, oligonucleotide excess probability clouds, or "P-clouds," were constructed. P-clouds are composed of clusters of related oligonucleotides that occur, as a group, more often than expected by chance. After construction, P-clouds were mapped back onto the genome, and regions of high P-cloud density were identified as repetitive regions based on a sliding window approach. This efficient method is capable of analyzing the repeat content of the entire human genome on a single desktop computer in less than half a day, at least 10-fold faster than current approaches. The predicted repetitive regions strongly overlap with known repeat elements as well as other repetitive regions such as gene families, pseudogenes, and segmental duplicons. This method should be extremely useful as a tool for use in de novo identification of repeat structure in large newly sequenced genomes.
KW - Alignment
KW - Complete genome annotation
KW - Oligonucleotide counts
KW - P-clouds
KW - Repeat structure
UR - https://www.scopus.com/pages/publications/46649114729
U2 - 10.1016/j.ab.2008.05.015
DO - 10.1016/j.ab.2008.05.015
M3 - Article
C2 - 18541131
AN - SCOPUS:46649114729
SN - 0003-2697
VL - 380
SP - 77
EP - 83
JO - Analytical Biochemistry
JF - Analytical Biochemistry
IS - 1
ER -