Maize centromeres: Organization and functional adaptation in the genetic background of oat

被引:189
作者
Jin, WW
Melo, JR
Nagaki, K
Talbert, PB
Henikoff, S
Dawe, RK
Jiang, JM [1 ]
机构
[1] Univ Wisconsin, Dept Hort, Madison, WI 53706 USA
[2] Univ Georgia, Dept Plant Biol, Athens, GA 30602 USA
[3] Fred Hutchinson Canc Res Ctr, Howard Hughes Med Inst, Seattle, WA 98109 USA
关键词
D O I
10.1105/tpc.018937
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Centromeric DNA sequences in multicellular eukaryotes are often highly repetitive and are not unique to a specific centromere or to centromeres at all. Thus, it is a major challenge to study the fine structure of individual plant centromeres. We used a DNA fiber-fluorescence in situ hybridization approach to study individual maize (Zea mays) centromeres using oat (Avena sativa)-maize chromosome addition lines. The maize centromere-specific satellite repeat CentC in the addition lines allowed us to delineate the size and organization of centromeric DNA of individual maize chromosomes. We demonstrate that the cores of maize centromeres contain mainly CentC arrays and clusters of a centromere-specific retrotransposon, CRM. CentC and CRM sequences are highly intermingled. The amount of CentC/CRM sequence varies from similar to300 to >2800 kb among different centromeres. The association of CentC and CRM with centromeric histone H3 (CENH3) was visualized by a sequential detection procedure on stretched centromeres. The analysis revealed that CENH3 is always associated with CentC and CRM but that not all CentC or CRM sequences are associated with CENH3. We further demonstrate that in the chromosomal addition lines in which two CenH3 genes were present, one from oat and one from maize, the oat CENH3 was consistently incorporated by the maize centromeres.
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页码:571 / 581
页数:11
相关论文
共 51 条
[1]  
ALFENITO MR, 1993, GENETICS, V135, P589
[2]   Genomic microarray analysis reveals distinct locations for the CENP-A binding domains in three human chromosome 13q32 neocentromeres [J].
Alonso, A ;
Mahmood, R ;
Li, SL ;
Cheung, F ;
Yoda, K ;
Warburton, PE .
HUMAN MOLECULAR GENETICS, 2003, 12 (20) :2711-2721
[3]   Chromosome-specific molecular organization of maize (Zea mays L.) centromeric regions [J].
Ananiev, EV ;
Phillips, RL ;
Rines, HW .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (22) :13073-13078
[4]   A cereal centromeric sequence [J].
AragonAlcaide, L ;
Miller, T ;
Schwarzacher, T ;
Reader, S ;
Moore, G .
CHROMOSOMA, 1996, 105 (05) :261-268
[5]   Conserved organization of centromeric chromatin in flies and humans [J].
Blower, MD ;
Sullivan, BA ;
Karpen, GH .
DEVELOPMENTAL CELL, 2002, 2 (03) :319-330
[6]   The pachytene chromosomes of maize as revealed by fluorescence in situ hybridization with repetitive DNA sequences [J].
Chen, CC ;
Chen, CM ;
Hsu, FC ;
Wang, CJ ;
Yang, JT ;
Kao, YY .
THEORETICAL AND APPLIED GENETICS, 2000, 101 (1-2) :30-36
[7]   WIDE HYBRIDIZATION OF HORDEUM-VULGARE X ZEA-MAYS [J].
CHEN, FQ ;
HAYES, PM ;
RIVIN, CJ .
GENOME, 1991, 34 (04) :603-605
[8]   Resolution of fluorescence in-situ hybridization mapping on rice mitotic prometaphase chromosomes, meiotic pachytene chromosomes and extended DNA fibers [J].
Cheng, ZK ;
Buell, CR ;
Wing, RA ;
Jiang, JM .
CHROMOSOME RESEARCH, 2002, 10 (05) :379-387
[9]   Functional rice centromeres are marked by a satellite repeat and a centromere-specific retrotransposon [J].
Cheng, ZK ;
Dong, FG ;
Langdon, T ;
Shu, OY ;
Buell, CR ;
Gu, MH ;
Blattner, FR ;
Jiang, JM .
PLANT CELL, 2002, 14 (08) :1691-1704
[10]   Centromere proteins and chromosome inheritance: a complex affair [J].
Dobie, KW ;
Hari, KL ;
Maggert, KA ;
Karpen, GH .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1999, 9 (02) :206-217