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Updated: Jul 6, 2026

Quantitative Comparison of cis-Regulatory Element (CRE) Activities in Transgenic Drosophila melanogaster
Published on: December 19, 2011
Genomic P elements content of a wild M' strain of Drosophila melanogaster: KP elements do not always function as type
Tomokazu Fukui1, Yutaka Inoue, Masamitsu Yamaguchi
1Department of Applied Biology, Graduate School of Science and Technology, Kyoto Institute of Technology, Sakyo, Kyoto, Japan.
Abstract:
The P element is one of the best-studied DNA transposons as a model system to study evolution of mobile DNAs. The P element is a causative factor for P-M hybrid dysgenesis in Drosophila melanogaster and the P-M phenotype (P, Q, or M) has been thought to reflect genomic P elements content. Recent survey of natural populations showed that full-size P (FP) and KP elements are predominant in almost all current populations, irrespective of their phenotype variation. It was also suggested that some P elements are functionally inactive and their inactivation plays an important role in determining P-M phenotype. In order to know how the genomic P elements are inactivated, we characterized molecular features and insertion sites of them in an M' strain. We isolated 20 P elements, one FP, 15 KP, and four other internally deleted defective elements, all of which appeared thoroughly inactive. These FP and KP elements had canonical sequences in each case, but no mutations abolishing their function. In addition, they were mostly located in or within the vicinity of presumably active genes. Our results suggest that inactivation of P elements is associated with neither mutations nor constitutional suppression by heterochromatinization in M' strains and that only a few elements inserted in some special chromosomal regions are likely to be involved in determination of the phenotype of individual flies. Existence of many copies of canonical, but inactive, KP elements in the M' strain is inconsistent with the assumption that type II repression of the KP element is the main reason for its increase in the wild populations of D. melanogaster.
Insights
Mobile DNA evolution is illuminated by studying P elements in Drosophila melanogaster. Inactive P elements, not mutations, likely determine P-M hybrid dysgenesis phenotypes in M
Area of Science:
- Genetics
- Molecular Biology
- Evolutionary Biology
Background:
- P elements are well-studied DNA transposons used as models for mobile DNA evolution.
- P elements cause P-M hybrid dysgenesis in Drosophila melanogaster, with phenotypes (P, Q, M) linked to genomic P element content.
- Recent population surveys reveal predominant full-size P (FP) and KP elements, regardless of phenotype variation.
Purpose of the Study:
- To investigate the molecular mechanisms of P element inactivation.
- To characterize the molecular features and insertion sites of inactive P elements in an M' strain.
- To understand the role of P element inactivation in determining P-M phenotype.
Main Methods:
- Isolation and characterization of 20 P elements from an M' strain.
- Analysis of molecular features, including sequence integrity and mutations.
- Mapping of P element insertion sites, particularly in relation to active genes.
Main Results:
- 20 thoroughly inactive P elements were isolated: one FP, 15 KP, and four defective elements.
- FP and KP elements possessed canonical sequences without mutations that abolish function.
- Inactive P elements were predominantly located in or near presumably active genes.
Conclusions:
- P element inactivation in M' strains is not due to mutations or heterochromatinization.
- Only a few P elements inserted in specific chromosomal regions likely determine fly phenotype.
- The presence of numerous canonical but inactive KP elements contradicts the hypothesis that type II repression drives KP element increase in wild populations.
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