Lifespan and ROS levels in different Drosophila melanogaster strains after 24 h hypoxia exposure

Author:

Malacrida Sandro1ORCID,De Lazzari Federica23,Mrakic-Sposta Simona4,Vezzoli Alessandra4,Zordan Mauro A.3,Bisaglia Marco3,Menti Giulio Maria5,Meda Nicola5ORCID,Frighetto Giovanni6,Bosco Gerardo7,Dal Cappello Tomas1,Strapazzon Giacomo1,Reggiani Carlo7,Gussoni Maristella8,Megighian Aram910

Affiliation:

1. Institute of Mountain Emergency Medicine, Eurac Research 1 , Via Ipazia 2, 39100 Bolzano , Italy

2. University of Cambridge, Cambridge Biomedical Campus 2 MRC Mitochondrial Biology Unit , , Cambridge CB2 0XY , UK

3. University of Padova 3 Physiology, Genetics and Behaviour Unit, Department of Biology , , 35131 Padova , Italy

4. Institute of Clinical Physiology, National Research Council (CNR) 4 , 20162 Milan , Italy

5. University of Padova 5 Department of Biomedical Sciences , , via U. Bassi 58/B, 35131 Padova , Italy

6. University of California 6 Department of Integrative Biology and Physiology , , 610 Charles Young Drive East, Los Angeles, CA 90095-7239 , USA

7. University of Padova 7 Department of Biomedical Science , , Via Marzolo 3, 35121 Padova , Italy

8. Institute of Chemical Sciences and Technologies “G. Natta”-SCITEC, National Research Council, CNR-SCITEC 8 , Via A. Corti 12, 20133 Milan , Italy

9. University of Padova 9 Department of Biology , , via U. Bassi 58/B, 35131 Padova , Italy

10. Padova Neuroscience Center, University of Padova 10 , via Orus 2/B, 35131 Padova , Italy

Abstract

ABSTRACT During recent decades, model organisms such as Drosophila melanogaster have made it possible to study the effects of different environmental oxygen conditions on lifespan and oxidative stress. However, many studies have often yielded controversial results usually assigned to variations in Drosophila genetic background and differences in study design. In this study, we compared longevity and ROS levels in young, unmated males of three laboratory wild-type lines (Canton-S, Oregon-R and Berlin-K) and one mutant line (Sod1n1) as a positive control of redox imbalance, under both normoxic and hypoxic (2% oxygen for 24 h) conditions. Lifespan was used to detect the effects of hypoxic treatment and differences were analysed by means of Kaplan–Meier survival curves and log-rank tests. Electron paramagnetic resonance spectroscopy was used to measure ROS levels and analysis of variance was used to estimate the effects of hypoxic treatment and to assess ROS differences between strains. We observed that the genetic background is a relevant factor involved in D. melanogaster longevity and ROS levels. Indeed, as expected, in normoxia Sod1n1 are the shortest-lived, while the wild-type strains, despite a longer lifespan, show some differences, with the Canton-S line displaying the lowest mortality rate. After hypoxic stress these variances are amplified, with Berlin-K flies showing the highest mortality rate and most evident reduction of lifespan. Moreover, our analysis highlighted differential effects of hypoxia on redox balance/unbalance. Canton-S flies had the lowest increase of ROS level compared to all the other strains, confirming it to be the less sensitive to hypoxic stress. Sod1n1 flies displayed the highest ROS levels in normoxia and after hypoxia. These results should be used to further standardize future Drosophila research models designed to investigate genes and pathways that may be involved in lifespan and/or ROS, as well as comparative studies on specific mutant strains.

Funder

EURAC Research: Accademia Europea

Department of Innovation, Research, University and Museums of the Autonomous Province of Bozen/Bolzano

Publisher

The Company of Biologists

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

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