CYTOLOGICAL STUDIES OF HETEROCHROMATIN FUNCTION IN THE DROSOPHILA-MELANOGASTER MALE - AUTOSOMAL MEIOTIC PAIRING

被引:55
作者
YAMAMOTO, M [1 ]
机构
[1] AUSTRALIAN NATL UNIV,RES SCH BIOL SCI,DEPT POPULAT BIOL,CANBERRA 2601,ACT,AUSTRALIA
关键词
D O I
10.1007/BF00331091
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
In Drosophila melanogaster it is now documented that the different satellite DNA sequences make up the majority of the centromeric heterochromatin of all chromosomes. The most popular hypothesis on this class of DNA is that satellite DNA itself is important to the pairing processes of chromosomes. Evidence in support of such a hypothesis is, however, circumstantial. This hypothesis has been evaluated by direct cytological examination of the meiotic behaviour of heterochromatically and/or euchromatically rearranged autosomes in the male. It was found that neither substantial deletions nor rearrangements of the autosomal heterochromatin cause any disruption of meiotic pairing. Autosomal pairing depends on homologs retaining sufficient euchromatic homology. This is the first clear demonstration that the highly repeated satellite DNA sequences in the heterochromatin of the second, third and fourth chromosomes are not important in meiotic pairing, but rather that some euchromatic homology in the autosomes is essential to ensure a regular meiotic process. These results on the autosomes, when taken in conjunction with our previous studies on sex chromosome pairing, clearly indicate that satellite DNA is not crucial for male meiotic chromosome pairing of any member of the D. melanogaster genome. © 1979 Springer-Verlag.
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页码:293 / 328
页数:36
相关论文
共 90 条
[1]   COMPARATIVE CHROMOSOME STUDIES IN CETACEA [J].
ARNASON, U .
HEREDITAS, 1974, 77 (01) :1-36
[2]   SEX-CHROMOSOMES OF CHINESE-HAMSTER - CONSTITUTIVE HETEROCHROMATIN DEFICIENT IN REPETITIVE DNA SEQUENCES [J].
ARRIGHI, FE ;
HSU, TC ;
PATHAK, S ;
SAWADA, H .
CYTOGENETICS AND CELL GENETICS, 1974, 13 (03) :268-274
[3]   IDENTIFICATION OF SEX-CHROMOSOMES IN BALD EAGLE [J].
AU, W ;
FECHHEIMER, NS ;
SOUKUP, S .
CANADIAN JOURNAL OF GENETICS AND CYTOLOGY, 1975, 17 (02) :187-191
[4]  
Baker B. S., 1976, GENETICS BIOL DROS B, V1a, P351
[5]   POLYMORPHISM OF X-CHROMOSOME, Y-CHROMOSOME AND AUTOSOMES IN AUSTRALIAN HOPPING MICE, NOTOMYS-ALEXIS, NOTOMYS-CERVINUS AND NOTOMYS-FUSCUS (RODENTIA, MURIDAE) [J].
BAVERSTOCK, PR ;
WATTS, CHS ;
HOGARTH, JT .
CHROMOSOMA, 1977, 61 (03) :243-256
[6]   HETEROCHROMATIN VARIATION IN AUSTRALIAN RODENT UROMYS-CAUDIMACULATUS [J].
BAVERSTOCK, PR ;
WATTS, CHS ;
HOGARTH, JT .
CHROMOSOMA, 1976, 57 (04) :397-403
[7]   CONSTITUTIVE HETEROCHROMATIN G-BANDS AND ROBERTSONIAN REARRANGEMENTS IN CHROMOSOMES OF AKODON-MOLINAE (RODENTIA-CRICETIDAE) [J].
BIANCHI, NO ;
VIDALRIO.L ;
BIANCHI, MS .
CANADIAN JOURNAL OF GENETICS AND CYTOLOGY, 1973, 15 (04) :855-861
[8]   CHROMOSOME HOMOLOGY AND EVOLUTION OF EMYDID TURTLES [J].
BICKHAM, JW ;
BAKER, RJ .
CHROMOSOMA, 1976, 54 (03) :201-219
[9]  
BLUMENFELD M, 1973, COLD SPRING HARB SYM, V38, P423
[10]   DIFFERENTIAL UNDER-REPLICATION OF SATELLITE DNAS DURING DROSOPHILA DEVELOPMENT [J].
BLUMENFELD, M ;
FORREST, HS .
NATURE-NEW BIOLOGY, 1972, 239 (93) :170-+