» Articles » PMID: 111905

Cytological Studies of Heterochromatin Function in the Drosophila Melanogaster Male: Autosomal Meiotic Paring

Overview
Journal Chromosoma
Specialty Molecular Biology
Date 1979 May 10
PMID 111905
Citations 24
Authors
Affiliations
Soon will be listed here.
Abstract

In Drosophila melanogaster it is now documented that the different satellite DNA sequences make up the majority of the centromeric heterochromatin of all chromosomes. The most popular hypothesis on this class of DNA is that satellite DNA itself is important to the pairing processes of chromosomes. Evidence in support of such a hypothesis is, however, circumstantial. This hypothesis has been evaluated by direct cytological examination of the meiotic behaviour of heterochromatically and/or euchromatically rear-ranged autosomes in the male. It was found that neither substantial deletions nor rearrangements of the autosomal heterochromatin cause any disruption of meiotic pairing. Autosomal pairing depends on homologs retaining sufficient euchromatic homology. This is the first clear demonstration that the highly repeated satellite DNA sequences in the heterochromatin of the second, third and fourth chromosomes are not important in meiotic pairing, but rather than some euchromatic homology in the autosome is essential to ensure a regular meiotic process. These results on the autosomes, when taken in conjunction with our previous studies on sex chromosome pairing, clearly indicate that satellite DNA is not crucial for male meiotic chromosome pairing of any member of the D. melanogaster genome.

Citing Articles

Dispersive forces and resisting spot welds by alternative homolog conjunction govern chromosome shape in Drosophila spermatocytes during prophase I.

Vernizzi L, Lehner C PLoS Genet. 2022; 18(7):e1010327.

PMID: 35895750 PMC: 9359577. DOI: 10.1371/journal.pgen.1010327.


Functional Significance of Satellite DNAs: Insights From .

Shatskikh A, Kotov A, Adashev V, Bazylev S, Olenina L Front Cell Dev Biol. 2020; 8:312.

PMID: 32432114 PMC: 7214746. DOI: 10.3389/fcell.2020.00312.


Sex Chromosome Pairing Mediated by Euchromatic Homology in Male Meiosis.

Hylton C, Hansen K, Bourgeois A, Tomkiel Dean J Genetics. 2020; 214(3):605-616.

PMID: 31915134 PMC: 7054017. DOI: 10.1534/genetics.119.302936.


Meiotic pairing of the amphiploid Hordeum chilense X Triticum turgidum conv. durum studied by means of Giemsa C-banding technique.

Fernandez J, Gonzalez J, Jouve N Theor Appl Genet. 2013; 70(1):85-91.

PMID: 24254119 DOI: 10.1007/BF00264487.


The meiotic pairing of nine wheat chromosomes.

Ferrer E, Gonzalez J, Jouve N Theor Appl Genet. 2013; 69(2):193-8.

PMID: 24253711 DOI: 10.1007/BF00272894.


References
1.
Sinha A, Kakati S . C- and G-bands of the opossum chromosomes: terminal sequences of DNA replication. Can J Genet Cytol. 1976; 18(1):195-205. DOI: 10.1139/g76-024. View

2.
John B, Miklos G . Functional aspects of satellite DNA and heterochromatin. Int Rev Cytol. 1979; 58:1-114. DOI: 10.1016/s0074-7696(08)61473-4. View

3.
FLAMM W . Highly repetitive sequences of DNA in chromosomes. Int Rev Cytol. 1972; 32:1-51. DOI: 10.1016/s0074-7696(08)60337-x. View

4.
Brown J, Jones K . Localisation of satellite DNA in the microchromosomes of the Japanese quail by in situ hybridization. Chromosoma. 1972; 38(3):313-8. DOI: 10.1007/BF00290928. View

5.
Hsu T, Cooper J, Mace Jr M, Brinkley B . Arrangement of centromeres in mouse cells. Chromosoma. 1971; 34(1):73-87. DOI: 10.1007/BF00285517. View