Home LiteratureArticle Details
PMID: 19502380 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Ride the wavelet: A multiscale analysis of genomic contexts flanking small insertions and deletions.

Genome research ·Vol. 19 ·No. 7 ·2009-07-00 ·Pages 1153-64

Kvikstad EM, Chiaromonte F, Makova KD

Abstract

Recent studies have revealed that insertions and deletions (indels) are more different in their formation than previously assumed. What remains enigmatic is how the local DNA sequence context contributes to these differences. To investigate the relative impact of various molecular mechanisms to indel formation, we analyzed sequence contexts of indels in the non protein- or RNA-coding, nonrepetitive (NCNR) portion of the human genome. We considered small (<or=30-bp) indels occurring in the human lineage since its divergence from chimpanzee and used wavelet techniques to study, simultaneously for multiple scales, the spatial patterns of short sequence motifs associated with indel mutagenesis. In particular, we focused on motifs associated with DNA polymerase activity, topoisomerase cleavage, double-strand breaks (DSBs), and their repair. We came to the following conclusions. First, many motifs are characterized by unique enrichment profiles in the vicinity of indels vs. indel-free portions of the genome, verifying the importance of sequence context in indel mutagenesis. Second, only limited similarity in motif frequency profiles is evident flanking insertions vs. deletions, confirming differences in their mutagenesis. Third, substantial similarity in frequency profiles exists between pairs of individual motifs flanking insertions (and separately deletions), suggesting "cooperation" among motifs, and thus molecular mechanisms, during indel formation. Fourth, the wavelet analyses demonstrate that all these patterns are highly dependent on scale (the size of an interval considered). Finally, our results depict a model of indel mutagenesis comprising both replication and recombination (via repair of paused replication forks and site-specific recombination).

MeSH Terms
Gene Deletion Genome, Human Humans INDEL Mutation/genetics Mutagenesis, Insertional Repetitive Sequences, Nucleic Acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Kvikstad Erika M
Center for Comparative Genomics and Bioinformatics, Penn State University, University Park, Pennsylvania 16802, USA.
Chiaromonte Francesca
Makova Kateryna D
References (49)
49 references, click to expand
  1. Human-specific insertions and deletions inferred from mammalian genome sequences.
    Genome Res. 2007 Jan;17(1):16-22 PMID: 17095709
  2. Transcription-associated mutational asymmetry in mammalian evolution.
    Nat Genet. 2003 Apr;33(4):514-7 PMID: 12612582
  3. Translocation and gross deletion breakpoints in human inherited disease and cancer I: Nucleotide composition and recombination-associated motifs.
    Hum Mutat. 2003 Sep;22(3):229-44 PMID: 12938088
  4. Computational biology: toward deciphering gene regulatory information in mammalian genomes.
    Biometrics. 2006 Sep;62(3):645-63 PMID: 16984301
  5. The genome-wide determinants of human and chimpanzee microsatellite evolution.
    Genome Res. 2008 Jan;18(1):30-8 PMID: 18032720
  6. Evolutionary and biomedical insights from the rhesus macaque genome.
    Science. 2007 Apr 13;316(5822):222-34 PMID: 17431167
  7. The human protein translin specifically binds single-stranded microsatellite repeats, d(GT)n, and G-strand telomeric repeats, d(TTAGGG)n: a study of the binding parameters.
    J Mol Biol. 2004 Dec 3;344(4):939-50 PMID: 15544804
  8. Predicting human nucleosome occupancy from primary sequence.
    PLoS Comput Biol. 2008 Aug 22;4(8):e1000134 PMID: 18725940
  9. Chromatin-associated periodicity in genetic variation downstream of transcriptional start sites.
    Science. 2009 Jan 16;323(5912):401-4 PMID: 19074313
  10. Saccharomyces cerevisiae C1D is implicated in both non-homologous DNA end joining and homologous recombination.
    Mol Microbiol. 2002 Nov;46(4):947-57 PMID: 12421302
  11. Mechanisms and consequences of replication fork arrest.
    Biochimie. 2000 Jan;82(1):5-17 PMID: 10717381
  12. Meta-analysis of indels causing human genetic disease: mechanisms of mutagenesis and the role of local DNA sequence complexity.
    Hum Mutat. 2003 Jan;21(1):28-44 PMID: 12497629
  13. Deficiency of RecA-dependent RecFOR and RecBCD pathways causes increased instability of the (GAA*TTC)n sequence when GAA is the lagging strand template.
    Nucleic Acids Res. 2007;35(20):6884-94 PMID: 17932052
  14. Context of deletions and insertions in human coding sequences.
    Hum Mutat. 2004 Feb;23(2):177-85 PMID: 14722921
  15. The translin ring specifically recognizes DNA ends at recombination hot spots in the human genome.
    J Biol Chem. 1997 Apr 25;272(17):11402-7 PMID: 9111049
  16. DNA polymerases and human diseases.
    Radiat Res. 2006 Nov;166(5):693-714 PMID: 17067213
  17. The Human Gene Mutation Database (HGMD) and its exploitation in the study of mutational mechanisms.
    Curr Protoc Bioinformatics. 2006 Jan;Chapter 1:Unit 1.13 PMID: 18428754
  18. Double-strand breaks in the myotonic dystrophy type 1 and the fragile X syndrome triplet repeat sequences induce different types of mutations in DNA flanking sequences in Escherichia coli.
    Nucleic Acids Res. 2006;34(19):5369-82 PMID: 17012280
  19. Cellular roles of DNA topoisomerases: a molecular perspective.
    Nat Rev Mol Cell Biol. 2002 Jun;3(6):430-40 PMID: 12042765
  20. Translin binding to DNA: recruitment through DNA ends and consequent conformational transitions.
    Biochemistry. 2002 Dec 24;41(51):15315-26 PMID: 12484770
  21. Aligning multiple genomic sequences with the threaded blockset aligner.
    Genome Res. 2004 Apr;14(4):708-15 PMID: 15060014
  22. The fidelity of DNA synthesis by eukaryotic replicative and translesion synthesis polymerases.
    Cell Res. 2008 Jan;18(1):148-61 PMID: 18166979
  23. Gene deletions causing human genetic disease: mechanisms of mutagenesis and the role of the local DNA sequence environment.
    Hum Genet. 1991 Mar;86(5):425-41 PMID: 2016084
  24. An initial map of insertion and deletion (INDEL) variation in the human genome.
    Genome Res. 2006 Sep;16(9):1182-90 PMID: 16902084
  25. Maintenance of fork integrity at damaged DNA and natural pause sites.
    DNA Repair (Amst). 2007 Jul 1;6(7):900-13 PMID: 17379579
  26. Microdeletions and microinsertions causing human genetic disease: common mechanisms of mutagenesis and the role of local DNA sequence complexity.
    Hum Mutat. 2005 Sep;26(3):205-13 PMID: 16086312
  27. Functional constraint and small insertions and deletions in the ENCODE regions of the human genome.
    Genome Biol. 2007;8(9):R180 PMID: 17784950
  28. The UCSC Genome Browser Database: 2008 update.
    Nucleic Acids Res. 2008 Jan;36(Database issue):D773-9 PMID: 18086701
  29. Sequence context affects the rate of short insertions and deletions in flies and primates.
    Genome Biol. 2008;9(2):R37 PMID: 18291026
  30. BCL2 oncogene translocation is mediated by a chi-like consensus.
    J Exp Med. 1992 Jun 1;175(6):1575-88 PMID: 1588282
  31. Acetylation increases access of remodelling complexes to their nucleosome targets to enhance initiation of V(D)J recombination.
    Nucleic Acids Res. 2007;35(18):6311-21 PMID: 17881376
  32. A macaque's-eye view of human insertions and deletions: differences in mechanisms.
    PLoS Comput Biol. 2007 Sep;3(9):1772-82 PMID: 17941704
  33. The X family portrait: structural insights into biological functions of X family polymerases.
    DNA Repair (Amst). 2007 Dec 1;6(12):1709-25 PMID: 17631059
  34. Spontaneous microdeletions and microinsertions in a transgenic mouse mutation detection system: analysis of age, tissue, and sequence specificity.
    Environ Mol Mutagen. 2001;37(4):311-23 PMID: 11424181
  35. Selection of target sites for mobile DNA integration in the human genome.
    PLoS Comput Biol. 2006 Nov 24;2(11):e157 PMID: 17166054
  36. Extent to which hairpin opening by the Artemis:DNA-PKcs complex can contribute to junctional diversity in V(D)J recombination.
    Nucleic Acids Res. 2007;35(20):6917-23 PMID: 17932067
  37. The majority of recent short DNA insertions in the human genome are tandem duplications.
    Mol Biol Evol. 2007 May;24(5):1190-7 PMID: 17322553
  38. Replication fork velocities at adjacent replication origins are coordinately modified during DNA replication in human cells.
    Mol Biol Cell. 2007 Aug;18(8):3059-67 PMID: 17522385
  39. DNA damage-dependent interaction of the nuclear matrix protein C1D with Translin-associated factor X (TRAX).
    J Cell Sci. 2002 Jan 1;115(Pt 1):207-16 PMID: 11801738
  40. Translin-associated factor X is post-transcriptionally regulated by its partner protein TB-RBP, and both are essential for normal cell proliferation.
    J Biol Chem. 2004 Mar 26;279(13):12605-14 PMID: 14711818
  41. Human Rad51 protein displays enhanced homologous pairing of DNA sequences resembling those at genetically unstable loci.
    Nucleic Acids Res. 2006 May 24;34(10):2847-52 PMID: 16723430
  42. A framework for collaborative analysis of ENCODE data: making large-scale analyses biologist-friendly.
    Genome Res. 2007 Jun;17(6):960-4 PMID: 17568012
  43. Characterization of a complex rearrangement with interstitial deletions and inversion on human chromosome 1.
    Chromosome Res. 2006;14(3):277-82 PMID: 16628498
  44. Crystal structure of the nucleosome core particle at 2.8 A resolution.
    Nature. 1997 Sep 18;389(6648):251-60 PMID: 9305837
  45. From GC skews to wavelets: a gentle guide to the analysis of compositional asymmetries in genomic data.
    Biochimie. 2008 Apr;90(4):648-59 PMID: 17988781
  46. Identification of sequence motifs at the breakpoint junctions in three t(1;9)(p36.3;q34) and delineation of mechanisms involved in generating balanced translocations.
    Hum Genet. 2006 Nov;120(4):519-26 PMID: 16847692
  47. Twenty-five years of the nucleosome, fundamental particle of the eukaryote chromosome.
    Cell. 1999 Aug 6;98(3):285-94 PMID: 10458604
  48. The relative levels of translin-associated factor X (TRAX) and testis brain RNA-binding protein determine their nucleocytoplasmic distribution in male germ cells.
    J Biol Chem. 2004 Jul 23;279(30):31514-23 PMID: 15138261
  49. A genomic code for nucleosome positioning.
    Nature. 2006 Aug 17;442(7104):772-8 PMID: 16862119
Article Info
Journal
Genome research
Abbr.
Genome Res
ISSN
1088-9051
Published
2009-07-00
Epub
2009-00-05
Pages
1153-64
Language
English
Region
United States
NLM ID
9518021
PMCID
PMC2704434
Subset
IM
Grants
NIGMS NIH HHS · R01 GM072264 · United States
NIGMS NIH HHS · R01-GM072264 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com