Abstract
Might DNA sequence variation reflect germline genetic activity and underlying chromatin structure? We investigated this question using medaka (Japanese killifish, Oryzias latipes), by comparing the genomic sequences of two strains (Hd-rR and HNI) and by mapping approximately 37.3 million nucleosome cores from Hd-rR blastulae and 11,654 representative transcription start sites from six embryonic stages. We observed a distinctive approximately 200-base pair (bp) periodic pattern of genetic variation downstream of transcription start sites; the rate of insertions and deletions longer than 1 bp peaked at positions of approximately +200, +400, and +600 bp, whereas the point mutation rate showed corresponding valleys. This approximately 200-bp periodicity was correlated with the chromatin structure, with nucleosome occupancy minimized at positions 0, +200, +400, and +600 bp. These data exemplify the potential for genetic activity (transcription) and chromatin structure to contribute to molding the DNA sequence on an evolutionary time scale.
MeSH Terms
Animals
Base Composition
Base Sequence
Chromatin/physiology,ultrastructure
DNA/chemistry,genetics
DNA Repair
Genetic Variation
Genome
INDEL Mutation
Mutagenesis
Mutation
Nucleosomes/physiology,ultrastructure
Oryzias/embryology,genetics
Point Mutation
Promoter Regions, Genetic
Transcription Initiation Site
Transcription, Genetic
Chemicals
Chromatin
Nucleosomes
DNA
Authors & Affiliations
18 authors, click to expand affiliations / ORCID
Sasaki Shin
Department of Computational Biology, Graduate School of Frontier Sciences, University of Tokyo, Kashiwa, 277-0882, Japan.
Mello Cecilia C
Shimada Atsuko
Nakatani Yoichiro
Hashimoto Shin-Ichi
Ogawa Masako
Matsushima Kouji
Gu Sam Guoping
Kasahara Masahiro
Ahsan Budrul
Sasaki Atsushi
Saito Taro
Suzuki Yutaka
Sugano Sumio
Kohara Yuji
Takeda Hiroyuki
Fire Andrew
Morishita Shinichi
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