» Articles » PMID: 3098627

The Relationship Between the Functional Complexity and the Molecular Organization of the Antennapedia Locus of Drosophila Melanogaster

Overview
Journal Genetics
Specialty Genetics
Date 1986 Nov 1
PMID 3098627
Citations 33
Authors
Affiliations
Soon will be listed here.
Abstract

The Antp locus is involved in the development of the thorax of the larval and adult Drosophila. The absence of Antp+ function during embryogenesis results in the larval mesothorax exhibiting characteristics of the prothorax and an ensuing lethality; the loss of Antp+ function in the development of the adult thorax causes specific portions of the leg, wing and humeral imaginal discs to develop abnormally. Every Antp mutation, however, does not cause all of these developmental defects. Certain mutant alleles disrupt humeral and wing disc development without affecting leg development, and they are not deficient for the wild-type function required during embryogenesis. Other Antp mutations result in abnormal legs, but do not alter dorsal thoracic development. Mutations of each type can complement to produce a normal adult fly, which suggests that there are at least two discrete functional units within the locus. This hypothesis is supported by the fact that each of the developmental defects arises from the alteration of a different physical region within the Antp DNA. These observations indicate that the complete developmental role of the Antp locus is defined by the spatial and temporal regulation of the expression of several individual functional units.

Citing Articles

The Hox protein Antennapedia orchestrates adult flight muscle development.

Poliacikova G, Aouane A, Caruso N, Brouilly N, Maurel-Zaffran C, Graba Y Sci Adv. 2024; 10(48):eadr2261.

PMID: 39602537 PMC: 11601212. DOI: 10.1126/sciadv.adr2261.


Nervous system-wide analysis of Hox regulation of terminal neuronal fate specification in Caenorhabditis elegans.

Zheng C, Lee H, Pham K PLoS Genet. 2022; 18(2):e1010092.

PMID: 35226663 PMC: 8912897. DOI: 10.1371/journal.pgen.1010092.


Mechanisms Underlying Hox-Mediated Transcriptional Outcomes.

Cain B, Gebelein B Front Cell Dev Biol. 2021; 9:787339.

PMID: 34869389 PMC: 8635045. DOI: 10.3389/fcell.2021.787339.


Cell-type-specific Hox regulatory strategies orchestrate tissue identity.

Loker R, Sanner J, Mann R Curr Biol. 2021; 31(19):4246-4255.e4.

PMID: 34358443 PMC: 8511240. DOI: 10.1016/j.cub.2021.07.030.


Control of Hox transcription factor concentration and cell-to-cell variability by an auto-regulatory switch.

Papadopoulos D, Skouloudaki K, Engstrom Y, Terenius L, Rigler R, Zechner C Development. 2019; 146(12).

PMID: 30642837 PMC: 6602345. DOI: 10.1242/dev.168179.


References
1.
Sanchez-Herrero E, Vernos I, Marco R, Morata G . Genetic organization of Drosophila bithorax complex. Nature. 1985; 313(5998):108-13. DOI: 10.1038/313108a0. View

2.
DUNCAN I, Kaufman T . Cytogenic analysis of chromosome 3 in Drosophila melanogaster: mapping of the proximal portion of the right arm. Genetics. 1975; 80(4):733-52. PMC: 1213372. DOI: 10.1093/genetics/80.4.733. View

3.
Laughon A, Scott M . Sequence of a Drosophila segmentation gene: protein structure homology with DNA-binding proteins. Nature. 1984; 310(5972):25-31. DOI: 10.1038/310025a0. View

4.
Denell R, Hummels K, Wakimoto B, Kaufman T . Developmental studies of lethality associated with the antennapedia gene complex in Drosophila melanogaster. Dev Biol. 1981; 81(1):43-50. DOI: 10.1016/0012-1606(81)90346-8. View

5.
Denell R . Homoeosis in Drosophila. I. Complementation studies with revertants of Nasobemia. Genetics. 1973; 75(2):279-97. PMC: 1213010. DOI: 10.1093/genetics/75.2.279. View