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PMID: 10618396 Published · ppublish English Comparative Study Journal Article Research Support, Non-U.S. Gov't

Molecular cytogenetic dissection of human chromosomes 3 and 21 evolution.

Müller S, Stanyon R, Finelli P, Archidiacono N, Wienberg J

Abstract

Chromosome painting in placental mammalians illustrates that genome evolution is marked by chromosomal synteny conservation and that the association of chromosomes 3 and 21 may be the largest widely conserved syntenic block known for mammals. We studied intrachromosomal rearrangements of the syntenic block 3/21 by using probes derived from chromosomal subregions with a resolution of up to 10-15 Mbp. We demonstrate that the rearrangements visualized by chromosome painting, mostly translocations, are only a fraction of the actual chromosomal changes that have occurred during evolution. The ancestral segment order for both primates and carnivores is still found in some species in both orders. From the ancestral primate/carnivore condition an inversion is needed to derive the pig homolog, and a fission of chromosome 21 and a pericentric inversion is needed to derive the Bornean orangutan condition. Two overlapping inversions in the chromosome 3 homolog then would lead to the chromosome form found in humans and African apes. This reconstruction of the origin of human chromosome 3 contrasts with the generally accepted scenario derived from chromosome banding in which it was proposed that only one pericentric inversion was needed. From the ancestral form for Old World primates (now found in the Bornean orangutan) a pericentric inversion and centromere shift leads to the chromosome ancestral for all Old World monkeys. Intrachromosomal rearrangements, as shown here, make up a set of potentially plentiful and informative markers that can be used for phylogenetic reconstruction and a more refined comparative mapping of the genome.

MeSH Terms
Animals Carnivora Cell Line Chromosome Banding Chromosome Mapping Chromosome Painting Chromosomes, Artificial, Yeast Chromosomes, Human, Pair 21/genetics Chromosomes, Human, Pair 3/genetics Evolution, Molecular Humans Image Processing, Computer-Assisted In Situ Hybridization, Fluorescence Karyotyping Phylogeny Primates Translocation, Genetic
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Müller S
Institute of Anthropology, University of Munich, Munich, Germany 80333, USA.
Stanyon R
Finelli P
Archidiacono N
Wienberg J
References (40)
40 references, click to expand
  1. Reciprocal chromosome painting between human and prosimians (Eulemur macaco macaco and E. fulvus mayottensis).
    Cytogenet Cell Genet. 1997;78(3-4):260-71 PMID: 9465900
  2. Fluorescene in situ hybridization establishes homology between human and silvered leaf monkey chromosomes, reveals reciprocal translocations between chromosomes homologous to human Y/5, 1/9, and 6/16, and delineates an X1X2Y1Y2/X1X1X2X2 sex-chromosome system.
    Am J Phys Anthropol. 1997 Mar;102(3):315-27 PMID: 9098501
  3. Degenerate oligonucleotide-primed PCR: general amplification of target DNA by a single degenerate primer.
    Genomics. 1992 Jul;13(3):718-25 PMID: 1639399
  4. Chromosomal homeologies between human, harbor seal (Phoca vitulina) and the putative ancestral carnivore karyotype revealed by Zoo-FISH.
    Chromosoma. 1997 Jul;106(2):108-13 PMID: 9215560
  5. Integration of the cytogenetic, genetic, and physical maps of the human genome by FISH mapping of CEPH YAC clones.
    Genomics. 1996 Feb 15;32(1):1-14 PMID: 8786094
  6. Evolution of the Simiiformes and the phylogeny of human chromosomes.
    Hum Genet. 1990 May;84(6):493-506 PMID: 2186995
  7. Delineation of individual human chromosomes in metaphase and interphase cells by in situ suppression hybridization using recombinant DNA libraries.
    Hum Genet. 1988 Nov;80(3):224-34 PMID: 3192212
  8. Comparative genome organization of vertebrates. The First International Workshop on Comparative Genome Organization.
    Mamm Genome. 1996 Oct;7(10):717-34 PMID: 8854859
  9. Mapping homology between human and black and white colobine monkey chromosomes by fluorescent in situ hybridization.
    Am J Primatol. 1997;42(4):289-98 PMID: 9261510
  10. Chromosome painting in mammals as an approach to comparative genomics.
    Curr Opin Genet Dev. 1995 Dec;5(6):792-7 PMID: 8745079
  11. ZOO-FISH suggests a complete homology between human and capuchin monkey (Platyrrhini) euchromatin.
    Genomics. 1996 Sep 15;36(3):417-23 PMID: 8884264
  12. Comparative fluorescence in situ hybridization mapping of primate chromosomes with Alu polymerase chain reaction generated probes from human/rodent somatic cell hybrids.
    Chromosome Res. 1996 Jan;4(1):38-42 PMID: 8653267
  13. A neocentromere on human chromosome 3 without detectable alpha-satellite DNA forms morphologically normal kinetochores.
    Chromosoma. 1998 Dec;107(6-7):359-65 PMID: 9914367
  14. Human chromosome 3 and pig chromosome 13 show complete synteny conservation but extensive gene-order differences.
    Cytogenet Cell Genet. 1999;85(3-4):273-8 PMID: 10449917
  15. A comparative map of the porcine and human genomes demonstrates ZOO-FISH and gene mapping-based chromosomal homologies.
    Mamm Genome. 1996 Apr;7(4):285-90 PMID: 8661700
  16. ZOO-FISH analysis in insectivores: "Evolution extols the virtue of the status quo".
    Cytogenet Cell Genet. 1998;80(1-4):61-7 PMID: 9678336
  17. A panel of subchromosomal painting libraries representing over 300 regions of the human genome.
    Cytogenet Cell Genet. 1995;68(1-2):25-32 PMID: 7956353
  18. Homologies in human and Macaca fuscata chromosomes revealed by in situ suppression hybridization with human chromosome specific DNA libraries.
    Chromosoma. 1992 Mar;101(5-6):265-70 PMID: 1576879
  19. Identification of complex chromosome rearrangements in the gibbon by fluorescent in situ hybridization (FISH) of a human chromosome 2q specific microlibrary, yeast artificial chromosomes, and reciprocal chromosome painting.
    Cytogenet Cell Genet. 1996;74(1-2):80-5 PMID: 8893807
  20. Emerging patterns of comparative genome organization in some mammalian species as revealed by Zoo-FISH.
    Genome Res. 1998 Jun;8(6):577-89 PMID: 9647633
  21. Fluorescence in situ hybridization with human chromosome-specific libraries: detection of trisomy 21 and translocations of chromosome 4.
    Proc Natl Acad Sci U S A. 1988 Dec;85(23):9138-42 PMID: 2973607
  22. ZOO-FISH analysis: cat and human karyotypes closely resemble the putative ancestral mammalian karyotype.
    Chromosome Res. 1995 Dec;3(8):479-86 PMID: 8581300
  23. Reconstruction of genomic rearrangements in great apes and gibbons by chromosome painting.
    Proc Natl Acad Sci U S A. 1992 Sep 15;89(18):8611-5 PMID: 1528869
  24. Conservation of human vs. feline genome organization revealed by reciprocal chromosome painting.
    Cytogenet Cell Genet. 1997;77(3-4):211-7 PMID: 9284919
  25. Human and porcine correspondence of chromosome segments using bidirectional chromosome painting.
    Genomics. 1996 Sep 1;36(2):252-62 PMID: 8812451
  26. The promise of comparative genomics in mammals.
    Science. 1999 Oct 15;286(5439):458-62, 479-81 PMID: 10521336
  27. Chromosomal evolution in primates: tentative phylogeny from Microcebus murinus (Prosimian) to man.
    Hum Genet. 1979 May 10;48(3):251-314 PMID: 112030
  28. Genomic reorganization in the concolor gibbon (Hylobates concolor) revealed by chromosome painting.
    Genomics. 1995 Nov 20;30(2):287-92 PMID: 8586429
  29. Defining the ancestral karyotype of all primates by multidirectional chromosome painting between tree shrews, lemurs and humans.
    Chromosoma. 1999 Nov;108(6):393-400 PMID: 10591999
  30. Comparative anchor tagged sequences (CATS) for integrative mapping of mammalian genomes.
    Nat Genet. 1997 Jan;15(1):47-56 PMID: 8988168
  31. Detection of chromosome aberrations in metaphase and interphase tumor cells by in situ hybridization using chromosome-specific library probes.
    Hum Genet. 1988 Nov;80(3):235-46 PMID: 3192213
  32. Comparative painting of mammalian chromosomes.
    Curr Opin Genet Dev. 1997 Dec;7(6):784-91 PMID: 9468788
  33. Comparative chromosome painting discloses homologous segments in distantly related mammals.
    Nat Genet. 1994 Apr;6(4):342-7 PMID: 8054973
  34. Reciprocal chromosome painting shows that the great difference in diploid number between human and African green monkey is mostly due to non-Robertsonian fissions.
    Mamm Genome. 1999 Jul;10(7):713-8 PMID: 10384046
  35. Region-specific YAC banding and painting probes for comparative genome mapping: implications for the evolution of human chromosome 2.
    Chromosoma. 1996 Jun;104(8):537-44 PMID: 8662246
  36. Comparative Chromosome Painting of Primate Genomes.
    ILAR J. 1998;39(2-3):77-91 PMID: 11528067
  37. The origin of man: a chromosomal pictorial legacy.
    Science. 1982 Mar 19;215(4539):1525-30 PMID: 7063861
  38. Origin of human chromosome 21 and its consequences: a 50-million-year-old story.
    Chromosome Res. 1998 Jun;6(4):263-8 PMID: 9688515
  39. Genomic reorganization and disrupted chromosomal synteny in the siamang (Hylobates syndactylus) revealed by fluorescence in situ hybridization.
    Am J Phys Anthropol. 1995 May;97(1):37-47 PMID: 7645672
  40. Comparative mapping between human chromosome 3 and porcine chromosome 13.
    Cytogenet Cell Genet. 1999;85(3-4):279-84 PMID: 10449918
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2000-01-04
Pages
206-11
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC26641
Subset
IM
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