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Chromosome Res
1995 Dec 01;38:497-506. doi: 10.1007/bf00713965.
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Molecular characterization of a centromeric satellite DNA in the hemiclonal hybrid frog Rana esculenta and its parental species.
Ragghianti M
,
Guerrini F
,
Bucci S
,
Mancino G
,
Hotz H
,
Uzzell T
,
Guex GD
.
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Hybrid water frogs Rana esculenta reproduce by hybridogenesis: one parental genome (of Rana lessonae) is excluded in the germ line, the other (of Rana ridibunda) is clonally transmitted to haploid gametes. The two parental species differ in that the amount of centromeric heterochromatin revealed by differential staining is much higher in Rana ridibunda. An abundant, tandemly arrayed, centromeric satellite DNA, designated RrS1, is revealed in Rana ridibunda genomes by the restriction endonuclease Stul, which generates a major repetitive sequence fragment of 300 and a minor one of 200 bp. This AT-rich (68%) satellite family is located at the centromeres of the five largest chromosomes (1-5) and of a medium to small heterobrachial one (8 or 9); it thus constitutes only part of the centromeric heterochromatin that characterizes all Rana ridibunda chromosomes. RrS1 represents about 2.5% of the genome of Rana ridibunda; it may represent as little as 0.2% of the genome of Rana lessonae, and cannot be detected in Xenopus laevis frogs or Salamandra salamandra and Triturus carnifex salamanders. Segments of the satellite sequence are similar to sequences of yeast centromeric DNA element CDEIII and of the mammalian CENP-B box. A role for RrS1 and other centromeric satellite DNAs in the germ line genome exclusion of the hybridogenetic frog hybrids, although suggested, has not yet been demonstrated.
Baldwin,
Centromeric satellite DNA in the newt Triturus cristatus karelinii and related species: its distribution and transcription on lampbrush chromosomes.
1985, Pubmed
Baldwin,
Centromeric satellite DNA in the newt Triturus cristatus karelinii and related species: its distribution and transcription on lampbrush chromosomes.
1985,
Pubmed
Bucci,
Lampbrush and mitotic chromosomes of the hemiclonally reproducing hybrid Rana esculenta and its parental species.
1990,
Pubmed
Cabot,
Simultaneous editing of multiple nucleic acid and protein sequences with ESEE.
1989,
Pubmed
Clarke,
Centromeres of budding and fission yeasts.
1990,
Pubmed
Cremisi,
Heterochromatic DNA in Triturus (Amphibia, Urodela) II. A centromeric satellite DNA.
1988,
Pubmed
Heppich,
Premeiotic chromosome doubling after genome elimination during spermatogenesis of the species hybrid Rana esculenta.
1982,
Pubmed
Hieter,
Functional selection and analysis of yeast centromeric DNA.
1985,
Pubmed
Macgregor,
The biological significance of variation in satellite DNA and heterochromatin in newts of the genus Triturus: an evolutionary perspective.
1986,
Pubmed
Mantovani,
HYBRIDOGENESIS AND ANDROGENESIS IN THE STICK-INSECT BACILLUS ROSSIUS-GRANDII BENAZZII (INSECTA, PHASMATODEA).
1992,
Pubmed
Masumoto,
A human centromere antigen (CENP-B) interacts with a short specific sequence in alphoid DNA, a human centromeric satellite.
1989,
Pubmed
Nardi,
Banding patterns in newt chromosomes by the Giemsa stain.
1973,
Pubmed
Sanger,
DNA sequencing with chain-terminating inhibitors.
1977,
Pubmed
Schwindinger,
DNA sequence analysis on the IBM-PC.
1984,
Pubmed
Southern,
Detection of specific sequences among DNA fragments separated by gel electrophoresis.
1975,
Pubmed
Sugimoto,
Functional cloning of centromere protein B (CENP-B) box-enriched alphoid DNA repeats utilizing the sequence-specific DNA binding activity of human CENP-B in vitro.
1994,
Pubmed
Sugimoto,
Anti-helix-loop-helix domain antibodies: discovery of autoantibodies that inhibit DNA binding activity of human centromere protein B (CENP-B).
1992,
Pubmed
Tautz,
An optimized freeze-squeeze method for the recovery of DNA fragments from agarose gels.
1983,
Pubmed
Tunner,
Premeiotic genome exclusion during oogenesis in the common edible frog, Rana esculenta.
1981,
Pubmed
Vinogradov,
[Elimination of the genome of one of the parents prior to premeiotic DNA synthesis in a hybridogenic species of Rana esculenta].
1988,
Pubmed
Vinogradov,
Genome elimination in diploid and triploid Rana esculenta males: cytological evidence from DNA flow cytometry.
1990,
Pubmed
Vinogradov,
Allometry of base pair specific-DNA contents in Tetrapoda.
1993,
Pubmed
Vinogradov,
Two germ cell lineages with genomes of different species in one and the same animal.
1991,
Pubmed
Willard,
Centromeres--primary constrictions are primarily complicated.
1992,
Pubmed
Willard,
Centromeres of mammalian chromosomes.
1990,
Pubmed