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Comparative analysis of complete orthologous centromeres from two subspecies of rice reveals rapid variation of centromere organization and structure
Authors:Jianzhong Wu  Masaki Fujisawa  Zhixi Tian  Harumi Yamagata  Kozue Kamiya  Michie Shibata  Satomi Hosokawa  Yukiyo Ito  Masao Hamada  Satoshi Katagiri  Kanako Kurita  Mayu Yamamoto  Ari Kikuta  Kayo Machita  Wataru Karasawa  Hiroyuki Kanamori  Nobukazu Namiki  Hiroshi Mizuno  Jianxin Ma  Takuji Sasaki  Takashi Matsumoto
Affiliation:1. Plant Genome Research Unit, National Institute of Agrobiological Sciences, Tsukuba, Ibaraki, Japan;2. Research Division I, Institute of the Society for Techno‐innovation of Agriculture, Forestry and Fisheries, Tsukuba, Ibaraki, Japan;3. Present address: Central Laboratories for Frontier Technology, Kirin Holdings Co., Ltd, Suematsu Nonoichi, Ishikawa, Japan.;4. Department of Agronomy, Purdue University, West Lafayette, IN, USA
Abstract:Centromeres are sites for assembly of the chromosomal structures that mediate faithful segregation at mitosis and meiosis. This function is conserved across species, but the DNA components that are involved in kinetochore formation differ greatly, even between closely related species. To shed light on the nature, evolutionary timing and evolutionary dynamics of rice centromeres, we decoded a 2.25‐Mb DNA sequence covering the centromeric region of chromosome 8 of an indica rice variety, ‘Kasalath’ (Kas‐Cen8). Analysis of repetitive sequences in Kas‐Cen8 led to the identification of 222 long terminal repeat (LTR)‐retrotransposon elements and 584 CentO satellite monomers, which account for 59.2% of the region. A comparison of the Kas‐Cen8 sequence with that of japonica rice ‘Nipponbare’ (Nip‐Cen8) revealed that about 66.8% of the Kas‐Cen8 sequence was collinear with that of Nip‐Cen8. Although the 27 putative genes are conserved between the two subspecies, only 55.4% of the total LTR‐retrotransposon elements in ‘Kasalath’ had orthologs in ‘Nipponbare’, thus reflecting recent proliferation of a considerable number of LTR‐retrotransposons since the divergence of two rice subspecies of indica and japonica within Oryza sativa. Comparative analysis of the subfamilies, time of insertion, and organization patterns of inserted LTR‐retrotransposons between the two Cen8 regions revealed variations between ‘Kasalath’ and ‘Nipponbare’ in the preferential accumulation of CRR elements, and the expansion of CentO satellite repeats within the core domain of Cen8. Together, the results provide insights into the recent proliferation of LTR‐retrotransposons, and the rapid expansion of CentO satellite repeats, underlying the dynamic variation and plasticity of plant centromeres.
Keywords:rice Cen8  LTR‐retrotransposon  centromeric retrotransposons of rice  CentO satellite  active gene  centromere evolution
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