Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

One of the greatest strengths of Drosophila genetics is its easily observable and selectable phenotypic markers. The mini-white marker has been widely used as a transgenic marker for Drosophila transgenesis. Flies carrying a mini-white construct can exhibit various eye colors ranging from pale orange to intense red, depending on the insertion site and gene dosage. Because the two copies of the mini-white marker show a stronger orange color, this is often used for selecting progenies carrying two transgenes together in a single chromosome after chromosomal recombination. However, some GAL4 lines available in the fly community originally have very strong red eyes. Without employing another marker, such as GFP, generating a recombinant chromosome with the strong red-eyed GAL4 and a desired UAS-transgene construct may be difficult. Therefore, we decided to change the red eyes of GAL4 lines to orange color. To change the eye color of the fly, we tested the CRISPR/Cas9 method with a guide RNA targeting the white gene with OK371-GAL4 and elav-GAL4. After a simple screening, we have successfully obtained multiple lines of orange-eyed OK371-GAL4 and elav-GAL4 that still maintain their original expression patterns. All of these simple experiments were performed by undergraduate students, allowing them to learn about a variety of different genetic experiments and genome editing while contributing to the fly research community by creating fruit fly lines that will be used in real-world research.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11322649PMC
http://dx.doi.org/10.1038/s41598-024-69946-8DOI Listing

Publication Analysis

Top Keywords

gal4 lines
12
genome editing
8
undergraduate students
8
mini-white marker
8
orange color
8
fly community
8
red eyes
8
ok371-gal4 elav-gal4
8
lines
5
orange
4

Similar Publications

Systematic analysis of mushroom body-innervating dopaminergic neuron activity in different physiological states in Drosophila.

Biomed J

August 2025

Graduate Institute of Biomedical Sciences, College of Medicine, Chang Gung University, Taoyuan, Taiwan; Department of Biochemistry, College of Medicine, Chang Gung University, Taoyuan, Taiwan; Department of Neurology, New Taipei Municipal TuCheng Hospital, Chang Gung Memorial Hospital, New Taipei Ci

Background: Thirst and hunger are fundamental survival drives that modulate various aspects of animal behavior through specific neural circuits. Previous studies have demonstrated that dopaminergic neurons (DANs) innervating the mushroom body (MB) in the Drosophila brain play essential roles in innate and learned thirst- and hunger-dependent behaviors, with most experiments focusing on acute water or food deprivation. However, it is unclear whether acute water or food deprivation alters dopamine production and neural activity in MB-innervating DANs.

View Article and Find Full Text PDF

The ability to direct tissue-specific overexpression of transgenic proteins in genetically tractable organisms like has facilitated innumerable biological discoveries. However, transgenic proteins can themselves impact cellular and physiological processes in ways that are often ignored or poorly defined. Here we discovered that the transgene, which directs strong expression of the yeast GAL4 transcription factor in the fat body, induces significant physiological defects in adult female flies.

View Article and Find Full Text PDF

Peroxisomal biogenesis disorders (PBD) are autosomal recessive diseases caused by mutations in specific PEX genes that impair peroxisome formation, leading to multi-systemic failure. Symptoms vary, even in patients with variants in the same PEX gene. Our goal is to select PEX mutations and use Drosophila to model a severity spectrum based on genotype-phenotype correlations.

View Article and Find Full Text PDF

Nervous systems rely on sensory feature maps, where the tuning of neighboring neurons for some ethologically-relevant parameter varies systematically, to control behavior. Such maps can be organized topographically or based on some computational principle. However, it is unclear how the central organization of a sensory system corresponds to the functional logic of the motor system.

View Article and Find Full Text PDF

Understanding developmental changes in neuronal lineages is crucial to elucidate how they assemble into functional neural networks. Studies investigating nervous system development in model systems have only focused on select regions of the CNS due to the limited availability of genetic drivers that target specific neuronal lineages throughout development and adult life. This has hindered our understanding of how distinct neuronal lineages interconnect to form neuronal circuits during development.

View Article and Find Full Text PDF