PATTERNS OF MITOCHONDRIAL-DNA INSTABILITY IN BRASSICA-CAMPESTRIS CULTURED-CELLS

被引:37
作者
SHIRZADEGAN, M
PALMER, JD
CHRISTEY, M
EARLE, ED
机构
[1] UNIV MICHIGAN,DEPT BIOL,ANN ARBOR,MI 48109
[2] CORNELL UNIV,DEPT PLANT BREEDING,ITHACA,NY 14853
[3] INDIANA UNIV,DEPT BIOL,BLOOMINGTON,IN 47405
[4] DSIR,DIV CROP RES,LINCOLN,NEW ZEALAND
关键词
BRASSICA; CULTURED CELLS; MITOCHONDRIAL DNA; MITOCHONDRIAL DNA INSTABILITY; HETEROGENEITY; SUBLIMON;
D O I
10.1007/BF00017914
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 previously showed that the mitochondrial DNA (mtDNA) of a Brassica campestris callus culture had undergone extensive rearrangements (i.e. large inversions and a duplication) relative to DNA of the control plant [54]. In this study we observed that after continued growth, the mtDNA of this culture continues to change, with rearranged forms amplifying and diminishing to varying proportions. Strikingly similar changes were detected in the mtDNA profiles of a variety of other long- and short-term callus and cell suspension lines. However, the proportions of parental ('unrearranged') and novel ('rearranged') forms varied in different cultured cell mtDNAs. To address the source of this heterogeneity, we compared the mtDNA organization of 28 individual plants from the parental seed stock. With the exception of one plant containing high levels of a novel plasmid-like mtDNA molecule, no significant variation was detected among individual plants and therefore source plant variation is unlikely to have contributed to the diversity of mitochondrial genomes observed in cultured cells. The source of this culture-induced heterogeneity was also investigated in 16 clones derived from single protoplasts. A mixed population of unrearranged and rearranged mtDNA molecules was apparent in each protoclone, suggesting that the observed heterogeneity in various cultures might reflect the genomic composition of each individual cell; however, the induction of an intercellular heterogeneity subsequent to the protoplast isolation was not tested and therefore cannot be ruled out. The results of this study support our earlier model that the rapid structural alteration of B. campestris mtDNA in vitro results from preferential amplification and reassortment of minor pre-existing forms of the genome rather than de novo rearrangement. Infrequent recombination between short dispersed repeated elements is proposed as the underlying mechanism for the formation of these minor mtDNA molecules.
引用
收藏
页码:21 / 37
页数:17
相关论文
共 63 条
[1]   MORPHOMETRIC ANALYSIS OF CUCURBIT MITOCHONDRIA - THE RELATIONSHIP BETWEEN CHONDRIOME VOLUME AND DNA CONTENT [J].
BENDICH, AJ ;
GAURILOFF, LP .
PROTOPLASMA, 1984, 119 (1-2) :1-7
[2]  
BORK K, 1982, GENETICS, V102, P109
[3]   A SPECIFIC REARRANGEMENT OF MITOCHONDRIAL-DNA INDUCED BY TISSUE-CULTURE [J].
BREARS, T ;
CURTIS, GJ ;
LONSDALE, DM .
THEORETICAL AND APPLIED GENETICS, 1989, 77 (05) :620-624
[4]   THE SUGAR-BEET MITOCHONDRIAL GENOME - A COMPLEX ORGANIZATION GENERATED BY HOMOLOGOUS RECOMBINATION [J].
BREARS, T ;
LONSDALE, DM .
MOLECULAR & GENERAL GENETICS, 1988, 214 (03) :514-522
[5]   REVERSION OF TEXAS MALE-STERILE CYTOPLASM MAIZE IN CULTURE TO GIVE FERTILE, T-TOXIN RESISTANT PLANTS [J].
BRETTELL, RIS ;
THOMAS, E ;
INGRAM, DS .
THEORETICAL AND APPLIED GENETICS, 1980, 58 (02) :55-58
[6]  
BUYSER JD, 1988, CAN J BOT, V66, P1891
[7]  
CHOUREY PS, 1982, PLANT TISSUE CULTURE, P425
[8]   SUPERCOILED MITOCHONDRIAL DNAS FROM PLANT-TISSUE CULTURE CELLS [J].
DALE, RMK ;
DUESING, JH ;
KEENE, D .
NUCLEIC ACIDS RESEARCH, 1981, 9 (18) :4583-4593
[9]   UNIPARENTAL PROPAGATION OF MITOCHONDRIAL-DNA IN MOUSE-HUMAN CELL HYBRIDS [J].
DEFRANCESCO, L ;
ATTARDI, G ;
CROCE, CM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1980, 77 (07) :4079-4083
[10]   EXCISION SEQUENCES IN THE MITOCHONDRIAL GENOME OF YEAST [J].
DEZAMAROCZY, M ;
FAUGERONFONTY, G ;
BERNARDI, G .
GENE, 1983, 21 (03) :193-202