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PMID: 15983832 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Mutant meiotic chromosome core components in mice can cause apparent sexual dimorphic endpoints at prophase or X-Y defective male-specific sterility.

Chromosoma ·Vol. 114 ·No. 2 ·2005-07-00 ·Pages 92-102

Kolas NK, Marcon E, Crackower MA, Höög C, Penninger JM, Spyropoulos B, Moens PB

Abstract

Genetic modifications causing germ cell death during meiotic prophase in the mouse frequently have sexually dimorphic phenotypes where oocytes reach more advanced stages than spermatocytes. To determine to what extent these dimorphisms are due to differences in male versus female meiotic prophase development, we compared meiotic chromosome events in the two sexes in both wild-type and mutant mice. We report the abundance and time course of appearance of structural and recombination-related proteins of fetal oocyte nuclei. Oocytes at successive days post coitus show rapid, synchronous meiotic prophase development compared with the continuous spermatocyte development in adult testis. Consequently, a genetic defect requiring 2-3 days from the onset of prophase to reach arrest registers pachytene as the developmental endpoint in oocytes. Pachytene spermatocytes, on the other hand, which normally accumulate during days 4-10 after the onset of prophase, will be rare, giving the appearance of an earlier endpoint than in oocytes. We conclude that these different logistics create apparent sexually dimorphic endpoints. For more pronounced sexual dimorphisms, we examined meiotic prophase of mice with genetic modifications of meiotic chromosome core components that cause male but not female sterility. The correlations between male sterility and alterations in the organization of the sex chromosome cores and X-Y chromatin may indicate that impaired signals from the XY domain (XY chromosome cores, chromatin, dense body and sex body) may interfere with the progression of the spermatocyte through prophase. Oocytes, in the absence of the X-Y pair, do not suffer such defects.

MeSH Terms
Animals BRCA1 Protein/genetics Disease Models, Animal Female Infertility, Male/genetics Male Mice Oocytes/physiology Spermatocytes/physiology X Chromosome/genetics Y Chromosome/genetics
Chemicals
BRCA1 Protein
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Kolas Nadine K
Department of Molecular Genetics, Albert Einstein College of Medicine, 1300 Morris Park Ave., Ullmann Bldg, Room 115, Bronx, NY 10461, USA. nkolas@aecom.yu.edu
Marcon Edyta
Crackower Michael A
Höög Christer
Penninger Josef M
Spyropoulos Barbara
Moens Peter B
References (38)
38 references, click to expand
  1. Spermatogenic failure in male mice with four sex chromosomes.
    Chromosoma. 2001 May;110(2):124-9 PMID: 11453555
  2. H2AX is required for chromatin remodeling and inactivation of sex chromosomes in male mouse meiosis.
    Dev Cell. 2003 Apr;4(4):497-508 PMID: 12689589
  3. The mouse and human homologs of DMC1, the yeast meiosis-specific homologous recombination gene, have a common unique form of exon-skipped transcript in meiosis.
    Nucleic Acids Res. 1996 Feb 1;24(3):470-7 PMID: 8602360
  4. RAD51 and DMC1 form mixed complexes associated with mouse meiotic chromosome cores and synaptonemal complexes.
    J Cell Biol. 1999 Oct 18;147(2):207-20 PMID: 10525529
  5. The time course and chromosomal localization of recombination-related proteins at meiosis in the mouse are compatible with models that can resolve the early DNA-DNA interactions without reciprocal recombination.
    J Cell Sci. 2002 Apr 15;115(Pt 8):1611-22 PMID: 11950880
  6. RPA involvement in the damage-recognition and incision steps of nucleotide excision repair.
    Nature. 1995 Apr 6;374(6522):566-9 PMID: 7700386
  7. TopBP1 localises to centrosomes in mitosis and to chromosome cores in meiosis.
    Chromosoma. 2004 May;112(7):323-30 PMID: 15138768
  8. Differential association of SMC1alpha and SMC3 proteins with meiotic chromosomes in wild-type and SPO11-deficient male mice.
    Chromosome Res. 2002;10(7):549-60 PMID: 12498344
  9. Synaptonemal complex karyotyping in spermatocytes of the Chinese hamster (Cricetulus griseus). IV. Light and electron microscopy of synapsis and nucleolar development by silver staining.
    Chromosoma. 1980;76(1):1-22 PMID: 6153596
  10. Meiotic pachytene arrest in MLH1-deficient mice.
    Cell. 1996 Jun 28;85(7):1125-34 PMID: 8674118
  11. Evidence that sex chromosome asynapsis, rather than excess Y gene dosage, is responsible for the meiotic impairment of XYY mice.
    Cytogenet Cell Genet. 2000;89(1-2):38-43 PMID: 10894933
  12. The prevalence of a YY synaptonemal complex over XY synapsis in an XYY man with exclusive XYY spermatocytes.
    Chromosome Res. 1997 Nov;5(7):467-74 PMID: 9421264
  13. BRCT domain-containing protein TopBP1 functions in DNA replication and damage response.
    J Biol Chem. 2001 Aug 10;276(32):30399-406 PMID: 11395493
  14. Female germ cell aneuploidy and embryo death in mice lacking the meiosis-specific protein SCP3.
    Science. 2002 May 10;296(5570):1115-8 PMID: 12004129
  15. MutS homolog 4 localization to meiotic chromosomes is required for chromosome pairing during meiosis in male and female mice.
    Genes Dev. 2000 May 1;14(9):1085-97 PMID: 10809667
  16. Infertility and aneuploidy in mice lacking a type IA DNA topoisomerase III beta.
    Proc Natl Acad Sci U S A. 2003 Mar 4;100(5):2526-31 PMID: 12591952
  17. Chromosome synapsis defects and sexually dimorphic meiotic progression in mice lacking Spo11.
    Mol Cell. 2000 Nov;6(5):989-98 PMID: 11106739
  18. Distinct DNA-damage-dependent and -independent responses drive the loss of oocytes in recombination-defective mouse mutants.
    Proc Natl Acad Sci U S A. 2005 Jan 18;102(3):737-42 PMID: 15640358
  19. Essential role of Fkbp6 in male fertility and homologous chromosome pairing in meiosis.
    Science. 2003 May 23;300(5623):1291-5 PMID: 12764197
  20. Association of mammalian SMC1 and SMC3 proteins with meiotic chromosomes and synaptonemal complexes.
    J Cell Sci. 2000 Feb;113 ( Pt 4):673-82 PMID: 10652260
  21. Sex matters in meiosis.
    Science. 2002 Jun 21;296(5576):2181-3 PMID: 12077403
  22. The murine SCP3 gene is required for synaptonemal complex assembly, chromosome synapsis, and male fertility.
    Mol Cell. 2000 Jan;5(1):73-83 PMID: 10678170
  23. A meiotic chromosomal core consisting of cohesin complex proteins recruits DNA recombination proteins and promotes synapsis in the absence of an axial element in mammalian meiotic cells.
    Mol Cell Biol. 2001 Aug;21(16):5667-77 PMID: 11463847
  24. BRCA1, histone H2AX phosphorylation, and male meiotic sex chromosome inactivation.
    Curr Biol. 2004 Dec 14;14(23):2135-42 PMID: 15589157
  25. Synaptonemal complex proteins: occurrence, epitope mapping and chromosome disjunction.
    J Cell Sci. 1994 Oct;107 ( Pt 10):2749-60 PMID: 7876343
  26. Germline stem cells and follicular renewal in the postnatal mammalian ovary.
    Nature. 2004 Mar 11;428(6979):145-50 PMID: 15014492
  27. Male mouse meiotic chromosome cores deficient in structural proteins SYCP3 and SYCP2 align by homology but fail to synapse and have possible impaired specificity of chromatin loop attachment.
    Cytogenet Genome Res. 2004;105(2-4):182-8 PMID: 15237206
  28. Rate of homologous chromosome bivalents in spermatocytes may predict completion of spermatogenesis in azoospermic men.
    Hum Genet. 2002 Jan;110(1):30-5 PMID: 11810293
  29. Identification of two major components of the lateral elements of synaptonemal complexes of the rat.
    Eur J Cell Biol. 1987 Feb;43(1):148-54 PMID: 3552678
  30. TopBP1 and ATR colocalization at meiotic chromosomes: role of TopBP1/Cut5 in the meiotic recombination checkpoint.
    Mol Biol Cell. 2004 Apr;15(4):1568-79 PMID: 14718568
  31. Meiotic prophase arrest with failure of chromosome synapsis in mice deficient for Dmc1, a germline-specific RecA homolog.
    Mol Cell. 1998 Apr;1(5):697-705 PMID: 9660953
  32. Genomic instability in mice lacking histone H2AX.
    Science. 2002 May 3;296(5569):922-7 PMID: 11934988
  33. Azoospermia in patients heterozygous for a mutation in SYCP3.
    Lancet. 2003 Nov 22;362(9397):1714-9 PMID: 14643120
  34. Deficiency of X and Y chromosomal pairing at meiotic prophase in spermatocytes of sterile interspecific hybrids between laboratory mice (Mus domesticus) and Mus spretus.
    Chromosoma. 1992 Jun;101(8):483-92 PMID: 1424992
  35. Duration of the cycle of the seminiferous epithelium in the mouse and hamster determined by means of 3H-thymidine and radioautography.
    Fertil Steril. 1969 Sep-Oct;20(5):805-17 PMID: 5822863
  36. The process of spermatogenesis in mammals.
    Biol Rev Camb Philos Soc. 1962 Aug;37:343-77 PMID: 14493721
  37. Impaired meiotic DNA-damage repair and lack of crossing-over during spermatogenesis in BRCA1 full-length isoform deficient mice.
    Development. 2003 May;130(9):2001-12 PMID: 12642502
  38. Expression and nuclear localization of BLM, a chromosome stability protein mutated in Bloom's syndrome, suggest a role in recombination during meiotic prophase.
    J Cell Sci. 2000 Feb;113 ( Pt 4):663-72 PMID: 10652259
Article Info
Journal
Chromosoma
Abbr.
Chromosoma
ISSN
0009-5915
Published
2005-07-00
Epub
2005-00-28
Pages
92-102
Language
English
Region
Austria
NLM ID
2985138R
Subset
IM
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