Scanning the human genome at kilobase resolution
- 21 February 2008
- journal article
- Published by Cold Spring Harbor Laboratory in Genome Research
- Vol. 18 (5), 751-762
- https://doi.org/10.1101/gr.068304.107
Abstract
Normal genome variation and pathogenic genome alteration frequently affect small regions in the genome. Identifying those genomic changes remains a technical challenge. We report here the development of the DGS (Ditag Genome Scanning) technique for high-resolution analysis of genome structure. The basic features of DGS include (1) use of high-frequent restriction enzymes to fractionate the genome into small fragments; (2) collection of two tags from two ends of a given DNA fragment to form a ditag to represent the fragment; (3) application of the 454 sequencing system to reach a comprehensive ditag sequence collection; (4) determination of the genome origin of ditags by mapping to reference ditags from known genome sequences; (5) use of ditag sequences directly as the sense and antisense PCR primers to amplify the original DNA fragment. To study the relationship between ditags and genome structure, we performed a computational study by using the human genome reference sequences as a model, and analyzed the ditags experimentally collected from the well-characterized normal human DNA GM15510 and the leukemic human DNA of Kasumi-1 cells. Our studies show that DGS provides a kilobase resolution for studying genome structure with high specificity and high genome coverage. DGS can be applied to validate genome assembly, to compare genome similarity and variation in normal populations, and to identify genomic abnormality including insertion, inversion, deletion, translocation, and amplification in pathological genomes such as cancer genomes.Keywords
This publication has 41 references indexed in Scilit:
- Genome-wide maps of chromatin state in pluripotent and lineage-committed cellsNature, 2007
- Genome-wide profiles of STAT1 DNA association using chromatin immunoprecipitation and massively parallel sequencingNature Methods, 2007
- Completing the map of human genetic variationNature, 2007
- High-Resolution Profiling of Histone Methylations in the Human GenomeCell, 2007
- Patterns of somatic mutation in human cancer genomesNature, 2007
- Structural variation in the human genomeNature Reviews Genetics, 2006
- Fine-scale structural variation of the human genomeNature Genetics, 2005
- Finishing the euchromatic sequence of the human genomeNature, 2004
- The male-specific region of the human Y chromosome is a mosaic of discrete sequence classesNature, 2003
- A map of human genome sequence variation containing 1.42 million single nucleotide polymorphismsNature, 2001