Home LiteratureArticle Details
PMID: 2124276 Published · ppublish English Comparative Study Journal Article

Compositional transitions in the nuclear genomes of cold-blooded vertebrates.

Journal of molecular evolution ·Vol. 31 ·No. 4 ·1990-10-00 ·Pages 282-93

Bernardi G, Bernardi G

Abstract

The compositional properties of DNAs from 122 species of fishes and from 18 other cold-blooded vertebrates (amphibians and reptiles) were compared with those from 10 warm-blooded vertebrates (mammals and birds) and found to be substantially different. Indeed, DNAs from cold-blooded vertebrates are characterized by much lower intermolecular compositional heterogeneities and CsCl band asymmetries, by a much wider spectrum of modal buoyant densities in CsCl, by generally lower amounts of satellites, as well as by the fact that in no case do buoyant densities reach the high values found in the GC-richest components of DNAs from warm-blooded vertebrates. In the case of fish genomes, which were more extensively studied, different orders were generally characterized by modal buoyant densities that were different in average values as well as in their ranges. In contrast, different families within any given order were more often characterized by narrow ranges of modal buoyant densities, and no difference in modal buoyant density was found within any single genus (except for the genus Aphyosemion, which should be split into several genera). The compositional differences that were found among species belonging to different orders and to different families within the same order are indicative of compositional transitions, which were shown to be essentially due to directional base substitutions. These transitions were found to be independent of geological time. Moreover, the rates of directional base substitutions were found to be very variable and to reach, in some cases, extremely high values, that were even higher than those of silent substitutions in primates. The taxonomic and evolutionary implications of these findings are discussed.

MeSH Terms
Amphibians/genetics Animals Birds/genetics Cell Nucleus/chemistry Centrifugation, Density Gradient Cytosine/analysis DNA/chemistry Genomic Library Guanosine/analysis Mammals/genetics Mutation Phylogeny Reptiles/genetics
Chemicals
Guanosine Cytosine DNA
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bernardi G
Laboratoire de Génétique Moléculaire, Institut Jacques Monod, Paris, France.
Bernardi G
References (30)
30 references, click to expand
  1. Compositional compartmentalization and gene composition in the genome of vertebrates.
    J Mol Evol. 1987;26(3):198-204 PMID: 3129567
  2. New approaches to bacterial taxonomy: perspective and prospects.
    Annu Rev Microbiol. 1969;23:239-74 PMID: 4899074
  3. Directional fixation of mutations in vertebrate evolution.
    J Mol Evol. 1987;26(4):301-10 PMID: 3131532
  4. Compositional constraints and genome evolution.
    J Mol Evol. 1986;24(1-2):1-11 PMID: 3104608
  5. The major components of the mouse and human genomes. 1. Preparation, basic properties and compositional heterogeneity.
    Eur J Biochem. 1981 Apr;115(2):227-33 PMID: 7238506
  6. Mutation rates differ among regions of the mammalian genome.
    Nature. 1989 Jan 19;337(6204):283-5 PMID: 2911369
  7. Compositional patterns in the nuclear genome of cold-blooded vertebrates.
    J Mol Evol. 1990 Oct;31(4):265-81 PMID: 2124275
  8. Gene distribution and nucleotide sequence organization in the human genome.
    Eur J Biochem. 1986 Nov 3;160(3):479-85 PMID: 3780716
  9. The isochore organization of the human genome.
    Annu Rev Genet. 1989;23:637-61 PMID: 2694946
  10. Nucleotide sequence organization in the very small genome of a tetraodontid fish, Arothron diadematus.
    Eur J Biochem. 1984 Apr 2;140(1):25-30 PMID: 6705796
  11. An analysis of eukaryotic genomes by density gradient centrifugation.
    J Mol Biol. 1976 Nov;108(1):219-35 PMID: 826643
  12. DNA microenvironments and the molecular clock.
    J Mol Evol. 1989 Nov;29(5):407-11 PMID: 2515290
  13. An evaluation of the molecular clock hypothesis using mammalian DNA sequences.
    J Mol Evol. 1987;25(4):330-42 PMID: 3118047
  14. Do albumin clocks run on time?
    Science. 1978 Jun 9;200(4346):1183-5 PMID: 17745110
  15. Gene distribution and nucleotide sequence organization in the mouse genome.
    Eur J Biochem. 1986 Nov 3;160(3):469-78 PMID: 3780715
  16. An approach to the organization of eukaryotic genomes at a macromolecular level.
    J Mol Biol. 1976 Nov;108(1):237-54 PMID: 826644
  17. NEW APPROACHES TO BACTERIAL TAXONOMY.
    Annu Rev Microbiol. 1963;17:329-72 PMID: 14147455
  18. High codon-usage changes in mammalian genes.
    Mol Biol Evol. 1988 Mar;5(2):192-4 PMID: 3367784
  19. Codon catalog usage and the genome hypothesis.
    Nucleic Acids Res. 1980 Jan 11;8(1):r49-r62 PMID: 6986610
  20. ELECTROPHORETIC AND FUNCTIONAL ENZYMIC EVOLUTION IN FOUR SPECIES OF EASTERN PACIFIC BARRACUDAS FROM DIFFERENT THERMAL ENVIRONMENTS.
    Evolution. 1982 Jan;36(1):97-106 PMID: 28581099
  21. The compositional distribution of coding sequences and DNA molecules in humans and murids.
    J Mol Evol. 1988;27(4):311-20 PMID: 3146641
  22. Directional mutation pressure and neutral molecular evolution.
    Proc Natl Acad Sci U S A. 1988 Apr;85(8):2653-7 PMID: 3357886
  23. On the molecular evolutionary clock.
    J Mol Evol. 1987;26(1-2):34-46 PMID: 3125336
  24. An analysis of fish genomes by density gradient centrifugation.
    Eur J Biochem. 1980 Nov;112(2):203-10 PMID: 7460919
  25. THE DNA components of the chicken genome.
    Eur J Biochem. 1979 Aug 15;99(1):179-86 PMID: 488115
  26. Isolation and characterization of mouse and guinea pig satellite deoxyribonucleic acids.
    Biochemistry. 1968 Dec;7(12):4373-9 PMID: 5700661
  27. Compositional patterns in vertebrate genomes: conservation and change in evolution.
    J Mol Evol. 1988 Dec-1989 Feb;28(1-2):7-18 PMID: 3148744
  28. The mosaic genome of warm-blooded vertebrates.
    Science. 1985 May 24;228(4702):953-8 PMID: 4001930
  29. An analysis of the bovine genome by Cs2SO4-Ag density gradient centrifugation.
    J Mol Biol. 1973 Oct 15;80(1):177-97 PMID: 4798988
  30. Rates, sample sizes, and the neutrality hypothesis for electrophoresis in evolutionary studies.
    Nature. 1977 Jan 6;265(5589):24-8 PMID: 64931
Article Info
Journal
Journal of molecular evolution
Abbr.
J Mol Evol
ISSN
0022-2844
Published
1990-10-00
Pages
282-93
Language
English
Region
Germany
NLM ID
0360051
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com