Artificial chromosome formation in maize (Zea mays L.)

被引:57
作者
Ananiev, Evgueni V. [1 ]
Wu, Chengcang [1 ]
Chamberlin, Mark A. [1 ]
Svitashev, Sergei [1 ]
Schwartz, Chris [1 ]
Gordon-Kamm, William [1 ]
Tingey, Scott [2 ]
机构
[1] Pioneer HiBred Int Inc, Johnston, IA 50131 USA
[2] DuPont Crop Genet Res, Wilmington, DE 19880 USA
关键词
ENGINEERED PLANT MINICHROMOSOMES; DE-NOVO CENTROMERES; ALPHA-SATELLITE; FUNCTIONAL-ANALYSIS; FISSION YEAST; SEQUENCE-ANALYSIS; MEIOTIC BEHAVIOR; TRANSGENE LOCI; DNA-SEQUENCES; CONSTRUCTION;
D O I
10.1007/s00412-008-0191-3
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
We report on the construction of maize minichromosomes using shuttle vectors harboring native centromeric segments, origins of replication, selectable marker genes, and telomeric repeats. These vectors were introduced into scutellar cells of maize immature embryos by microprojectile bombardment. Several independent transformation events were identified containing minichromosomes in addition to the normal diploid complement of 20 maize chromosomes. Immunostaining indicated that the minichromosomes recruited centromeric protein C, which is a specific component of the centromere/kinetochore complex. Minichromosomes were estimated to be 15-30 Mb in size based on cytological measurements. Fluorescent in situ hybridization (FISH) showed that minichromosomes contain the centromeric, telomeric, and exogenous unique marker sequences interspersed with maize retrotransposons. Minichromosomes were detected for at least a year in actively dividing callus cultures, providing evidence for their stability through numerous cell cycles. Plants were regenerated and minichromosomes were detected in root tips, providing confirmation of their normal replication and transmission during mitosis and through organogenesis. Assembly of maize artificial chromosomes may provide a tool to study centromere function and a foundation for developing new high capacity vectors for plant functional genomics and breeding.
引用
收藏
页码:157 / 177
页数:21
相关论文
共 98 条
[81]   Increased missegregation and chromosome loss with decreasing chromosome size in vertebrate cells [J].
Spence, JM ;
Mills, W ;
Mann, K ;
Huxley, C ;
Farr, CJ .
CHROMOSOMA, 2006, 115 (01) :60-74
[82]   Co-localization of centromere activity, proteins and topoisomerase II within a subdomain of the major human X α-satellite array [J].
Spence, JM ;
Critcher, R ;
Ebersole, TA ;
Valdivia, MM ;
Earnshaw, WC ;
Fukagawa, T ;
Farr, CJ .
EMBO JOURNAL, 2002, 21 (19) :5269-5280
[83]   CENTROMERES OF THE FISSION YEAST SCHIZOSACCHAROMYCES-POMBE ARE HIGHLY VARIABLE GENETIC-LOCI [J].
STEINER, NC ;
HAHNENBERGER, KM ;
CLARKE, L .
MOLECULAR AND CELLULAR BIOLOGY, 1993, 13 (08) :4578-4587
[84]   Sequence analysis of a functional Drosophila centromere [J].
Sun, XP ;
Le, HD ;
Wahlstrom, JM ;
Karpen, GH .
GENOME RESEARCH, 2003, 13 (02) :182-194
[85]   Human artificial chromosomes constructed using the bottom-up strategy are stably maintained in mitosis and efficiently transmissible to progeny mice [J].
Suzuki, Nobutaka ;
Nishii, Kazuhiro ;
Okazaki, Tuneko ;
Ikeno, Masashi .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (36) :26615-26623
[86]   Complex transgene locus structures implicate multiple mechanisms for plant transgene rearrangement [J].
Svitashev, SK ;
Pawlowski, WP ;
Makarevitch, I ;
Plank, DW ;
Somers, DA .
PLANT JOURNAL, 2002, 32 (04) :433-445
[87]   Genomic interspersions determine the size and complexity of transgene loci in transgenic plants produced by microprojectile bombardment [J].
Svitashev, SK ;
Somers, DA .
GENOME, 2001, 44 (04) :691-697
[88]  
Todorovic Vesna, 1999, Frontiers in Bioscience, V4, pd859, DOI 10.2741/Todorovic
[89]   LOCALIZATION OF DNA-SEQUENCES REQUIRED FOR HUMAN CENTROMERE FUNCTION THROUGH AN ANALYSIS OF REARRANGED Y-CHROMOSOMES [J].
TYLERSMITH, C ;
OAKEY, RJ ;
LARIN, Z ;
FISHER, RB ;
CROCKER, M ;
AFFARA, NA ;
FERGUSONSMITH, MA ;
MUENKE, M ;
ZUFFARDI, O ;
JOBLING, MA .
NATURE GENETICS, 1993, 5 (04) :368-375
[90]   Active retrotransposons are a common feature of grass genomes [J].
Vicient, CM ;
Jääskeläinen, MJ ;
Kalendar, R ;
Schulman, AH .
PLANT PHYSIOLOGY, 2001, 125 (03) :1283-1292