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PMID: 1356884 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Heteroplasmy of short tandem repeats in mitochondrial DNA of Atlantic cod, Gadus morhua.

Genetics ·Vol. 132 ·No. 1 ·1992-09-00 ·Pages 211-20

Arnason E, Rand DM

Abstract

The mitochondrial DNA of the Atlantic cod (Gadus morhua) contains a tandem array of 40-bp repeats in the D-loop region of the molecule. Variation among molecules in the copy number of these repeats results in mtDNA length variation and heteroplasmy (the presence of more than one form of mtDNA in an individual). In a sample of fish collected from different localities around Iceland and off George's Bank, each individual was heteroplasmic for two or more mtDNAs ranging in repeat copy number from two (common) to six (rare). An earlier report on mtDNA heteroplasmy in sturgeon (Acipenser transmontanus) presented a competitive displacement model for length mutations in mtDNAs containing tandem arrays and the cod data deviate from this model. Depending on the nature of putative secondary structures and the location of D-loop strand termination, additional mechanisms of length mutation may be needed to explain the range of mtDNA length variants maintained in these populations. The balance between genetic drift and mutation in maintaining this length polymorphism is estimated through a hierarchical analysis of diversity of mtDNA length variation in the Iceland samples. Eighty percent of the diversity lies within individuals, 8% among individuals and 12% among localities. An estimate of theta = 2N(eo) mu greater than 1 indicates that this system is characterized by a high mutation rate and is governed primarily by deterministic dynamics. The sequences of repeat arrays from fish collected in Norway, Iceland and George's Bank show no nucleotide variation suggesting that there is very little substructuring to the North Atlantic cod population.

MeSH Terms
Animals Atlantic Ocean Base Sequence Cloning, Molecular DNA, Mitochondrial/genetics Densitometry Fishes/genetics Gene Frequency/genetics Molecular Sequence Data Mutation/genetics Nucleic Acid Conformation Polymerase Chain Reaction Polymorphism, Genetic Polymorphism, Restriction Fragment Length RNA, Transfer/genetics Repetitive Sequences, Nucleic Acid/genetics
Chemicals
DNA, Mitochondrial RNA, Transfer
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Arnason E
Museum of Comparative Zoology, Harvard University, Cambridge, Massachusetts 02138.
Rand D M
References (18)
18 references, click to expand
  1. An approach to population and evolutionary genetic theory for genes in mitochondria and chloroplasts, and some results.
    Genetics. 1983 Mar;103(3):513-27 PMID: 6840539
  2. Mitochondrial DNA size variation within individual crickets.
    Science. 1985 Jun 21;228(4706):1446-8 PMID: 17814488
  3. Direct repeats in the non-coding region of rabbit mitochondrial DNA. Involvement in the generation of intra- and inter-individual heterogeneity.
    Eur J Biochem. 1990 Dec 12;194(2):561-71 PMID: 2269281
  4. Organization of the mitochondrial genome of Atlantic cod, Gadus morhua.
    Nucleic Acids Res. 1990 Feb 11;18(3):411-9 PMID: 2308841
  5. Length variation and heteroplasmy are frequent in mitochondrial DNA from parthenogenetic and bisexual lizards (genus Cnemidophorus).
    Genetics. 1985 Aug;110(4):689-707 PMID: 2993100
  6. Rapid isolation method of animal mitochondrial DNA by the alkaline lysis procedure.
    Biochem Genet. 1988 Dec;26(11-12):815-9 PMID: 3242492
  7. Size polymorphism and heteroplasmy in the mitochondrial DNA of lower vertebrates.
    J Hered. 1986 Jul-Aug;77(4):249-52 PMID: 3760536
  8. Mapping of mitochondrial DNA of individual sheep and goats: rapid evolution in the D loop region.
    Cell. 1977 Jul;11(3):571-83 PMID: 884736
  9. Molecular characterization of a repeat element causing large-scale size variation in the mitochondrial DNA of the sea scallop Placopecten magellanicus.
    Mol Biol Evol. 1990 Jan;7(1):45-64 PMID: 2299981
  10. Mitochondrial DNA in the bark weevils: size, structure and heteroplasmy.
    Genetics. 1989 Dec;123(4):825-36 PMID: 2612897
  11. Slipped-strand mispairing: a major mechanism for DNA sequence evolution.
    Mol Biol Evol. 1987 May;4(3):203-21 PMID: 3328815
  12. Animal mitochondrial DNA: an extreme example of genetic economy.
    Int Rev Cytol. 1985;93:93-145 PMID: 3891661
  13. Length and restriction site heteroplasmy in the mitochondrial DNA of american shad (alosa sapidissima).
    Genetics. 1988 Mar;118(3):509-18 PMID: 17246419
  14. Replication of animal mitochondrial DNA.
    Cell. 1982 Apr;28(4):693-705 PMID: 6178513
  15. Mitochondrial DNA heteroplasmy in Drosophila mauritiana.
    Proc Natl Acad Sci U S A. 1983 Nov;80(22):6942-6 PMID: 6316335
  16. Heterogeneous mitochondrial DNA D-loop sequences in bovine tissue.
    Cell. 1984 Jul;37(3):1001-7 PMID: 6744410
  17. The structure and evolution of the human beta-globin gene family.
    Cell. 1980 Oct;21(3):653-68 PMID: 6985477
  18. Relaxed cellular controls and organelle heredity.
    Science. 1983 Nov 4;222(4623):468-75 PMID: 6353578
Article Info
Journal
Genetics
Abbr.
Genetics
ISSN
0016-6731
Published
1992-09-00
Pages
211-20
Language
English
Region
United States
NLM ID
0374636
PMCID
PMC1205118
Subset
IM
Grants
NIGMS NIH HHS · GM12357 · United States
NIGMS NIH HHS · GM21179 · United States
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