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Updated: Jul 22, 2026

Preparation of Adult Drosophila Eyes for Thin Sectioning and Microscopic Analysis
Published on: August 27, 2011
Knockdown of PR-DUB subunit calypso in the developing Drosophila eye and wing results in mis-patterned tissues with
Max Luf1,2, Priya Begani1,2,3, Anne M Bowcock1,2,3,4,5
1Department of Oncological Sciences, Icahn School of Medicine at Mount Sinai, New York, NY 10029, United States.
Abstract:
The deubiquitinating enzyme BAP1 is the catalytic subunit of the Polycomb Repressive Deubiquitinase (PR-DUB) complex, which acts with the Polycomb Repressive Complexes 1 and 2 to regulate chromatin organization to repress homeotic genes and other developmental regulators. Loss of BAP1 is implicated in several cancers, in the familial cancer syndrome BAP1 Tumor Predisposition Syndrome, and in the neurodevelopmental disorder Küry-Isidor syndrome. In Drosophila, there are numerous reports in the literature describing developmental patterning phenotypes for several chromatin regulators, including the discovery of Polycomb itself, but corresponding adult morphological phenotypes due to developmental dysregulation of the Drosophila BAP1 ortholog calypso (caly) are less well-described. We report here that knockdown of caly in the eye and wing produces concomitant chromatin dysregulation phenotypes. RNAi to caly in the early eye reduces survival and leads to changes in eye size and shape including eye outgrowths, some of which resemble homeotic transformations, whereas others resemble tumor-like outgrowths seen in other fly cancer models. Mosaic eyes containing caly loss-of-function tissue phenocopy caly RNAi. Knocking down caly across the wing disrupts wing shape and patterning, including effects on wing vein pattern. This phenotypic characterization reinforces the growing body of literature detailing developmental mis-patterning driven by chromatin dysregulation and serves as a baseline for future mechanistic studies to understand the role of BAP1 in development and disease.
Insights
The deubiquitinating enzyme BAP1, or calypso in flies, regulates chromatin organization. Its disruption in Drosophila causes developmental defects, including eye and wing abnormalities resembling cancer and homeotic transformations.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- The deubiquitinating enzyme BAP1 is crucial for chromatin regulation and is implicated in cancers and developmental disorders.
- While BAP1's role in human disease is known, its specific adult morphological phenotypes in Drosophila development are less understood.
Purpose of the Study:
- To investigate the adult morphological phenotypes resulting from the developmental dysregulation of the Drosophila BAP1 ortholog, calypso (caly).
- To characterize the chromatin dysregulation phenotypes caused by caly knockdown in Drosophila eyes and wings.
Main Methods:
- RNA interference (RNAi) was used to knock down caly expression in Drosophila eyes and wings.
- Mosaic analysis was performed on eyes with caly loss-of-function tissue.
- Phenotypic characterization of eye and wing morphology, survival rates, and patterning.
Main Results:
- Caly knockdown in the eye reduced survival and caused changes in eye size and shape, including homeotic transformations and tumor-like outgrowths.
- Mosaic eyes with caly loss-of-function phenocopied the RNAi results.
- Wing-specific caly knockdown disrupted wing shape, patterning, and vein formation.
Conclusions:
- Developmental mis-patterning driven by chromatin dysregulation is reinforced by these findings.
- This study provides a baseline for future research into BAP1's role in development and disease using Drosophila models.
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