6533b7d2fe1ef96bd125e263
RESEARCH PRODUCT
Knockdown of Drosophila hemoglobin suggests a role in O2 homeostasis.
Christian WolfThomas A. GorrThomas HankelnFabian RippThorsten BurmesterEva GleixnerReinhard Schuhsubject
0301 basic medicineMaleParaquatTransgenemedia_common.quotation_subjectInsectBiochemistry03 medical and health sciencesHemoglobinsRNA interferenceAnimalsDrosophila ProteinsHomeostasisGlobinMolecular Biologymedia_commonGeneticschemistry.chemical_classificationGene knockdownReactive oxygen speciesbiologyfungiGene Expression Regulation Developmentalbiology.organism_classificationCell biologyGlobinsOxygenOxidative Stress030104 developmental biologyDrosophila melanogasterchemistryInsect ScienceGene Knockdown TechniquesLarvaFemaleRNA InterferenceDrosophila melanogasterReactive Oxygen SpeciesHomeostasisdescription
Almost all insects are equipped with a tracheal system, which appears to be sufficient for O2 supply even in phases of high metabolic activity. Therefore, with the exception of a few species dwelling in hypoxic habitats, specialized respiratory proteins had been considered unnecessary in insects. The recent discovery and apparently universal presence of intracellular hemoglobins in insects has remained functionally unexplained. The fruitfly Drosophila melanogaster harbors three different globin genes (referred to as glob1-3). Glob1 is the most highly expressed globin and essentially occurs in the tracheal system and the fat body. To better understand the functions of insect globins, the levels of glob1 were modulated in Drosophila larvae and adults by RNAi-mediated knockdown and transgenic over-expression. No effects on the development were observed in flies with manipulated glob1 levels. However, the knockdown of glob1 led to a significantly reduced survival rate of adult flies under hypoxia (5% and 1.5% O2). Surprisingly, the glob1 knockdown flies also displayed increased resistance towards the reactive oxygen species-forming agent paraquat, which may be explained by a restricted availability of O2 resulting in decreased formation of harmful O2(-). In summary, our results suggest an important functional role of glob1 in O2 homeostasis, possibly by enhancing O2 supply.
year | journal | country | edition | language |
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2016-05-01 | Insect biochemistry and molecular biology |