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Sex‐dependent and sex‐independent regulatory systems of size variation in  natural populations | Molecular Systems Biology
Sex‐dependent and sex‐independent regulatory systems of size variation in natural populations | Molecular Systems Biology

A confinable home-and-rescue gene drive for population modification | eLife
A confinable home-and-rescue gene drive for population modification | eLife

Epistasis for Quantitative Traits in Drosophila | SpringerLink
Epistasis for Quantitative Traits in Drosophila | SpringerLink

Frontiers | Integrating Gene Expression Data Into Genomic Prediction |  Genetics
Frontiers | Integrating Gene Expression Data Into Genomic Prediction | Genetics

Genome-Wide Analysis Reveals Novel Regulators of Growth in Drosophila  melanogaster
Genome-Wide Analysis Reveals Novel Regulators of Growth in Drosophila melanogaster

Genetic Control of Environmental Variation of Two Quantitative Traits of  Drosophila melanogaster Revealed by Whole-Genome Sequencing | Genetics
Genetic Control of Environmental Variation of Two Quantitative Traits of Drosophila melanogaster Revealed by Whole-Genome Sequencing | Genetics

The Nature, Extent, and Consequences of Genetic Variation in the opa  Repeats of Notch in Drosophila | G3: Genes | Genomes | Genetics
The Nature, Extent, and Consequences of Genetic Variation in the opa Repeats of Notch in Drosophila | G3: Genes | Genomes | Genetics

cis-regulatory variation modulates susceptibility to enteric infection in  the Drosophila genetic reference panel | Genome Biology | Full Text
cis-regulatory variation modulates susceptibility to enteric infection in the Drosophila genetic reference panel | Genome Biology | Full Text

Determinants of genome-wide distribution and evolution of uORFs in  eukaryotes | Nature Communications
Determinants of genome-wide distribution and evolution of uORFs in eukaryotes | Nature Communications

Frontiers | Integrating GWAS and Transcriptomics to Identify the Molecular  Underpinnings of Thermal Stress Responses in Drosophila melanogaster |  Genetics
Frontiers | Integrating GWAS and Transcriptomics to Identify the Molecular Underpinnings of Thermal Stress Responses in Drosophila melanogaster | Genetics

Epistatic partners of neurogenic genes modulate Drosophila olfactory  behavior - He - 2016 - Genes, Brain and Behavior - Wiley Online Library
Epistatic partners of neurogenic genes modulate Drosophila olfactory behavior - He - 2016 - Genes, Brain and Behavior - Wiley Online Library

PDF) Determinants of genome-wide distribution and evolution of uORFs in  eukaryotes
PDF) Determinants of genome-wide distribution and evolution of uORFs in eukaryotes

Prediction of complex phenotypes using the Drosophila melanogaster  metabolome | Heredity
Prediction of complex phenotypes using the Drosophila melanogaster metabolome | Heredity

Commensal bacteria act as a broad genetic buffer in Drosophila during  chronic under-nutrition | bioRxiv
Commensal bacteria act as a broad genetic buffer in Drosophila during chronic under-nutrition | bioRxiv

Danganronpa 2: The Best Classmates Ranked
Danganronpa 2: The Best Classmates Ranked

Epistatic partners of neurogenic genes modulate Drosophila olfactory  behavior - He - 2016 - Genes, Brain and Behavior - Wiley Online Library
Epistatic partners of neurogenic genes modulate Drosophila olfactory behavior - He - 2016 - Genes, Brain and Behavior - Wiley Online Library

Natural variation in genome architecture among 205 Drosophila melanogaster  Genetic Reference Panel lines. - Abstract - Europe PMC
Natural variation in genome architecture among 205 Drosophila melanogaster Genetic Reference Panel lines. - Abstract - Europe PMC

PDF) The Nature, Extent, and Consequences of Genetic Variation in the opa  Repeats of Notch in Drosophila
PDF) The Nature, Extent, and Consequences of Genetic Variation in the opa Repeats of Notch in Drosophila

Bart Deplancke on Twitter: "New study by our lab mapping mitochondrial  variation in the Drosophila Genetic Reference Panel & linking that to  especially stress- and metabolism-related phenotypes:  https://t.co/iZqjLEAwHG Great work by Roel
Bart Deplancke on Twitter: "New study by our lab mapping mitochondrial variation in the Drosophila Genetic Reference Panel & linking that to especially stress- and metabolism-related phenotypes: https://t.co/iZqjLEAwHG Great work by Roel

DGRP2
DGRP2

ShRangeSim: Simulation of Single Nucleotide Polymorphism Clusters in  Next-Generation Sequencing Data | Journal of Computational Biology
ShRangeSim: Simulation of Single Nucleotide Polymorphism Clusters in Next-Generation Sequencing Data | Journal of Computational Biology

Stress affects the epigenetic marks added by natural transposable element  insertions in Drosophila melanogaster | Scientific Reports
Stress affects the epigenetic marks added by natural transposable element insertions in Drosophila melanogaster | Scientific Reports

Measuring Exercise Levels in Drosophila melanogaster Using the Rotating  Exercise Quantification System (REQS) | Protocol
Measuring Exercise Levels in Drosophila melanogaster Using the Rotating Exercise Quantification System (REQS) | Protocol

Mitochondrial haplotypes affect metabolic phenotypes in the Drosophila  Genetic Reference Panel | Nature Metabolism
Mitochondrial haplotypes affect metabolic phenotypes in the Drosophila Genetic Reference Panel | Nature Metabolism