» Articles » PMID: 3113852

Three Euchromatic DNA Sequences Under-replicated in Polytene Chromosomes of Drosophila Are Localized in Constrictions and Ectopic Fibers

Overview
Journal Chromosoma
Specialty Molecular Biology
Date 1987 Jan 1
PMID 3113852
Citations 20
Authors
Affiliations
Soon will be listed here.
Abstract

We examined three regions of under-represented euchromatic DNA sequences (histone, Ubx, and 11 A), for their possible correlation with euchromatic constrictions in polytene chromosomes of Drosophila melanogaster. Cloned sequences were hybridized to filters and to chromosomes prepared for light microscopy. Under-represented sequences hybridized to DNA within constrictions and in ectopic fibers. In contrast, adjacent sequences that were fully endoreplicated in the Ubx and 11 A regions in polytene cells hybridized to sites just adjacent to their respective constrictions. For one region (Ubx), sequences under-represented in salivary gland cells were fully endoreplicated in fat body cells. For this particular region, the morphology of the polytene chromosomes differs between these two cell types in that the specific constriction is absent at this region in fat body polytene chromosomes, thus strengthening the correlation between under-representation and chromosome constrictions. Although all three sequences are in regions that have been classified by others as "intercalary heterochromatin," we detect no common functional or sequence organizational feature for these examples of under-represented DNA. We suggest that the lower efficiencies of the replication origins, or special regions of termination at these sites, are the primary cause of the under-replication, and that this under-replication is sufficient to confer the properties of intercalary heterochromatin.

Citing Articles

Arp2/3 and Unc45 maintain heterochromatin stability in polytene chromosomes.

Dialynas G, Delabaere L, Chiolo I Exp Biol Med (Maywood). 2019; 244(15):1362-1371.

PMID: 31364400 PMC: 6880141. DOI: 10.1177/1535370219862282.


Centromere-Proximal Meiotic Crossovers in Are Suppressed by Both Highly Repetitive Heterochromatin and Proximity to the Centromere.

Hartmann M, Umbanhowar J, Sekelsky J Genetics. 2019; 213(1):113-125.

PMID: 31345993 PMC: 6727794. DOI: 10.1534/genetics.119.302509.


DNA Replication Control During Development: Insights into the Onset of S Phase, Replication Initiation, and Fork Progression.

Hua B, Orr-Weaver T Genetics. 2017; 207(1):29-47.

PMID: 28874453 PMC: 5586379. DOI: 10.1534/genetics.115.186627.


Chromatin Heterogeneity and Distribution of Regulatory Elements in the Late-Replicating Intercalary Heterochromatin Domains of Drosophila melanogaster Chromosomes.

Khoroshko V, Levitsky V, Zykova T, Antonenko O, Belyaeva E, Zhimulev I PLoS One. 2016; 11(6):e0157147.

PMID: 27300486 PMC: 4907538. DOI: 10.1371/journal.pone.0157147.


Preferential Breakpoints in the Recovery of Broken Dicentric Chromosomes in Drosophila melanogaster.

Hill H, Golic K Genetics. 2015; 201(2):563-72.

PMID: 26294667 PMC: 4596669. DOI: 10.1534/genetics.115.181156.


References
1.
Holmgren P, Johansson T, Lambertsson A, RASMUSON B . Content of histone H1 and histone phosphorylation in relation to the higher order structures of chromatin in Drosophila. Chromosoma. 1985; 93(2):123-31. DOI: 10.1007/BF00293159. View

2.
Hammond M, Laird C . Control of DNA replication and spatial distribution of defined DNA sequences in salivary gland cells of Drosophila melanogaster. Chromosoma. 1985; 91(3-4):279-86. DOI: 10.1007/BF00328223. View

3.
Gall J, COHEN E, Polan M . Reptitive DNA sequences in drosophila. Chromosoma. 1971; 33(3):319-44. DOI: 10.1007/BF00284948. View

4.
Lifschytz E . Sequence replication and banding organization in the polytene chromosomes of Drosophila melanogaster. J Mol Biol. 1983; 164(1):17-34. DOI: 10.1016/0022-2836(83)90085-2. View

5.
Richards G . The polytene chromosomes in the fat body nuclei of Drosophila melanogaster. Chromosoma. 1980; 79(2):241-50. DOI: 10.1007/BF01175189. View