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PMID: 11729161 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Female meiosis drives karyotypic evolution in mammals.

Genetics ·Vol. 159 ·No. 3 ·2001-11-00 ·Pages 1179-89

Pardo-Manuel de Villena F, Sapienza C

Abstract

Speciation is often accompanied by changes in chromosomal number or form even though such changes significantly reduce the fertility of hybrid intermediates. We have addressed this evolutionary paradox by expanding the principle that nonrandom segregation of chromosomes takes place whenever human or mouse females are heterozygous carriers of Robertsonian translocations, a common form of chromosome rearrangement in mammals. Our analysis of 1170 mammalian karyotypes provides strong evidence that karyotypic evolution is driven by nonrandom segregation during female meiosis. The pertinent variable in this form of meiotic drive is the presence of differing numbers of centromeres on paired homologous chromosomes. This situation is encountered in all heterozygous carriers of Robertsonian translocations. Whenever paired chromosomes have different numbers of centromeres, the inherent asymmetry of female meiosis and the polarity of the meiotic spindle dictate that the partner with the greater number of centromeres will attach preferentially to the pole that is most efficient at capturing centromeres. This mechanism explains how chromosomal variants become fixed in populations, as well as why closely related species often appear to have evolved by directional adjustment of the karyotype toward or away from a particular chromosome form. If differences in the ability of particular DNA sequences or chromosomal regions to function as centromeres are also considered, nonrandom segregation is likely to affect karyotype evolution across a very broad phylogenetic range.

MeSH Terms
Animals Chickens Chromosomes/ultrastructure Diploidy Evolution, Molecular Genetics, Population Humans Karyotyping Mice Models, Genetic Phylogeny Species Specificity
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Pardo-Manuel de Villena F
Department of Genetics, University of North Carolina, Chapel Hill, North Carolina 27599-7264, USA.
Sapienza C
References (48)
48 references, click to expand
  1. Rapid chromosomal evolution in island mice.
    Nature. 2000 Jan 13;403(6766):158 PMID: 10646592
  2. Genic differentiation and origin of Robertsonian populations of the house mouse (Mus musculus domesticus Rutty).
    Genet Res. 1989 Feb;53(1):29-44 PMID: 2714644
  3. Recombination is proportional to the number of chromosome arms in mammals.
    Mamm Genome. 2001 Apr;12(4):318-22 PMID: 11309665
  4. Cytogenetics of pregnancy wastage.
    Adv Hum Genet. 1985;14:1-57 PMID: 3887861
  5. Adaptive evolution of Cid, a centromere-specific histone in Drosophila.
    Genetics. 2001 Mar;157(3):1293-8 PMID: 11238413
  6. Unorthodox male meiosis in Trichosia pubescens (Sciaridae). Chromosome elimination involves polar organelle degeneration and monocentric spindles in first and second division.
    J Cell Sci. 1994 Jan;107 ( Pt 1):299-312 PMID: 8175917
  7. Genetic measures of centromere activity in Drosophila melanogaster.
    J Cell Physiol Suppl. 1955 May;45(Suppl. 2):151-69 PMID: 13242628
  8. A new study challenges the current belief of a high human male:female mutation ratio.
    Trends Genet. 2000 Dec;16(12):525-6 PMID: 11102696
  9. Susceptibility to vinblastine-induced aneuploidy and preferential chromosome segregation during meiosis I in Robertsonian heterozygous mice.
    Teratog Carcinog Mutagen. 1995;15(5):217-30 PMID: 8867878
  10. Non-random disjunction in Drosophila.
    Genetics. 1951 May;36(3):267-80 PMID: 14840648
  11. A genetic test to determine the origin of maternal transmission ratio distortion. Meiotic drive at the mouse Om locus.
    Genetics. 2000 Jan;154(1):333-42 PMID: 10628992
  12. Segregation and fertility in Mus musculus domesticus (wild mice) heterozygous for the Rb(4.12) translocation.
    Heredity (Edinb). 1992 Feb;68 ( Pt 2):131-4 PMID: 1548141
  13. Robertsonian heterozygosity in wild mice: fertility and transmission rates in Rb(16.17) translocation heterozygotes.
    Genetica. 1990;80(3):171-4 PMID: 2379830
  14. The unusual karyotype of the lesser kudu, Tragelaphus imberbis.
    Cytogenet Cell Genet. 1980;26(2-4):85-92 PMID: 7389415
  15. The influence of the Robertsonian translocation Rb(X.2)2Ad on anaphase I non-disjunction in male laboratory mice.
    Genet Res. 1989 Apr;53(2):77-86 PMID: 2744454
  16. Recombination suppression by heterozygous Robertsonian chromosomes in the mouse.
    Genetics. 1993 Mar;133(3):649-67 PMID: 8454207
  17. Gametic products transmitted by chickens heterozygous for chromosomal rearrangements.
    Cytogenet Cell Genet. 1979;23(1-2):124-36 PMID: 761477
  18. A mouse translocation giving a metacentric marker chromosome.
    Cytogenetics. 1967;6(2):105-19 PMID: 6031522
  19. Segregation analysis of the mouse Rb(6.16) translocation in zygotes produced by heterozygous female carriers.
    Cytogenet Cell Genet. 1994;66(1):51-3 PMID: 8275709
  20. The case for epigenetic effects on centromere identity and function.
    Trends Genet. 1997 Dec;13(12):489-96 PMID: 9433139
  21. Evolution of number and morphology of mammalian chromosomes.
    J Hered. 1994 Nov-Dec;85(6):455-65 PMID: 7995926
  22. On the Anaphase Movement of Chromosomes.
    Proc Natl Acad Sci U S A. 1942 Oct;28(10):433-6 PMID: 16588574
  23. Nonrandom segregation of the mouse univalent X chromosome: evidence of spindle-mediated meiotic drive.
    Genetics. 2000 Oct;156(2):775-83 PMID: 11014823
  24. Highly repeated DNA sequence limited to knob heterochromatin in maize.
    Proc Natl Acad Sci U S A. 1981 Jul;78(7):4490-4 PMID: 16593063
  25. Meiotic drive of chromosomal knobs reshaped the maize genome.
    Genetics. 1999 Sep;153(1):415-26 PMID: 10471723
  26. Two new X-autosome Robertsonian translocations in the mouse. I. Meiotic chromosome segregation in male hemizygotes and female heterozygotes.
    Genet Res. 1991 Oct;58(2):115-21 PMID: 1765260
  27. A cytogenetic survey of 14,069 newborn infants. I. Incidence of chromosome abnormalities.
    Clin Genet. 1975 Oct;8(4):223-43 PMID: 1183067
  28. Wild-derived Robertsonian translocation in mice. Chromosome 17, Rb (16:17)7, shows novel interactions with t-alleles.
    J Hered. 1986 Sep-Oct;77(5):290-4 PMID: 3772065
  29. Meiotic drive in female mice heterozygous for the HSR inserts on chromosome 1.
    Genet Res. 1990 Apr;55(2):97-100 PMID: 2164490
  30. The Effect of Abnormal Chromosome 10 on Preferential Segregation and Crossing over in Maize.
    Genetics. 1966 May;53(5):989-1020 PMID: 17248306
  31. Chromosomal evolution in gazelles.
    J Hered. 1995 May-Jun;86(3):216-27 PMID: 7608514
  32. Getting the measure of biodiversity.
    Nature. 2000 May 11;405(6783):212-9 PMID: 10821281
  33. Molecular phylogenetics and the origins of placental mammals.
    Nature. 2001 Feb 1;409(6820):614-8 PMID: 11214319
  34. Aneuploidy in the embryonic progeny of females heterozygous for the Robertsonian chromosome (9.12) in genetically wild Peru-Coppock mice (Mus musculus).
    J Reprod Fertil. 1986 Jan;76(1):193-203 PMID: 3944790
  35. Increased incidence of unpartnered single chromatids in metaphase II oocytes in 39,X(XO) mice.
    Experientia. 1994 May 15;50(5):502-5 PMID: 8194588
  36. Visualization of centromere proteins CENP-B and CENP-C on a stable dicentric chromosome in cytological spreads.
    Chromosoma. 1989 Jun;98(1):1-12 PMID: 2475307
  37. Transmission ratio distortion in offspring of heterozygous female carriers of Robertsonian translocations.
    Hum Genet. 2001 Jan;108(1):31-6 PMID: 11214904
  38. The Relations of Inversions in the X Chromosome of Drosophila Melanogaster to Crossing over and Disjunction.
    Genetics. 1936 Sep;21(5):554-604 PMID: 17246812
  39. Further evidence that CENP-C is a necessary component of active centromeres: studies of a dic(X; 15) with simultaneous immunofluorescence and FISH.
    Hum Mol Genet. 1995 Feb;4(2):289-94 PMID: 7757082
  40. Nonrandom segregation during meiosis: the unfairness of females.
    Mamm Genome. 2001 May;12(5):331-9 PMID: 11331939
  41. Mitochondrial DNA variation and the evolution of Robertsonian chromosomal races of house mice, Mus domesticus.
    Genetics. 1994 Mar;136(3):1105-20 PMID: 8005418
  42. The murine Rb(6.16) translocation: alterations in the proportion of alternate sperm segregants effecting fertilization in vitro and in vivo.
    Hum Genet. 1992 Sep-Oct;90(1-2):79-85 PMID: 1427792
  43. Comparative chromosome studies in mongooses (Carnivora, Viverridae). I. Idiograms of 12 species and karyotype evolution in Herpestinae.
    Hereditas. 1972;71(1):1-74 PMID: 4680641
  44. Pattern and frequency of nocodazole induced meiotic nondisjunction in oocytes of mice carrying the 'tobacco mouse' metacentric Rb(16.17)7Bnr.
    Genet Res. 1995 Aug;66(1):35-43 PMID: 8575668
  45. The influence of mutations on chromosome 17 upon the segregation of homologues in female mice heterozygous for Robertsonian translocations.
    Genet Res. 1987 Dec;50(3):235-7 PMID: 3443295
  46. Non-random segregation during mammalian oogenesis.
    Nature. 1972 Aug 25;238(5365):465-6 PMID: 4561859
  47. Cytological basis of the B chromosome accumulation mechanism in the grasshopper Heteracris littoralis (Ramb).
    Heredity (Edinb). 1989 Feb;62 ( Pt 1):91-5 PMID: 2732091
  48. Online access to trends in endocrinology and metabolism.
    Trends Endocrinol Metab. 1999 May;10(4):121 PMID: 18403277
Article Info
Journal
Genetics
Abbr.
Genetics
ISSN
0016-6731
Published
2001-11-00
Pages
1179-89
Language
English
Region
United States
NLM ID
0374636
PMCID
PMC1461872
Subset
IM
Grants
NIGMS NIH HHS · R01GM62537 · United States
NICHD NIH HHS · R01HD34508 · United States
Corrections
ErratumIn
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