Home LiteratureArticle Details
PMID: 112030 Published · ppublish English Comparative Study Journal Article Review

Chromosomal evolution in primates: tentative phylogeny from Microcebus murinus (Prosimian) to man.

Human genetics ·Vol. 48 ·No. 3 ·1979-05-10 ·Pages 251-314

Dutrillaux B

Abstract

The karyotypes of more than 60 species of Primates are studied and compared, with the use of almost all existing banding techniques. There is a very close analogy of chromosome banding between the Simians studied and man. The quantitative or qualitative variations detected all involve the heterochromatin. It is very likely that all the euchromatin (nonvariable R and Q bands) is identical in all the species. Approximately 70% of the bands are common to the Simians and to the Lemurs (Prosimians). In the remaining 30%, technical difficulties prevented a valuable comparison, but this does not exclude the possibility that a complete analogy may exist. Thus, it is very likely that chromosomal evolutions of the Simians, and probably of all the Primates, has occurred without duplication or deficiency of the euchromatin. Approximately 150 rearrangements could be identified and related to the human chromosomes. The types of rearrangement vary from one group (suborder, family, genus) to another. For instance, Robertsonian translocations are preponderant among the Lemuridae (44/57), but are nonexistent among the Pongidae. Chromosome fissions are very frequent amng the Cercopithecidae (10/23), but were not found elsewhere, and pericentric inversions are preponderant in the evolution of Pongidae and man (17/28). This suggest that the chromosomal evolution may be directed by the genic constitution (favouring the occurrence of a particular type of rearrangement, by enzymatic reaction), by the chromosomal morphology (the probability that Robertsonian translocation will be formed depends at least partially on the number of acrocentrics), and by the reproductive behaviour of the animals. Reconstitution of the sequence of the chromosomal rearrangements allowed us to propose a fairly precise genealogy of many Primates, giving the positions of the Catarrhines, the Platyrrhines, and the Prosimians. It was also possible to reconstruct the karyotypes of ancestors that died out several dozen million years ago. The possible role of chromosomal rearrangements in evolution is discussed. It appears necessary to consider different categories of rearrangements separately, depending on their behaviour. The 'nonfavoured' rearrangements, such as pericentric inversions, need to occur in an isolated small population for implanting, by an equivalent of genic derivation. The 'favoured' rearrangements, e.g., Robertsonian translocations, may occur and diffuse in panmictic populations, and accumulate. Their role of gametic barrier could be much more progressive. For discrimination between these two categories, it was necessary to differentiate the selective advantage or disadvantage of the rearrangement itself. It was not possible to show that chromosomal rearrangements play a direct role in modification of the phenotype by position effect. Comparison of the rearrangement that have occurred during evolution and those detected in the human population shows a strong correlation for some of them...

MeSH Terms
Animals Azure Stains Biological Evolution Cell Nucleolus Chromosome Banding Chromosomes/ultrastructure Genes Haplorhini Heterochromatin/ultrastructure Humans Karyotyping Phylogeny Primates/genetics RNA, Ribosomal Species Specificity
Chemicals
Azure Stains Heterochromatin RNA, Ribosomal
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Dutrillaux B
References (65)
65 references, click to expand
  1. [Chromosomal phylogeny of man and the anthropomorphic primates. (Pan troglodytes, Gorilla gorilla, Pongo pygmaeus). Attempt at reconstitution of the karyotype of the common ancestor].
    Ann Genet. 1972 Dec;15(4):225-40 PMID: 4539481
  2. Selective endoreduplication or branched chromosome?
    Exp Cell Res. 1977 Feb;104(2):423-6 PMID: 65287
  3. [Staining of human chromosomes with acridine orange after treatment with 5 bromodeoxyuridine].
    C R Acad Hebd Seances Acad Sci D. 1973 Jun 13;276(24):3179-81 PMID: 4125131
  4. Chromosomal evolution in Malagasy lemurs. I. Chromosome banding studies in the genuses Lemur and Micrcebus.
    Cytogenet Cell Genet. 1976;17(5):268-81 PMID: 828095
  5. [Analysis of the structure of chromatids of Gorilla gorilla. Comparison with Homo sapiens and Pan troglodytes (author's transl)].
    Humangenetik. 1973 Dec 20;20(4):343-54 PMID: 4588466
  6. [Presence of abundant heterochromatin in the karyotype of Cebus: C. cappucinus and C. nigrivittatus].
    Ann Genet. 1978 Sep;21(3):142-8 PMID: 115370
  7. Identification of human chromosomes by DNA-binding fluorescent agents.
    Chromosoma. 1970;30(2):215-27 PMID: 4193398
  8. Robertsonian metacentrics in the mouse.
    Chromosoma. 1976 Nov 29;58(4):341-53 PMID: 1001158
  9. An improved technique for selective silver staining of nucleolar organizer regions in human chromosomes.
    Hum Genet. 1976 Oct 28;34(2):199-206 PMID: 63440
  10. Banded chromosomes of the owl monkey, Aotus trivirgatus.
    Cytogenet Cell Genet. 1977;19(4):215-26 PMID: 413693
  11. Karyotype of the chimpanzee, Pan troglodytes, based on measurements and banding pattern: comparison to the human karyotype.
    Cytogenet Cell Genet. 1973;12(6):453-61 PMID: 4134388
  12. [Karyotype analysis of 2 species of gibbons (Hylobates lar and H. concolor) with different banding species].
    Cytogenet Cell Genet. 1975;15(2):81-91 PMID: 1183240
  13. [X-chromosome translocations. Examination based on treatment with BUDR and staining with acridine orange].
    Helv Paediatr Acta. 1974;Suppl 34:19-31 PMID: 4141698
  14. Centric fission of chromosome no. 4 in the mother of two patients with trisomy 4p.
    Hum Genet. 1976 Jan 28;31(1):121-5 PMID: 1248819
  15. New technique for distinguishing between human chromosomes.
    Nat New Biol. 1971 Jul 7;232(27):31-2 PMID: 4105244
  16. [Comparison of the structure of chromatids of Homo sapiens and Pan troglodytes (author's transl)].
    Chromosoma. 1973;43(4):423-44 PMID: 4130182
  17. Complete or almost complete analogy of chromosome banding between the baboon (Papio papio) and man.
    Hum Genet. 1978 Jul 12;43(1):37-46 PMID: 97206
  18. Sequence of DNA replication in 277 R- and Q-bands of human chromosomes using a BrdU treatment.
    Chromosoma. 1976 Oct 12;58(1):51-61 PMID: 63360
  19. Banding patterns of the chromosomes of man and gorilla.
    Ann Genet. 1973 Sep;16(3):207-10 PMID: 4543210
  20. Fifty-million-year evolution of chromosome 1 in the primates. Evidence from banding and gene mapping.
    Cytogenet Cell Genet. 1977;18(3):160-4 PMID: 405180
  21. [Selective endoreduplication of the long arm of the 2 chromosome in a woman and her daughter].
    C R Acad Hebd Seances Acad Sci D. 1968 Jan 3;266(1):24-6 PMID: 4967624
  22. Chromosomes of the tan-handed titi (Callicebus torquatus, Hoffmannsegg, 1807).
    Folia Primatol (Basel). 1976;25(1):25-34 PMID: 811515
  23. THE SOMATIC CHROMOSOMES OF THE HOMINOIDEA.
    Cytogenetics. 1963;2:240-63 PMID: 14101503
  24. [New system of chromosome banding: the T bands (author's transl)].
    Chromosoma. 1973 Apr 27;41(4):395-402 PMID: 4127019
  25. Identity of euchromatic bands from man to cercopithecidae (Cercopithecus aethiops, Cercopithecus sabaeus, Erythrocebus patas, and Miopithecus talapoin).
    Hum Genet. 1978 Dec 29;45(3):283-96 PMID: 104920
  26. [Karyotypic evolution in man and chimpanzees. A comparative study of band topographies after controlled denaturation].
    Ann Genet. 1972 Jun;15(2):79-84 PMID: 4537726
  27. Inherited constriction fragility of chromosome 2.
    Ann Genet. 1973 Mar;16(1):29-34 PMID: 4352902
  28. The location of DNA homologous to human satellite III DNA in the chromosomes of chimpanzee (Pan troglodytes), gorilla (Gorilla gorilla) and orang utan (Pongo pygmaeus).
    Chromosoma. 1977 Jun 23;61(4):345-58 PMID: 880842
  29. [Analysis of the karyotype of Pan paniscus. Comparison with other Pongidae and man (author's transl)].
    Humangenetik. 1975 Jun 19;28(2):113-9 PMID: 50278
  30. [The mechanisms of speciation].
    C R Seances Soc Biol Fil. 1975;169(4):828-44 PMID: 129250
  31. The gorilla karyotype: chromosome lengths and polymorphisms.
    Cytogenet Cell Genet. 1974;13(6):536-50 PMID: 4142605
  32. Human somatic chromosome chains and rings. A preliminary note on end-to-end fusion.
    Cytogenet Cell Genet. 1978;20(1-6):70-7 PMID: 648191
  33. A human family suggesting evidence for centric fission and stability of a telocentric chromosome.
    Hum Hered. 1972;22(5):423-9 PMID: 4670062
  34. Chromosomal evolution in Malagasy lemurs. II. Meiosis in intra- and interspecific hybrids in the genus Lemur.
    Cytogenet Cell Genet. 1977;18(4):197-211 PMID: 406119
  35. Localization of rDNA in the chromosome complement of the rhesus (Macaca mulatta).
    Chromosoma. 1974 Jan 29;44(4):367-70 PMID: 4134867
  36. Multiple abnormalities due to possible genetic inactivation in an X-autosome translocation.
    Am J Hum Genet. 1971 Jul;23(4):410-8 PMID: 5097907
  37. Satellite DNA.
    J Med Genet. 1973 Sep;10(3):273-81 PMID: 4129952
  38. The distribution of sequences complementary to human satellite DNAs I, II and IV in the chromosomes of chimpanzee (Pan troglodytes), gorilla (Gorilla gorilla) and orang utan (Pongo pygmaeus).
    Chromosoma. 1977 Sep 27;63(3):253-71 PMID: 561680
  39. [Various banding simultaneously obtained on the same slides, after treatment by BrdU (author's transl)].
    Humangenetik. 1975 Dec 23;30(4):297-306 PMID: 56297
  40. Banding patterns of the chromosomes of man and the chimpanzee.
    Humangenetik. 1973 Mar 23;18(1):77-80 PMID: 4124495
  41. Specific cytological recognition of the heterochromatic segment of number 9 chromosome in man.
    Exp Cell Res. 1972 Jul;73(1):239-42 PMID: 4113942
  42. THE SOMATIC CHROMOSOMES OF SOME PRIMATES (TUPAIA GLIS, NYCTICEBUS COUCANG, TARSIUS BANCANUS, CERCOCEBUS ATERRIMUS, SYMPHALANGUS SYNDACTYLUS).
    Cytogenetics. 1963;2:140-51 PMID: 14103442
  43. Cytogenetics and evolution of primates.
    Ann N Y Acad Sci. 1962 Dec 28;102:253-66 PMID: 14021190
  44. Location of satellite and homogeneous DNA sequences on human chromosomes.
    Nat New Biol. 1971 Oct 27;233(43):268-71 PMID: 4107945
  45. [Karyotypes of man and the chimpanzee. Comparison of the topography of bands. Possible evolutive mechanisms].
    C R Acad Hebd Seances Acad Sci D. 1972 Apr 17;274(16):2355-7 PMID: 4624970
  46. [A new technic of analysis of the human karyotype].
    C R Acad Hebd Seances Acad Sci D. 1971 May 17;272(20):2638-40 PMID: 4104656
  47. Evolutionary conservatism in arrangement of genetic material. A comparative analysis of chromosome banding between the rhesus macaque (2n equals 42, 84 arms) and the African green monkey (2n equals 60, 120 arms).
    Chromosoma. 1973 Aug 10;43(2):211-24 PMID: 4783711
  48. [Demonstration of the fine structure of human chromosomes by enzymatic digestion (especially pronase)].
    C R Acad Hebd Seances Acad Sci D. 1971 Aug 2;273(5):587-8 PMID: 5001137
  49. Comparison of the karyotypes of four Cercopithecoidae: Papio papio, P. anubis, Macaca mulatta, and M. fascicularis.
    Cytogenet Cell Genet. 1979;23(1-2):77-83 PMID: 83931
  50. Systematic analysis of 95 reciprocal translocations of autosomes.
    Hum Genet. 1978 Dec 29;45(3):259-82 PMID: 738728
  51. A case of centric fission in man.
    Humangenetik. 1975;26(3):257-9 PMID: 1132882
  52. The chromosomal location of rDNA in selected lower primates.
    Cytogenet Cell Genet. 1977;19(5):281-302 PMID: 414888
  53. Location of ribosomal DNA in the human chromosome complement.
    Proc Natl Acad Sci U S A. 1972 Nov;69(11):3394-8 PMID: 4508329
  54. Chromosomal evolution in Malagasy lemurs. III. Chromosome banding studies in the genus Hapalemur and the species Lemur catta.
    Cytogenet Cell Genet. 1978;21(4):201-11 PMID: 97055
  55. Cancer and the evolution of species: a ransom.
    Biomedicine. 1973 Jan;18(1):6-8 PMID: 4197290
  56. A comparison of chimpanzee and human chromosomes using the Giemsa-11 and other chromosome banding techniques.
    Cytogenet Cell Genet. 1973;12(2):107-16 PMID: 4123123
  57. Robertsonian translocations in man: evidence for prezygotic selection.
    Cytogenetics. 1968;7(4):260-76 PMID: 4235461
  58. A simple technique for demonstrating centromeric heterochromatin.
    Exp Cell Res. 1972 Nov;75(1):304-6 PMID: 4117921
  59. Detection of nucleolus organizer regions in chromosomes of human, chimpanzee, gorilla, orangutan and gibbon.
    Chromosoma. 1976 Jun 30;56(1):15-27 PMID: 61844
  60. A cytogenetic survey of 14,069 newborn infants. I. Incidence of chromosome abnormalities.
    Clin Genet. 1975 Oct;8(4):223-43 PMID: 1183067
  61. Incidence of chromosome aberrations among 11148 newborn children.
    Humangenetik. 1975 Oct 20;30(1):1-12 PMID: 1184003
  62. Evolution of karyotypes in snakes.
    Chromosoma. 1972;38(2):185-236 PMID: 5066447
  63. A phylogenetic study of bird karyotypes.
    Chromosoma. 1974 May 21;46(1):91-120 PMID: 4134896
  64. [Comparison of the karyotype of the orangutan (Pongo pygmaeus) to those of man, chimpazee, and gorilla].
    Ann Genet. 1975 Sep;18(3):153-61 PMID: 1080978
  65. New observations on the human and chimpanzee karyotypes. Identification of breakage points of pericentric inversions.
    Humangenetik. 1973;20(2):151-7 PMID: 4785161
Article Info
Journal
Human genetics
Abbr.
Hum Genet
ISSN
0340-6717
Published
1979-05-10
Pages
251-314
Language
English
Region
Germany
NLM ID
7613873
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