| Literature DB >> 29087335 |
Yan He1,2, Minghui Wang1,3, Stefanie Dukowic-Schulze4, Adele Zhou1, Choon-Lin Tiang1, Shay Shilo5, Gaganpreet K Sidhu1, Steven Eichten6, Peter Bradbury7, Nathan M Springer6, Edward S Buckler1,7, Avraham A Levy5, Qi Sun3, Jaroslaw Pillardy3, Penny M A Kianian4, Shahryar F Kianian8, Changbin Chen4, Wojciech P Pawlowski9.
Abstract
Meiotic recombination is the most important source of genetic variation in higher eukaryotes. It is initiated by formation of double-strand breaks (DSBs) in chromosomal DNA in early meiotic prophase. The DSBs are subsequently repaired, resulting in crossovers (COs) and noncrossovers (NCOs). Recombination events are not distributed evenly along chromosomes but cluster at recombination hotspots. How specific sites become hotspots is poorly understood. Studies in yeast and mammals linked initiation of meiotic recombination to active chromatin features present upstream from genes, such as absence of nucleosomes and presence of trimethylation of lysine 4 in histone H3 (H3K4me3). Core recombination components are conserved among eukaryotes, but it is unclear whether this conservation results in universal characteristics of recombination landscapes shared by a wide range of species. To address this question, we mapped meiotic DSBs in maize, a higher eukaryote with a large genome that is rich in repetitive DNA. We found DSBs in maize to be frequent in all chromosome regions, including sites lacking COs, such as centromeres and pericentromeric regions. Furthermore, most DSBs are formed in repetitive DNA, predominantly Gypsy retrotransposons, and only one-quarter of DSB hotspots are near genes. Genic and nongenic hotspots differ in several characteristics, and only genic DSBs contribute to crossover formation. Maize hotspots overlap regions of low nucleosome occupancy but show only limited association with H3K4me3 sites. Overall, maize DSB hotspots exhibit distribution patterns and characteristics not reported previously in other species. Understanding recombination patterns in maize will shed light on mechanisms affecting dynamics of the plant genome.Entities:
Keywords: chromosomes; double-strand breaks; maize; meiosis; recombination
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Year: 2017 PMID: 29087335 PMCID: PMC5699076 DOI: 10.1073/pnas.1713225114
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205